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<art>
   <ui>1471-2431-3-9</ui>
   <ji>1471-2431</ji>
   <fm>
      <dochead>Hypothesis</dochead>
      <bibl>
         <title>
            <p>Is fever suppression involved in the etiology of autism and neurodevelopmental disorders?</p>
         </title>
         <aug>
            <au id="A1" ca="yes">
               <snm>Torres</snm>
               <mi>R</mi>
               <fnm>Anthony</fnm>
               <insr iid="I1"/>
               <email>rtorres@cpd2.usu.edu</email>
            </au>
         </aug>
         <insg>
            <ins id="I1">
               <p>6895 Old Main Hill, Centers for Persons with Disabilities, Utah State University, Logan, Utah 84321-6895, USA</p>
            </ins>
         </insg>
         <source>BMC Pediatrics</source>
         <issn>1471-2431</issn>
         <pubdate>2003</pubdate>
         <volume>3</volume>
         <issue>1</issue>
         <fpage>9</fpage>
         <url>http://www.biomedcentral.com/1471-2431/3/9</url>
         <xrefbib>
            <pubidlist>
               <pubid idtype="pmpid">12952554</pubid>
               <pubid idtype="doi">10.1186/1471-2431-3-9</pubid>
            </pubidlist>
         </xrefbib>
      </bibl>
      <history>
         <rec>
            <date>
               <day>15</day>
               <month>1</month>
               <year>2003</year>
            </date>
         </rec>
         <acc>
            <date>
               <day>02</day>
               <month>9</month>
               <year>2003</year>
            </date>
         </acc>
         <pub>
            <date>
               <day>02</day>
               <month>9</month>
               <year>2003</year>
            </date>
         </pub>
      </history>
      <cpyrt>
         <year>2003</year>
         <collab>Torres; licensee BioMed Central Ltd. This is an Open Access article: verbatim copying and redistribution of this article are permitted in all media for any purpose, provided this notice is preserved along with the article's original URL.</collab>
      </cpyrt>
      <abs>
         <sec>
            <st>
               <p>Abstract</p>
            </st>
            <sec>
               <st>
                  <p>Background</p>
               </st>
               <p>There appears to be a significant increase in the prevalence rate of autism. Reasons for the increase are unknown, however, there is a substantial body of evidence that suggests the etiology involves infections of the pregnant mother or of a young child. Most infections result in fever that is routinely controlled with antipyretics such as acetaminophen. The blocking of fever inhibits processes that evolved over millions of years to protect against microbial attack. Immune mechanisms in the central nervous system are part of this protective process.</p>
            </sec>
            <sec>
               <st>
                  <p>Hypothesis</p>
               </st>
               <p>The blockage of fever with antipyretics interferes with normal immunological development in the brain leading to neurodevelopmental disorders such as autism in certain genetically and immunologically disposed individuals.</p>
            </sec>
            <sec>
               <st>
                  <p>Testing the hypothesis</p>
               </st>
               <p>Epidemiological studies to determine associations between the use of antipyretics and neurodevelopmental disorders should be undertaken. Biochemical tests will involve the examination of fluids/serum by mass spectrometry and the determination of cytokine/chemokine levels in serum and cell culture fluids after stimulation with fever-inducing molecules from bacteria, viruses and yeast. Postmortem brain can be examined by immunohistochemistry or other methods such as fluorescent in situ hybridization (FISH) to determine altered expression levels of chemokines/cytokines and other molecules.</p>
            </sec>
            <sec>
               <st>
                  <p>Implications of the hypothesis</p>
               </st>
               <p>1) The use of antipyretics during pregnancy or in young children may be reserved for more severe fevers. 2) The perplexing genetic findings in autism may be better understood by categorizing genes along functional pathways. 3) New treatments based on immune, cell, pharmacological or even heat therapies may be developed.</p>
            </sec>
         </sec>
      </abs>
   </fm>
   <bdy>
      <sec>
         <st>
            <p>Background</p>
         </st>
         <p>According to epidemiological studies, autism, a neurodevelopmental disorder, is increasing in the pediatric population <abbrgrp><abbr bid="B1">1</abbr></abbrgrp>. In 1966 the prevalence rate was 4&#8211;5/10,000 births <abbrgrp><abbr bid="B2">2</abbr></abbrgrp>, while two recent studies show prevalence rates of 14.9/10,000 <abbrgrp><abbr bid="B1">1</abbr></abbrgrp> and 34/10,000 <abbrgrp><abbr bid="B3">3</abbr></abbrgrp>. Although there is no question that more clinical cases are being detected, the increase in prevalence of autism is in dispute as diagnostic practices have changed over the years and this heightened awareness has changed the evaluation of previously unrecognized cases <abbrgrp><abbr bid="B4">4</abbr></abbrgrp>. Increased services have also contributed to the rise as clinicians are inclined to get individuals into autism programs that can help remarkably. Despite these considerations, there is still a concern about a real increase in the prevalence rate.</p>
         <p>In 1943, Kanner <abbrgrp><abbr bid="B5">5</abbr></abbrgrp> described autism as a neurodevelopmental disorder with impairments in social interactions, restricted stereotyped interests, and abnormalities in verbal and nonverbal behavior. Little is known about the etiology, and the diagnosis of autism is done by behavioral criteria as no biomarkers have yet been identified. There is a strong familial component to autism <abbrgrp><abbr bid="B6">6</abbr></abbrgrp>, and etiologies based on infectious <abbrgrp><abbr bid="B7">7</abbr></abbrgrp>, autoimmune <abbrgrp><abbr bid="B8">8</abbr><abbr bid="B9">9</abbr><abbr bid="B10">10</abbr><abbr bid="B11">11</abbr></abbrgrp>, and cytokine factors <abbrgrp><abbr bid="B12">12</abbr><abbr bid="B13">13</abbr></abbrgrp> have been proposed.</p>
         <p>About 40% of parents with autistic children report that their seemingly normal children experienced developmental regression after being vaccinated. However, the theory of vaccines or adjuvants being involved in the etiology <abbrgrp><abbr bid="B14">14</abbr></abbrgrp> has little support as epidemiological studies have failed to show an association with the measles, mumps, and rubella (MMR) vaccine <abbrgrp><abbr bid="B15">15</abbr><abbr bid="B16">16</abbr><abbr bid="B17">17</abbr></abbrgrp> and autism.</p>
         <p>It has been reported that 43% of mothers with an autistic child experienced upper respiratory tract, influenza-like, urinary, or vaginal infections during pregnancy compared to only 26% of control mothers <abbrgrp><abbr bid="B10">10</abbr></abbrgrp>. Studies show that in rats, maternal exposure to infection alters proinflammatory cytokine levels in the fetal environment, including the brain; it has been proposed that these changes may have a significant impact on the developing brain <abbrgrp><abbr bid="B18">18</abbr><abbr bid="B19">19</abbr></abbrgrp>. This suggests that certain cases of autism may be a sequela of pathogenic infections, especially those of a viral origin <abbrgrp><abbr bid="B20">20</abbr><abbr bid="B21">21</abbr><abbr bid="B22">22</abbr><abbr bid="B23">23</abbr></abbrgrp>.</p>
         <p>There is no overt pathological lesion in autism, however, subtle abnormalities in the cerebellum, hippocampal fields CA1&#8211;CA4, entorhinal cortex, amygdala, behavioral differences and imbalances in cytokines and brain growth factors suggest that abnormal brain development is important in the pathogenesis <abbrgrp><abbr bid="B24">24</abbr><abbr bid="B25">25</abbr><abbr bid="B26">26</abbr></abbrgrp>.</p>
         <p>Pathological infections, including vaccinations, commonly result in fever. For example, 50&#8211;60% of young children develop fever after receiving the MMR vaccine <abbrgrp><abbr bid="B27">27</abbr></abbrgrp>. Fever is rarely harmful and only extremely high fevers of 42.2C (108F) may cause brain damage. However, fevers of 41C (106F) should get immediate medical attention to examine the patient for severe infection <abbrgrp><abbr bid="B28">28</abbr></abbrgrp>.</p>
         <p>Fever is defined as an increase in the normal set point of body temperature. During the rising phase of fever, normal body temperature is below the new set point and the body, being hypothermic, uses several heat conserving and heat generating physiological reflexes, as well as behavioral responses, to raise body temperature. The breaking of fever results in a variety of heat-losing reflexes and behavioral responses to lower body temperature.</p>
         <p>There are two related fever pathways. The intraperitoneal injection of lipopolysaccharide (LPS), a potent pyrogen, results in the production of various cytokines from organs in the viscera. Cytokines are polypeptides that are involved in inflammation, immune activation, cell differentiation and cell death. These groups of polypeptides include interleukins, interferons, tumor necrosis factors, chemokines and growth factors. They generally have little or no known function in healthy tissue, but can be induced in a very rapid manner in response to tissue injury, inflammation or infection. A signal from IL-1&#946; is thought to initiate afferent information traveling from the vagus nerve to the hypothalamus to increase hypothalamic IL-1&#946;. This in turn causes an increase in hypothalamic IL-6, which raises the thermoregulatory set point. This pathway is mediated via prostaglandins and can be blocked by cyclooxygenase inhibitors (antipyretics). These two cytokines are also important in inflammation and are commonly labeled as proinflammatory cytokines.</p>
         <p>The second fever pathway, also initiated in the hypothalamus by afferent signals from the vagus nerve, is mediated by locally produced macrophage inflammatory protein-1 (MIP-1), a chemokine. MIP-1 appears to act directly on the anterior hypothalamus via a non-prostaglandin mechanism and is not blocked by antipyretics <abbrgrp><abbr bid="B29">29</abbr></abbrgrp>.</p>
         <p>Fever is metabolically expensive: every 1&#176;C rise in temperature increases the metabolic rate approximately 10% <abbrgrp><abbr bid="B30">30</abbr></abbrgrp>. It stands to reason that a defense mechanism that evolved over millions of years and is so costly in terms of energy must be important. Numerous studies have shown that fever enhances the immune response by increasing mobility and activity of white cells, stimulating the production of interferon, causing the activation of T-lymphocytes, and indirectly reducing plasma iron concentrations <abbrgrp><abbr bid="B29">29</abbr><abbr bid="B30">30</abbr><abbr bid="B31">31</abbr><abbr bid="B32">32</abbr></abbrgrp>. Antiviral and antibacterial properties of interferon are also increased at febrile temperatures <abbrgrp><abbr bid="B33">33</abbr><abbr bid="B34">34</abbr></abbrgrp>. A decreased morbidity and mortality rate has been associated with fever in a variety of infections <abbrgrp><abbr bid="B35">35</abbr><abbr bid="B36">36</abbr><abbr bid="B37">37</abbr><abbr bid="B38">38</abbr><abbr bid="B39">39</abbr></abbrgrp>. Newborn animals infected with a variety of viruses have a higher survival rate when febrile <abbrgrp><abbr bid="B40">40</abbr></abbrgrp>. The use of antipyretics to suppress fever results in an increased mortality rate in bacterially infected rabbits <abbrgrp><abbr bid="B41">41</abbr></abbrgrp> and an increase in influenza virus production in ferrets <abbrgrp><abbr bid="B42">42</abbr></abbrgrp>. Brain hyperthermia markedly exacerbates neuronal injury <abbrgrp><abbr bid="B43">43</abbr></abbrgrp>. There is anecdotal evidence that children with autism show behavioral improvement when febrile (D. Odell, personal communications, 2003).</p>
         <p>Sequestering fever during pregnancy may have effects on the fetus. Goetzl et al. <abbrgrp><abbr bid="B44">44</abbr></abbrgrp> have shown that the treatment of epidural fever with acetaminophen significantly decreased maternal and fetal serum IL-6 levels at the time of birth. This may be significant, as it appears that the fetus is incapable of producing IL-6 at the time of birth and is dependent on maternal IL-6 <abbrgrp><abbr bid="B45">45</abbr></abbrgrp>. Although the expression of cytokines in the CNS is very low, brain cells can produce specific cytokines as well as cytokine receptors under certain conditions <abbrgrp><abbr bid="B19">19</abbr></abbrgrp>. For example, IL-6 and its specific receptor (IL-6R) are expressed on neurons and glial cells including astrocytes. There is mounting evidence that IL-6 is important in the development, differentiation, regeneration and degeneration of neurons in the central nervous system <abbrgrp><abbr bid="B46">46</abbr></abbrgrp>. It is known that IL-6 promotes the differentiation of precursor cells to astrocytes and functions as a differentiation factor for neurons of the peripheral and central nervous system. IL-6 and sIL-6R have also been shown to be important in regulating the expression of specific neurotrophins in astrocytes <abbrgrp><abbr bid="B46">46</abbr></abbrgrp>.</p>
         <p>Pathological conditions in the CNS have been observed in transgenic mice that have astrocyte-targeted expression of IL-6. High levels of IL-6 in these mice correlate with astrocytosis, microgliosis, angiogenesis and the up-regulation of several inflammatory genes including IL-1 &#945;/&#946;, TNF&#945;, GFAP, ICAM, and complement C3. Transgenic mice expressing TNF&#945; and INF-&#945; also displayed significant neurological changes <abbrgrp><abbr bid="B47">47</abbr></abbrgrp>. Projects such as these suggest that normal brain development requires a delicate balance of different cytokines.</p>
         <p>Ozato et al. <abbrgrp><abbr bid="B48">48</abbr></abbrgrp> described the response of cell-surface toll-like receptors (TLRs) upon binding to microbial pathogens. There are at least 10 TLRs that recognize ligands from bacteria, viruses, yeast, and nucleic acids from viruses. There is a high binding specificity of the different TLRs for each microbial structure referred to as pathogen-associated molecular patterns (PAMPs) <abbrgrp><abbr bid="B48">48</abbr></abbrgrp>. The best studied is TLR4 that binds LPS from gram-negative bacteria. The ligation of LPS to cell surface TLR4 initiates a signal cascade that results in the activation of intracellular nuclear factor kappa beta (NF6B) and the transcription of numerous genes involved in immune responses. This signaling pathway appears to be common to all the TLRs whether the PAMPs originate from bacteria, virus, or yeast. TLRs are mainly expressed myeloid lineage cells including macrophages, granulocytes and dendritic cells.</p>
         <p>The central nervous system exhibits a similar immune reaction to pathogenic infection. There is a broad expression of TLRs in human brain astrocytes, oligodendrocytes and microglia <abbrgrp><abbr bid="B49">49</abbr></abbrgrp>. Astrocytes and oligodendrocytes express mRNA for TLR2 that recognizes fungal, gram-positive and mycobacterial components and TLR3 that recognize double-stranded RNA. Microglia cells express mRNA for a wide range of TLR family members (TLR2, TLR3, TLR4, TLR5, TLR6, TLR7, TLR8 and TLR9) much like other cells of the monocytic lineage <abbrgrp><abbr bid="B49">49</abbr></abbrgrp>. The binding of LPS to TLR on microglia cells (brain macrophage) leads to the innate expression of cytokines, chemokines, extracellular matrix proteins, proteolytic enzymes, and complement proteins in the brain parenchyma <abbrgrp><abbr bid="B50">50</abbr><abbr bid="B51">51</abbr></abbrgrp>. It is also well established that glial cells participate in innate immune responses in human CNS <abbrgrp><abbr bid="B49">49</abbr></abbrgrp>.</p>
         <p>Fever is generally considered harmful by physicians and is treated with antipyretics as it may lead to febrile seizures, stupor, dehydration, increased breathing, discomfort, and tachycardia <abbrgrp><abbr bid="B52">52</abbr></abbrgrp>. It is a common practice to treat even low-grade fevers of 101&#8211;102F with antipyretics. Home use of antipyretics upon the first signs of a fever is also common. These behaviors have lead to the ubiquitous use of aspirin, acetaminophen, nimesulide, and ibuprofen, which control temperature by inhibiting prostaglandin synthesis in the hypothalamus. Aspirin is not currently recommended in the pediatric population due to an association with Reye's syndrome <abbrgrp><abbr bid="B53">53</abbr></abbrgrp>.</p>
         <p>Acetaminophen (AP), the most widely used medication, is considered safe when used at pharmacological doses. High doses of AP can lead to liver failure and death without proper emergency treatment. Although the hepatotoxic actions of AP have been extensively researched, there is evidence that it is also an immunosuppressive agent. Suppression of the delayed hypersensitivity response and mixed lymphocyte reaction occur in mice fed AP <abbrgrp><abbr bid="B54">54</abbr></abbrgrp>. It has recently been shown that AP added directly to splenocyte cultures inhibited the <it>in vitro </it>antibody response without affecting cell viability <abbrgrp><abbr bid="B55">55</abbr></abbrgrp>. Other immune effects include an impairment of TNF&#945; release <abbrgrp><abbr bid="B56">56</abbr></abbrgrp> and a 10&#8211;20-fold increase of monocyte chemoattractant protein (MCP-1) and chemokine receptor (CCR) from liver Kupffer cells (macrophages) <abbrgrp><abbr bid="B57">57</abbr></abbrgrp>. These studies suggest that the AP directly affects immune cells and is not a secondary response to AP-hepatitis.</p>
      </sec>
      <sec>
         <st>
            <p>Presentation of the hypothesis</p>
         </st>
         <p>The premise of this theory is that the blockage of fever with antipyretics interferes with normal immunological development in the brain, leading to neurodevelopmental disorders in certain genetically and immunologically disposed individuals. The effects may occur in utero or at a very young age when the immune system is rapidly developing. Maternal infection is a risk factor for neurodevelopmental disorders including autism <abbrgrp><abbr bid="B20">20</abbr><abbr bid="B21">21</abbr><abbr bid="B22">22</abbr><abbr bid="B23">23</abbr></abbrgrp>. It has been shown that in rats, maternal exposure to infection alters proinflammatory cytokine levels in the fetal environment, including the brain; it has been proposed that these changes may have a significant impact on the developing brain <abbrgrp><abbr bid="B18">18</abbr><abbr bid="B19">19</abbr></abbrgrp>. Acetaminophen also interferes with IL-6 <abbrgrp><abbr bid="B44">44</abbr></abbrgrp> levels as well as the release of TNF&#945; <abbrgrp><abbr bid="B56">56</abbr></abbrgrp>, the same proinflammatory cytokines necessary for brain development.</p>
      </sec>
      <sec>
         <st>
            <p>Testing the hypothesis</p>
         </st>
         <p>The experimental avenues below can be used to test the theory:</p>
         <p>1) Epidemiological studies can be undertaken to determine any association between the use of antipyretics and neurodevelopmental disorders.</p>
         <p>2) Peripheral blood cells from subjects with neurodevelopmental disorders and controls can be examined in culture for chemokine/cytokine production after stimulation with bacterial, viral, or yeast PAMPs. The incubation of isolated white blood cells with bacterial or viral components (LPS, unmethylated DNA, dsRNA) that are known to increase cytokine expression may be useful to determine if there are genetically encoded differences in cells from subjects with autism and age- and sex-matched controls. It has been shown that the administration of low dose IL-1&#946; to mice at birth suggests that long-lasting and perhaps permanent alterations occur in the CNS and peripheral neurotransmitter systems <abbrgrp><abbr bid="B58">58</abbr></abbrgrp>. It would be important to know if individuals with autism are prone to be low or high producers of certain cytokines like IL-1&#946; or IL-6.</p>
         <p>3) The expression of chemokines/cytokines such as IL-1&#946; and IL-6 can be examined in postmortem brain by immunohistochemistry, FISH, western/northern blotting or other molecular methods. These two cytokines play seminal roles in fever and are also important in the proinflammatory response. It has recently been shown that IL-1&#946;, IL-6 and TNF&#945; decrease in vitro survival of certain neurons and play important roles in the normal development of neurons including proliferation, survival, differentiation, axodendritic outgrowth and synaptic regulation <abbrgrp><abbr bid="B59">59</abbr></abbrgrp>.</p>
         <p>4) Serum/plasma samples can be evaluated by analytical methods in an attempt to detect biomarkers for autism. Significant advances in mass spectrometry have been made in examining complex samples like serum for biomarkers for disease <abbrgrp><abbr bid="B60">60</abbr></abbrgrp>. We have preliminary data examining plasma from subjects with autism and age-and sex-matched control samples by time-of-flight mass spectrometry. Examination of this data by multivariate analysis suggests that plasma from subjects with autism may have a unique peptide/protein profile.</p>
         <p>5) Animal models can be tested in vivo to determine the neurodevelopmental effects of fever treatment. For example, brain tissue can be examined for cytokine/chemokine differences in mice treated/untreated with antipyretics after inducing fever with LPS.</p>
      </sec>
      <sec>
         <st>
            <p>Implications of the hypothesis</p>
         </st>
         <p>Several important changes may result from studies designed to test the theory:</p>
         <p>1) The use of antipyretics during pregnancy or in young children may be reserved for more severe fevers.</p>
         <p>2) Many of the perplexing genetic findings in autism may be better understood by categorizing genes along functional pathways. For example, the genes for TLR5, TLR9, TLR1, TLR4, and TLR7 are on different chromosomes (1,3,4,9, and X respectively). The binding of the respective ligand to a TLR causes the activation of a common transcriptional factor NF6B that results in the transcription of numerous immune related genes. This example clearly illustrates that genetic defects on different chromosomes may have a common result.</p>
         <p>3) The discovery of specific immune defects may suggest new therapies for neurodevelopmental disorders. These treatments may be based on immune, cell, pharmacological or even heat therapies that alter the CNS immune system.</p>
      </sec>
      <sec>
         <st>
            <p>Competing interests</p>
         </st>
         <p>None declared.</p>
      </sec>
   </bdy>
   <bm>
      <ack>
         <sec>
            <st>
               <p>Acknowledgements</p>
            </st>
            <p>David Ward at Yale University, Dennis Odell and Virgil Caldwell at Utah State University for thoughtful comments on the manuscript and Melanie Fillmore for proofreading. In memory of my beloved son Anthony M. Torres.</p>
         </sec>
      </ack>
      <refgrp>
         <bibl id="B1">
            <title>
               <p>The Changing Prevalence of Autism in California</p>
            </title>
            <aug>
               <au>
                  <snm>Croen</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Grether</snm>
                  <fnm>JK</fnm>
               </au>
               <au>
                  <snm>Hoogstrate</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Selvin</snm>
                  <fnm>S</fnm>
               </au>
            </aug>
            <source>J of Autism and Dev Disorders</source>
            <pubdate>2002</pubdate>
            <volume>32#3</volume>
            <fpage>207</fpage>
            <lpage>215</lpage>
            <xrefbib>
               <pubid idtype="doi">10.1023/A:1015453830880</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B2">
            <title>
               <p>Epidemiology of autistic conditions in young children. I. Prevalence</p>
            </title>
            <aug>
               <au>
                  <snm>Lotter</snm>
                  <fnm>V</fnm>
               </au>
            </aug>
            <source>Social Psychiatry</source>
            <pubdate>1966</pubdate>
            <volume>1</volume>
            <fpage>163</fpage>
            <lpage>173</lpage>
         </bibl>
         <bibl id="B3">
            <title>
               <p>Prevalence of Autism in a US Metropolitan Area</p>
            </title>
            <aug>
               <au>
                  <snm>Yeargin-Allsopp</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Rice</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Karapurkar</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Doerberg</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Boyle</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Murphy</snm>
                  <fnm>C</fnm>
               </au>
            </aug>
            <source>JAMA</source>
            <pubdate>2003</pubdate>
            <volume>289</volume>
            <issue>1</issue>
            <fpage>49</fpage>
            <lpage>55</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">12503976</pubid>
                  <pubid idtype="doi">10.1001/jama.289.1.49</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B4">
            <title>
               <p>Is there an increase in the prevalence of autism spectrum disorders?</p>
            </title>
            <aug>
               <au>
                  <snm>Prior</snm>
                  <fnm>M</fnm>
               </au>
            </aug>
            <source>J Paediatr Child Health</source>
            <pubdate>2003</pubdate>
            <volume>39</volume>
            <fpage>81</fpage>
            <lpage>82</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">12603792</pubid>
                  <pubid idtype="doi">10.1046/j.1440-1754.2003.00097.x</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B5">
            <title>
               <p>Autistic disturbances of affective contact</p>
            </title>
            <aug>
               <au>
                  <snm>Kanner</snm>
                  <fnm>L</fnm>
               </au>
            </aug>
            <source>Nervous Child</source>
            <pubdate>1943</pubdate>
            <volume>2</volume>
            <fpage>217</fpage>
            <lpage>250</lpage>
         </bibl>
         <bibl id="B6">
            <title>
               <p>Genetic clues to the biological basis of autism</p>
            </title>
            <aug>
               <au>
                  <snm>Turner</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Barnby</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Bailey</snm>
                  <fnm>A</fnm>
               </au>
            </aug>
            <source>Mol Med Today</source>
            <pubdate>2000</pubdate>
            <volume>6</volume>
            <fpage>238</fpage>
            <lpage>244</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid">10840382</pubid>
                  <pubid idtype="doi">10.1016/S1357-4310(00)01712-3</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B7">
            <title>
               <p>Intra-monocyte pathogens delineate autism subgroups</p>
            </title>
            <aug>
               <au>
                  <snm>Binstock</snm>
                  <fnm>T</fnm>
               </au>
            </aug>
            <source>Med Hypotheses</source>
            <pubdate>2001</pubdate>
            <volume>56</volume>
            <fpage>523</fpage>
            <lpage>531</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">11339860</pubid>
                  <pubid idtype="doi">10.1054/mehy.2000.1247</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B8">
            <title>
               <p>Autism and autoimmune disease: a family study</p>
            </title>
            <aug>
               <au>
                  <snm>Money</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Bobrow</snm>
                  <fnm>NA</fnm>
               </au>
               <au>
                  <snm>Clark</snm>
                  <fnm>FC</fnm>
               </au>
            </aug>
            <source>J Autism Child Schizophr</source>
            <pubdate>1971</pubdate>
            <volume>1</volume>
            <fpage>146</fpage>
            <lpage>160</lpage>
            <xrefbib>
               <pubid idtype="pmpid">5172389</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B9">
            <title>
               <p>Possible immunogenetic basis for autism</p>
            </title>
            <aug>
               <au>
                  <snm>Burger</snm>
                  <fnm>RA</fnm>
               </au>
               <au>
                  <snm>Warren</snm>
                  <fnm>RP</fnm>
               </au>
            </aug>
            <source>Ment Retard Dev Disabil Res Rev</source>
            <pubdate>1998</pubdate>
            <volume>4</volume>
            <fpage>137</fpage>
            <lpage>141</lpage>
            <xrefbib>
               <pubid idtype="doi">10.1002/(SICI)1098-2779(1998)4:2&lt;137::AID-MRDD11>3.0.CO;2-W</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B10">
            <title>
               <p>Familial clustering of autoimmune disorders and evaluation of medical risk factors in autism</p>
            </title>
            <aug>
               <au>
                  <snm>Comi</snm>
                  <fnm>AM</fnm>
               </au>
               <au>
                  <snm>Zimmerman</snm>
                  <fnm>AW</fnm>
               </au>
               <au>
                  <snm>Frye</snm>
                  <fnm>VH</fnm>
               </au>
               <au>
                  <snm>Law</snm>
                  <fnm>PA</fnm>
               </au>
               <au>
                  <snm>Peeden</snm>
                  <fnm>JN</fnm>
               </au>
            </aug>
            <source>J Child Neurol</source>
            <pubdate>1999</pubdate>
            <volume>14</volume>
            <issue>6</issue>
            <fpage>388</fpage>
            <lpage>394</lpage>
            <xrefbib>
               <pubid idtype="pmpid">10385847</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B11">
            <title>
               <p>The transmission disequilibrium test suggests that HLA-DR4 and DR13 are linked to autism spectrum disorder</p>
            </title>
            <aug>
               <au>
                  <snm>Torres</snm>
                  <fnm>AR</fnm>
               </au>
               <au>
                  <snm>Maciulis</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Stubbs</snm>
                  <fnm>EG</fnm>
               </au>
               <au>
                  <snm>Cutler</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Odell</snm>
                  <fnm>D</fnm>
               </au>
            </aug>
            <source>Human Immunol</source>
            <pubdate>2002</pubdate>
            <volume>63</volume>
            <fpage>311</fpage>
            <lpage>316</lpage>
            <xrefbib>
               <pubid idtype="doi">10.1016/S0198-8859(02)00374-9</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B12">
            <title>
               <p>Proinflammatory and regulatory cytokine production associated with innate and adaptive immune responses in children with autism spectrum disorders and developmental regression</p>
            </title>
            <aug>
               <au>
                  <snm>Jyonouchi</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Sun</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Le</snm>
                  <fnm>H</fnm>
               </au>
            </aug>
            <source>J of Neuroimmunol</source>
            <pubdate>2001</pubdate>
            <volume>120</volume>
            <fpage>170</fpage>
            <lpage>179</lpage>
            <xrefbib>
               <pubid idtype="doi">10.1016/S0165-5728(01)00421-0</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B13">
            <title>
               <p>Activation of the inflammatory response in autism</p>
            </title>
            <aug>
               <au>
                  <snm>Croonenberghs</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Bosmans</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Deboutte</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Kenis</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Maes</snm>
                  <fnm>M</fnm>
               </au>
            </aug>
            <source>Neuropsychobiol</source>
            <pubdate>2002</pubdate>
            <volume>45</volume>
            <issue>1</issue>
            <fpage>1</fpage>
            <lpage>6</lpage>
            <xrefbib>
               <pubid idtype="doi">10.1159/000048665</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B14">
            <title>
               <p>Review article: the concept of cntero-colonic encephalopathy, autism and opioid receptor ligands</p>
            </title>
            <aug>
               <au>
                  <snm>Wakefield</snm>
                  <fnm>AJ</fnm>
               </au>
               <au>
                  <snm>Puleston</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Montgomery</snm>
                  <fnm>SM</fnm>
               </au>
               <au>
                  <snm>Anthony</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>O'Leary</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Murch</snm>
                  <fnm>SH</fnm>
               </au>
            </aug>
            <source>Aliment Pharmacol Ther</source>
            <pubdate>2002</pubdate>
            <volume>16</volume>
            <issue>4</issue>
            <fpage>636</fpage>
            <lpage>674</lpage>
            <xrefbib>
               <pubid idtype="doi">10.1046/j.1365-2036.2002.01206.x</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B15">
            <title>
               <p>Conference Writing Panel. Measles-mumps-rubella vaccine and autistic spectrum disorder : report from the New Challenges in Childhood Immunizations Conference convened in Oak Brook, Illinois. June 12&#8211;13, 2000</p>
            </title>
            <aug>
               <au>
                  <snm>Halsey</snm>
                  <fnm>NA</fnm>
               </au>
               <au>
                  <snm>Hyman</snm>
                  <fnm>SL</fnm>
               </au>
            </aug>
            <source>Pediatrics</source>
            <pubdate>2001</pubdate>
            <volume>107</volume>
            <issue>5</issue>
            <fpage>E84</fpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">11331734</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B16">
            <title>
               <p>A population-based study of measles, mumps, and rubella vaccination and autism</p>
            </title>
            <aug>
               <au>
                  <snm>Madsen</snm>
                  <fnm>KM</fnm>
               </au>
               <au>
                  <snm>Hviid</snm>
                  <fnm/>
               </au>
               <au>
                  <snm>Vestergaard</snm>
                  <fnm>M</fnm>
               </au>
               <etal/>
            </aug>
            <source>N Engl J Med</source>
            <pubdate>2002</pubdate>
            <volume>347</volume>
            <fpage>1477</fpage>
            <lpage>1482</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">12421889</pubid>
                  <pubid idtype="doi">10.1056/NEJMoa021134</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B17">
            <title>
               <p>Measles, mumps, and rubella vaccination and bowel problems or developmental regression in children with autism: population study</p>
            </title>
            <aug>
               <au>
                  <snm>Taylor</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Miller</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Lingam</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Andrews</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Simmons</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Stowe</snm>
                  <fnm>J</fnm>
               </au>
            </aug>
            <source>BMJ</source>
            <pubdate>2002</pubdate>
            <volume>324</volume>
            <fpage>393</fpage>
            <lpage>396</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">11850369</pubid>
                  <pubid idtype="doi">10.1136/bmj.324.7334.393</pubid>
                  <pubid idtype="pmcid">65532</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B18">
            <title>
               <p>Prenatal exposure to maternal infection alters cytokine expression in the placenta, amniotic fluid and fetal brain</p>
            </title>
            <aug>
               <au>
                  <snm>Urakubo</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Jarskog</snm>
                  <fnm>LF</fnm>
               </au>
               <au>
                  <snm>Lieberman</snm>
                  <fnm>JA</fnm>
               </au>
               <au>
                  <snm>Gilmore</snm>
                  <fnm>JH</fnm>
               </au>
            </aug>
            <source>Schizophrenia Research</source>
            <pubdate>2001</pubdate>
            <volume>47</volume>
            <fpage>27</fpage>
            <lpage>36</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">11163542</pubid>
                  <pubid idtype="doi">10.1016/S0920-9964(00)00032-3</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B19">
            <title>
               <p>Metallothionein-1+2 Deficiency Increases Brain Pathology in Transgenic Mice with Astrocyte-Targeted Expression of Interleukin 6</p>
            </title>
            <aug>
               <au>
                  <snm>Giralt</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Penkowa</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Hernandez</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Molinero</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Carrasco</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Lago</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Camats</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Campbell</snm>
                  <fnm>IL</fnm>
               </au>
               <au>
                  <snm>Hidalgo</snm>
                  <fnm>J</fnm>
               </au>
            </aug>
            <source>Neurobiology of Disease</source>
            <pubdate>2002</pubdate>
            <volume>9</volume>
            <fpage>319</fpage>
            <lpage>338</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">11950277</pubid>
                  <pubid idtype="doi">10.1006/nbdi.2002.0480</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B20">
            <title>
               <p>The neurobiology of infantile autism</p>
            </title>
            <aug>
               <au>
                  <snm>Ciaranello</snm>
                  <fnm>AL</fnm>
               </au>
               <au>
                  <snm>Ciaranello</snm>
                  <fnm>RD</fnm>
               </au>
            </aug>
            <source>Annu Rev Neurosci</source>
            <pubdate>1995</pubdate>
            <volume>18</volume>
            <fpage>101</fpage>
            <lpage>128</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">7605057</pubid>
                  <pubid idtype="doi">10.1146/annurev.ne.18.030195.000533</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B21">
            <title>
               <p>An infection-based model of neurodevelopmental damage</p>
            </title>
            <aug>
               <au>
                  <snm>Hornig</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Weissenbock</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Horscroft</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Lipkin</snm>
                  <fnm>WI</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Science</source>
            <pubdate>1999</pubdate>
            <volume>96</volume>
            <issue>21</issue>
            <fpage>12102</fpage>
            <lpage>12107</lpage>
            <xrefbib>
               <pubid idtype="doi">10.1073/pnas.96.21.12102</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B22">
            <title>
               <p>Maternal infection: window on neuroimmune interactions in fetal brain development and mental illness</p>
            </title>
            <aug>
               <au>
                  <snm>Patterson</snm>
                  <fnm>PH</fnm>
               </au>
            </aug>
            <source>Curr Opin Neurobiol</source>
            <pubdate>2002</pubdate>
            <volume>12</volume>
            <fpage>115</fpage>
            <lpage>118</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">11861174</pubid>
                  <pubid idtype="doi">10.1016/S0959-4388(02)00299-4</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B23">
            <title>
               <p>Borna Disease Virus Infection of the Neonatal Rat: Developmental Brain Injury model of Autism Spectrum Disorders</p>
            </title>
            <aug>
               <au>
                  <snm>Pletnikov</snm>
                  <fnm>MV</fnm>
               </au>
               <au>
                  <snm>Moran</snm>
                  <fnm>TH</fnm>
               </au>
               <au>
                  <snm>Carbone</snm>
                  <fnm>KM</fnm>
               </au>
            </aug>
            <source>Frontiers in Bioscience 7</source>
            <pubdate>2002</pubdate>
            <volume>1</volume>
            <fpage>d593</fpage>
            <lpage>607</lpage>
         </bibl>
         <bibl id="B24">
            <title>
               <p>Neuropathology of infantile autism</p>
            </title>
            <aug>
               <au>
                  <snm>Kemper</snm>
                  <fnm>TL</fnm>
               </au>
               <au>
                  <snm>Bauman</snm>
                  <fnm>M</fnm>
               </au>
            </aug>
            <source>J Neuropathol Exp Neurol</source>
            <pubdate>1998</pubdate>
            <volume>57</volume>
            <fpage>645</fpage>
            <lpage>652</lpage>
            <xrefbib>
               <pubid idtype="pmpid">9690668</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B25">
            <title>
               <p>The amygdala and related structures in the pathophysiology of autism</p>
            </title>
            <aug>
               <au>
                  <snm>Sweeten</snm>
                  <fnm>TL</fnm>
               </au>
               <au>
                  <snm>Posey</snm>
                  <fnm>DJ</fnm>
               </au>
               <au>
                  <snm>Shekhar</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>McDougle</snm>
                  <fnm>CJ</fnm>
               </au>
            </aug>
            <source>Pharmacol Biochem Behavior</source>
            <pubdate>2002</pubdate>
            <volume>71</volume>
            <fpage>449</fpage>
            <lpage>455</lpage>
            <xrefbib>
               <pubid idtype="doi">10.1016/S0091-3057(01)00697-9</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B26">
            <title>
               <p>Neuropeptides and neurotrophins in neonatal blood of children with autism or mental retardation</p>
            </title>
            <aug>
               <au>
                  <snm>Nelson</snm>
                  <fnm>KB</fnm>
               </au>
               <au>
                  <snm>Grether</snm>
                  <fnm>JK</fnm>
               </au>
               <au>
                  <snm>Croen</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Dambrosia</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Dickens</snm>
                  <fnm>BF</fnm>
               </au>
               <au>
                  <snm>Jelliffe</snm>
                  <fnm>LL</fnm>
               </au>
               <au>
                  <snm>Hansen</snm>
                  <fnm>RL</fnm>
               </au>
               <au>
                  <snm>Phillips</snm>
                  <fnm>TM</fnm>
               </au>
            </aug>
            <source>Ann Neurol</source>
            <pubdate>2001</pubdate>
            <volume>49</volume>
            <fpage>597</fpage>
            <lpage>606</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid">11357950</pubid>
                  <pubid idtype="doi">10.1002/ana.1024.abs</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B27">
            <title>
               <p>Concomitant administration of varicella vaccine with combined measles, mumps and rubella vaccine in healthy children aged 12 to 24 months of age</p>
            </title>
            <aug>
               <au>
                  <snm>Stuck</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Stehr</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Bock</snm>
                  <fnm>HL</fnm>
               </au>
            </aug>
            <source>Asian Pac J Allergy Immunol</source>
            <pubdate>2002</pubdate>
            <volume>20</volume>
            <issue>2</issue>
            <fpage>113</fpage>
            <lpage>120</lpage>
            <xrefbib>
               <pubid idtype="pmpid">12403196</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B28">
            <title>
               <p>Textbook of Pediatrics</p>
            </title>
            <aug>
               <au>
                  <snm>Arvin</snm>
                  <fnm>AM</fnm>
               </au>
            </aug>
            <publisher>WB Saunders Company, Philadelphia</publisher>
            <editor>Waldo E. Nelson, Behrman RE, Kliegman RM, Arvin AM</editor>
            <edition>15</edition>
            <pubdate>1996</pubdate>
            <volume>165</volume>
            <fpage>162</fpage>
            <lpage>163</lpage>
         </bibl>
         <bibl id="B29">
            <title>
               <p>Cytokine Actions On Fever</p>
            </title>
            <aug>
               <au>
                  <snm>Kluger</snm>
                  <fnm>MJ</fnm>
               </au>
               <au>
                  <snm>Leon</snm>
                  <fnm>LR</fnm>
               </au>
               <au>
                  <snm>Kozak</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Soszynski</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Conn</snm>
                  <fnm>CA</fnm>
               </au>
            </aug>
            <source>In Cytokines in the Nervous System</source>
            <publisher>RG Landes Company</publisher>
            <editor>Rothwell NJ</editor>
            <pubdate>1996</pubdate>
            <volume>5</volume>
            <fpage>73</fpage>
            <lpage>92</lpage>
         </bibl>
         <bibl id="B30">
            <title>
               <p>Fever: Role of Pyrogens and Cryogens</p>
            </title>
            <aug>
               <au>
                  <snm>Kluger</snm>
                  <fnm>MJ</fnm>
               </au>
            </aug>
            <source>Physiological Reviews</source>
            <pubdate>1991</pubdate>
            <volume>71</volume>
            <issue>1</issue>
            <fpage>93</fpage>
            <lpage>127</lpage>
            <xrefbib>
               <pubid idtype="pmpid">1986393</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B31">
            <title>
               <p>Fever and immunoregulation. III. Hyperthermia augments the primary in vitro humoral immune response</p>
            </title>
            <aug>
               <au>
                  <snm>Jampel</snm>
                  <fnm>HD</fnm>
               </au>
               <au>
                  <snm>Duff</snm>
                  <fnm>GW</fnm>
               </au>
               <au>
                  <snm>Gershon</snm>
                  <fnm>RK</fnm>
               </au>
               <au>
                  <snm>Atkins</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Durum</snm>
                  <fnm>SK</fnm>
               </au>
            </aug>
            <source>J Exp Med</source>
            <pubdate>1983</pubdate>
            <volume>157</volume>
            <fpage>1229</fpage>
            <lpage>1238</lpage>
            <xrefbib>
               <pubid idtype="pmpid">6220108</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B32">
            <title>
               <p>Hyperthermia and human leukocyte functions: effects of response of lymphocytes to mitogens and antigens and bacterial capacity of monocytes and neutrophils</p>
            </title>
            <aug>
               <au>
                  <snm>Roberts</snm>
                  <fnm>NJ</fnm>
                  <suf>Jr</suf>
               </au>
               <au>
                  <snm>Steigbigel</snm>
                  <fnm>RT</fnm>
               </au>
            </aug>
            <source>Infect Immun</source>
            <pubdate>1977</pubdate>
            <volume>18</volume>
            <fpage>673</fpage>
            <lpage>679</lpage>
            <xrefbib>
               <pubid idtype="pmpid">412788</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B33">
            <title>
               <p>The actions of interferon are potentiated at elevated temperature</p>
            </title>
            <aug>
               <au>
                  <snm>Heron</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Berg</snm>
                  <fnm>K</fnm>
               </au>
            </aug>
            <source>Nature Lond</source>
            <pubdate>1978</pubdate>
            <volume>274</volume>
            <fpage>508</fpage>
            <lpage>510</lpage>
            <xrefbib>
               <pubid idtype="pmpid">307691</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B34">
            <title>
               <p>Antitumor effect of combined interferon and hyperthermia in mice</p>
            </title>
            <aug>
               <au>
                  <snm>Yerushalmi</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Tovey</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Gresser</snm>
                  <fnm>I</fnm>
               </au>
            </aug>
            <source>Proc Soc Exp Biol Med</source>
            <pubdate>1982</pubdate>
            <volume>169</volume>
            <fpage>413</fpage>
            <lpage>415</lpage>
            <xrefbib>
               <pubid idtype="pmpid">6174990</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B35">
            <title>
               <p>Factors affecting mortality of gram-negative rod bacteremia</p>
            </title>
            <aug>
               <au>
                  <snm>Bryant</snm>
                  <fnm>TE</fnm>
               </au>
               <au>
                  <snm>Hood</snm>
                  <fnm>AF</fnm>
               </au>
               <au>
                  <snm>Hood</snm>
                  <fnm>CE</fnm>
               </au>
               <au>
                  <snm>Loenig</snm>
                  <fnm>MG</fnm>
               </au>
            </aug>
            <source>Arch Intern Med</source>
            <pubdate>1971</pubdate>
            <volume>127</volume>
            <fpage>120</fpage>
            <lpage>128</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid">4923385</pubid>
                  <pubid idtype="doi">10.1001/archinte.127.1.120</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B36">
            <title>
               <p>The relationship of white blood cells (WBC) and pyrogenic response to survival in spontaneous bacterial peritonitis (SBP)</p>
            </title>
            <aug>
               <au>
                  <snm>Hoefs</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Sapico</snm>
                  <fnm>FL</fnm>
               </au>
               <au>
                  <snm>Canawati</snm>
                  <fnm>HN</fnm>
               </au>
               <au>
                  <snm>Montgomerie</snm>
                  <fnm>JZ</fnm>
               </au>
            </aug>
            <source>Gastroenterology</source>
            <pubdate>1980</pubdate>
            <volume>78</volume>
            <fpage>1308</fpage>
         </bibl>
         <bibl id="B37">
            <title>
               <p>Polymicrobial sepsis: an analysis of 184 cases using log linear models</p>
            </title>
            <aug>
               <au>
                  <snm>Mackowiak</snm>
                  <fnm>PA</fnm>
               </au>
               <au>
                  <snm>Browne</snm>
                  <fnm>RG</fnm>
               </au>
               <au>
                  <snm>Southern</snm>
                  <fnm>PM</fnm>
                  <suf>Jr</suf>
               </au>
               <au>
                  <snm>Smith</snm>
                  <fnm>JW</fnm>
               </au>
            </aug>
            <source>Am J Med Sci</source>
            <pubdate>1980</pubdate>
            <volume>280</volume>
            <fpage>73</fpage>
            <lpage>80</lpage>
            <xrefbib>
               <pubid idtype="pmpid">7435520</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B38">
            <title>
               <p>Spontaneous bacterial peritonitis. A review of 28 cases with emphasis on improved survival and factors influencing prognosis</p>
            </title>
            <aug>
               <au>
                  <snm>Weinstein</snm>
                  <fnm>MP</fnm>
               </au>
               <au>
                  <snm>Iannini</snm>
                  <fnm>PB</fnm>
               </au>
               <au>
                  <snm>Stratton</snm>
                  <fnm>CW</fnm>
               </au>
               <au>
                  <snm>Eickhoff</snm>
                  <fnm>TC</fnm>
               </au>
            </aug>
            <source>Am J Med</source>
            <pubdate>1978</pubdate>
            <volume>64</volume>
            <fpage>592</fpage>
            <lpage>598</lpage>
            <xrefbib>
               <pubid idtype="pmpid">645725</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B39">
            <title>
               <p>Traitement du coryza et des rhinites persistantes allergizues par la thermotherapie</p>
            </title>
            <aug>
               <au>
                  <snm>Yerushalmi</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Wolff</snm>
                  <fnm>A</fnm>
               </au>
            </aug>
            <source>C R Hebd Seances Acad Sci Ser D Sci Nat</source>
            <pubdate>1980</pubdate>
            <volume>291</volume>
            <fpage>119</fpage>
            <lpage>124</lpage>
         </bibl>
         <bibl id="B40">
            <title>
               <p>Function of fever</p>
            </title>
            <aug>
               <au>
                  <snm>Haahr</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Mogensen</snm>
                  <fnm>S</fnm>
               </au>
            </aug>
            <source>Lancet</source>
            <pubdate>1977</pubdate>
            <volume>2</volume>
            <fpage>613</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1016/S0140-6736(77)91464-7</pubid>
                  <pubid idtype="pmpid">71431</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B41">
            <title>
               <p>Antipyresis effect on mortality rate of bacterially infected rabbits</p>
            </title>
            <aug>
               <au>
                  <snm>Vaughn</snm>
                  <fnm>LK</fnm>
               </au>
               <au>
                  <snm>Veale</snm>
                  <fnm>WL</fnm>
               </au>
               <au>
                  <snm>Cooper</snm>
                  <fnm>KE</fnm>
               </au>
            </aug>
            <source>Brain Res Bull</source>
            <pubdate>1980</pubdate>
            <volume>5</volume>
            <fpage>69</fpage>
            <lpage>73</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid">7363103</pubid>
                  <pubid idtype="doi">10.1016/0361-9230(80)90285-3</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B42">
            <title>
               <p>Elevation of nasal viral levels by suppression of fever in ferrets infected with influenza viruses of differing virulence</p>
            </title>
            <aug>
               <au>
                  <snm>Husseini</snm>
                  <fnm>RH</fnm>
               </au>
               <au>
                  <snm>Sweet</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Collie</snm>
                  <fnm>MH</fnm>
               </au>
               <au>
                  <snm>Smith</snm>
                  <fnm>H</fnm>
               </au>
            </aug>
            <source>J Infect Dis</source>
            <pubdate>1982</pubdate>
            <volume>145</volume>
            <fpage>520</fpage>
            <lpage>524</lpage>
            <xrefbib>
               <pubid idtype="pmpid">7069233</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B43">
            <title>
               <p>Small differences in intraischemic brain temperature critically determine the extent of ischemic neuronal injury</p>
            </title>
            <aug>
               <au>
                  <snm>Busto</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Dietrich</snm>
                  <fnm>WD</fnm>
               </au>
               <au>
                  <snm>Globus</snm>
                  <fnm>MY</fnm>
               </au>
               <au>
                  <snm>Valdes</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Scheinberg</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Ginsberg</snm>
                  <fnm>MD</fnm>
               </au>
            </aug>
            <source>J Cereb Blood Flow Metab</source>
            <pubdate>1987</pubdate>
            <volume>7</volume>
            <fpage>729</fpage>
            <lpage>738</lpage>
            <xrefbib>
               <pubid idtype="pmpid">3693428</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B44">
            <title>
               <p>Elevated maternal and fetal serum interleukin-6 levels are associated with epidural fever</p>
            </title>
            <aug>
               <au>
                  <snm>Goetzl</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Evans</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Rivers</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Suresh</snm>
                  <fnm>MS</fnm>
               </au>
               <au>
                  <snm>Lieberman</snm>
                  <fnm>E</fnm>
               </au>
            </aug>
            <source>Am J Obstet Gynecol</source>
            <pubdate>2002</pubdate>
            <volume>187</volume>
            <issue>4</issue>
            <fpage>834</fpage>
            <lpage>8</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">12388959</pubid>
                  <pubid idtype="doi">10.1067/mob.2002.127135</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B45">
            <title>
               <p>The fetomaternal dependency of cord blood interleukin-6</p>
            </title>
            <aug>
               <au>
                  <snm>De Jongh</snm>
                  <fnm>RF</fnm>
               </au>
               <au>
                  <snm>Puylaert</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Bosman</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Ombelet</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Maes</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Heylen</snm>
                  <fnm>R</fnm>
               </au>
            </aug>
            <source>J of Perinatol</source>
            <pubdate>1999</pubdate>
            <volume>16</volume>
            <issue>3</issue>
            <fpage>121</fpage>
            <lpage>128</lpage>
         </bibl>
         <bibl id="B46">
            <title>
               <p>Role of Interleukin 6 and Soluble IL-6 Receptor in Region-Specific Induction of Astrocytic Differentiation and Neurotrophin Expression</p>
            </title>
            <aug>
               <au>
                  <snm>Marz</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Heese</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Dimitriades-Schmutz</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Rose-John</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Otten</snm>
                  <fnm>U</fnm>
               </au>
            </aug>
            <source>Glia</source>
            <pubdate>1999</pubdate>
            <volume>26</volume>
            <fpage>191</fpage>
            <lpage>200</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">10340760</pubid>
                  <pubid idtype="doi">10.1002/(SICI)1098-1136(199905)26:3&lt;191::AID-GLIA1>3.0.CO;2-#</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B47">
            <title>
               <p>Altered physiology of Purkinje neurons in cerebeller slices from transgenic mice with chronic central nervous system expression of interleukins-6</p>
            </title>
            <aug>
               <au>
                  <snm>Nelson</snm>
                  <fnm>TE</fnm>
               </au>
               <au>
                  <snm>Campbell</snm>
                  <fnm>IL</fnm>
               </au>
               <au>
                  <snm>Gruol</snm>
                  <fnm>DL</fnm>
               </au>
            </aug>
            <source>Neuroscience</source>
            <pubdate>1999</pubdate>
            <volume>89</volume>
            <fpage>127</fpage>
            <lpage>136</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">10051222</pubid>
                  <pubid idtype="doi">10.1016/S0306-4522(98)00316-9</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B48">
            <title>
               <p>Toll-like Receptor Signaling and Regulation of Cytokine Gene Expression in the Immune System</p>
            </title>
            <aug>
               <au>
                  <snm>Ozato</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Tsujimura</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Tamura</snm>
                  <fnm>T</fnm>
               </au>
            </aug>
            <source>BioTechniques</source>
            <pubdate>2002</pubdate>
            <volume>33</volume>
            <issue>suppl</issue>
            <fpage>S66</fpage>
            <lpage>S75</lpage>
         </bibl>
         <bibl id="B49">
            <title>
               <p>Broad Expression of Toll-Like Receptors in the Human Central Nervous System</p>
            </title>
            <aug>
               <au>
                  <snm>Bsibsi</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Ravid</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Gveric</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Van Noort</snm>
                  <fnm>JM</fnm>
               </au>
            </aug>
            <source>J Neuropath and Exp Neurology</source>
            <pubdate>2002</pubdate>
            <volume>61#11</volume>
            <fpage>1013</fpage>
            <lpage>1021</lpage>
         </bibl>
         <bibl id="B50">
            <title>
               <p>Immune Function of Microglia</p>
            </title>
            <aug>
               <au>
                  <snm>Aloisi</snm>
                  <fnm>F</fnm>
               </au>
            </aug>
            <source>Glia</source>
            <pubdate>2001</pubdate>
            <volume>36</volume>
            <fpage>165</fpage>
            <lpage>179</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">11596125</pubid>
                  <pubid idtype="doi">10.1002/glia.1106</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B51">
            <title>
               <p>Innate Immunity: The missing link in neuroprotection and neurodegeneration?</p>
            </title>
            <aug>
               <au>
                  <snm>Nguyen</snm>
                  <fnm>MD</fnm>
               </au>
               <au>
                  <snm>Julien</snm>
                  <fnm>JP</fnm>
               </au>
               <au>
                  <snm>Rivest</snm>
                  <fnm>S</fnm>
               </au>
            </aug>
            <source>Nature Reviews/ Neuroscience</source>
            <pubdate>2002</pubdate>
            <volume>3</volume>
            <fpage>2216</fpage>
            <lpage>227</lpage>
         </bibl>
         <bibl id="B52">
            <title>
               <p>Antipyretics in children</p>
            </title>
            <aug>
               <au>
                  <snm>Chandra</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Bhatnagar</snm>
                  <fnm>SK</fnm>
               </au>
            </aug>
            <source>Indian J Pediatr</source>
            <pubdate>2002</pubdate>
            <volume>69</volume>
            <issue>1</issue>
            <fpage>69</fpage>
            <lpage>74</lpage>
            <xrefbib>
               <pubid idtype="pmpid">11876124</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B53">
            <title>
               <p>Public Health Services study of Reye's syndrome and medications. Report of the main study</p>
            </title>
            <aug>
               <au>
                  <snm>Hurwitz</snm>
                  <fnm>ES</fnm>
               </au>
               <au>
                  <snm>Barrett</snm>
                  <fnm>MJ</fnm>
               </au>
               <au>
                  <snm>Bregman</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Gunn</snm>
                  <fnm>WJ</fnm>
               </au>
               <au>
                  <snm>Pinsky</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Schonberger</snm>
                  <fnm>LB</fnm>
               </au>
               <au>
                  <snm>Drage</snm>
                  <fnm>JS</fnm>
               </au>
               <au>
                  <snm>Kaslow</snm>
                  <fnm>RA</fnm>
               </au>
               <au>
                  <snm>Burlington</snm>
                  <fnm>DB</fnm>
               </au>
               <au>
                  <snm>Quinnan</snm>
                  <fnm>GV</fnm>
               </au>
               <etal/>
            </aug>
            <source>JAMA</source>
            <volume>257</volume>
            <issue>14</issue>
            <fpage>1905</fpage>
            <lpage>1911</lpage>
            <note>1987 Apr 10</note>
         </bibl>
         <bibl id="B54">
            <title>
               <p>Acetaminophen-induced immunosuppression associated with hepatotoxicity in mice</p>
            </title>
            <aug>
               <au>
                  <snm>Ueno</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Yamaura</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Nakamura</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Satoh</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Yano</snm>
                  <fnm>S</fnm>
               </au>
            </aug>
            <source>Res Commun Mol Pathol Pharmacol</source>
            <pubdate>2000</pubdate>
            <volume>108</volume>
            <issue>3&#8211;4</issue>
            <fpage>237</fpage>
            <lpage>51</lpage>
            <xrefbib>
               <pubid idtype="pmpid">11913715</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B55">
            <title>
               <p>Inhibition of antibody production by acetaminophen independent of liver injury in mice</p>
            </title>
            <aug>
               <au>
                  <snm>Yamaura</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Ogawa</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Yonekawa</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Nakamura</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Yano</snm>
                  <fnm/>
               </au>
               <au>
                  <snm>Ueno</snm>
                  <fnm>K</fnm>
               </au>
            </aug>
            <source>Biol Pharm Bull</source>
            <pubdate>2002</pubdate>
            <volume>25</volume>
            <issue>2</issue>
            <fpage>201</fpage>
            <lpage>205</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">11853166</pubid>
                  <pubid idtype="doi">10.1248/bpb.25.201</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B56">
            <title>
               <p>Impairment of TNF-alpha expression and secretion in primary rat liver cell cultures by acetaminophen treatment</p>
            </title>
            <aug>
               <au>
                  <snm>Nastevska</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Gerber</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Horbach</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Rohrdanz</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Kahl</snm>
                  <fnm>R</fnm>
               </au>
            </aug>
            <source>Toxicology</source>
            <volume>133</volume>
            <issue>2&#8211;3</issue>
            <fpage>85</fpage>
            <lpage>92</lpage>
            <note>1999 April 15</note>
         </bibl>
         <bibl id="B57">
            <title>
               <p>Role of CCR2 in macrophage migration into the liver during acetaminophen-induced hepatotoxicity in the mouse</p>
            </title>
            <aug>
               <au>
                  <snm>Dambach</snm>
                  <fnm>DM</fnm>
               </au>
               <au>
                  <snm>Watson</snm>
                  <fnm>LM</fnm>
               </au>
               <au>
                  <snm>Gray</snm>
                  <fnm>KR</fnm>
               </au>
               <au>
                  <snm>Durham</snm>
                  <fnm>SK</fnm>
               </au>
               <au>
                  <snm>Laskin</snm>
                  <fnm>DL</fnm>
               </au>
            </aug>
            <source>Hepatology</source>
            <pubdate>2002</pubdate>
            <volume>35</volume>
            <issue>5</issue>
            <fpage>1093</fpage>
            <lpage>1103</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmpid" link="fulltext">11981759</pubid>
                  <pubid idtype="doi">10.1053/jhep.2002.33162</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B58">
            <title>
               <p>Administration of interleukins 1 at birth affects dopaminergis neurons in adult mice</p>
            </title>
            <aug>
               <au>
                  <snm>Kabiersch</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Furukawa</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Del Ray</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Besedovsky</snm>
                  <fnm>HO</fnm>
               </au>
            </aug>
            <source>Annals of the New York Academy of Sciences</source>
            <volume>840</volume>
            <fpage>123</fpage>
            <lpage>127</lpage>
            <note>1998 May 1</note>
         </bibl>
         <bibl id="B59">
            <title>
               <p>Maternal infection regulates BDNF and NGF expression in fetal and neonatal brain and maternal-fetal unit of the rat</p>
            </title>
            <aug>
               <au>
                  <snm>Gilmore</snm>
                  <fnm>JH</fnm>
               </au>
               <au>
                  <snm>Jarskog</snm>
                  <fnm>LF</fnm>
               </au>
               <au>
                  <snm>Vadlamudi</snm>
                  <fnm>S</fnm>
               </au>
            </aug>
            <source>J of Neuroimmunol</source>
            <pubdate>2003</pubdate>
            <volume>138</volume>
            <issue>840</issue>
            <fpage>123</fpage>
            <lpage>127</lpage>
         </bibl>
         <bibl id="B60">
            <title>
               <p>Proteomics and Bioinformatics Approaches for Identification of Serum Biomarkers to Detect Breast Cancer</p>
            </title>
            <aug>
               <au>
                  <snm>Li</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Zhang</snm>
                  <fnm>Z</fnm>
               </au>
               <au>
                  <snm>Rosenzweig</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Wang</snm>
                  <fnm>YY</fnm>
               </au>
               <au>
                  <snm>Chan</snm>
                  <fnm>DW</fnm>
               </au>
            </aug>
            <source>Clinical Chemistry</source>
            <pubdate>2002</pubdate>
            <volume>48</volume>
            <issue>8</issue>
            <fpage>1296</fpage>
            <lpage>1304</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">12142387</pubid>
            </xrefbib>
         </bibl>
      </refgrp>
      <sec>
         <st>
            <p>Pre-publication history</p>
         </st>
         <p>The pre-publication history for this paper can be accessed here:</p>
         <p>
            <url>http://www.biomedcentral.com/1471-2431/3/9/prepub</url>
         </p>
      </sec>
   </bm>
</art>

