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Dive into the research topics where Sergio E. Baranzini is active.

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Featured researches published by Sergio E. Baranzini.


Nature Genetics | 2009

Meta-analysis of genome scans and replication identify CD6, IRF8 and TNFRSF1A as new multiple sclerosis susceptibility loci

Philip L. De Jager; Xiaoming Jia; Joanne Wang; Paul I. W. de Bakker; Linda Ottoboni; Neelum T. Aggarwal; Laura Piccio; Soumya Raychaudhuri; Dong Tran; Cristin Aubin; Rebeccah Briskin; Susan Romano; Sergio E. Baranzini; Jacob L. McCauley; Margaret A. Pericak-Vance; Jonathan L. Haines; Rachel A. Gibson; Yvonne Naeglin; Bernard M. J. Uitdehaag; Paul M. Matthews; Ludwig Kappos; Chris H. Polman; Wendy L. McArdle; David P. Strachan; Denis A. Evans; Anne H. Cross; Mark J. Daly; Alastair Compston; Stephen Sawcer; Howard L. Weiner

We report the results of a meta-analysis of genome-wide association scans for multiple sclerosis (MS) susceptibility that includes 2,624 subjects with MS and 7,220 control subjects. Replication in an independent set of 2,215 subjects with MS and 2,116 control subjects validates new MS susceptibility loci at TNFRSF1A (combined P = 1.59 × 10−11), IRF8 (P = 3.73 × 10−9) and CD6 (P = 3.79 × 10−9). TNFRSF1A harbors two independent susceptibility alleles: rs1800693 is a common variant with modest effect (odds ratio = 1.2), whereas rs4149584 is a nonsynonymous coding polymorphism of low frequency but with stronger effect (allele frequency = 0.02; odds ratio = 1.6). We also report that the susceptibility allele near IRF8, which encodes a transcription factor known to function in type I interferon signaling, is associated with higher mRNA expression of interferon-response pathway genes in subjects with MS.


Nature | 2010

Genome, epigenome and RNA sequences of monozygotic twins discordant for multiple sclerosis

Sergio E. Baranzini; Joann Mudge; Jennifer C. van Velkinburgh; Pouya Khankhanian; Irina Khrebtukova; Neil Miller; Lu Zhang; Andrew D. Farmer; Callum J. Bell; Ryan W. Kim; Gregory D. May; Jimmy E. Woodward; Stacy J. Caillier; Joseph P. McElroy; Refujia Gomez; Marcelo J. Pando; Leonda E. Clendenen; Elena E. Ganusova; Faye D. Schilkey; Thiruvarangan Ramaraj; Omar Khan; Jim J. Huntley; Shujun Luo; Pui-Yan Kwok; Thomas D. Wu; Gary P. Schroth; Jorge R. Oksenberg; Stephen L. Hauser; Stephen F. Kingsmore

Monozygotic or ‘identical’ twins have been widely studied to dissect the relative contributions of genetics and environment in human diseases. In multiple sclerosis (MS), an autoimmune demyelinating disease and common cause of neurodegeneration and disability in young adults, disease discordance in monozygotic twins has been interpreted to indicate environmental importance in its pathogenesis. However, genetic and epigenetic differences between monozygotic twins have been described, challenging the accepted experimental model in disambiguating the effects of nature and nurture. Here we report the genome sequences of one MS-discordant monozygotic twin pair, and messenger RNA transcriptome and epigenome sequences of CD4+ lymphocytes from three MS-discordant, monozygotic twin pairs. No reproducible differences were detected between co-twins among ∼3.6 million single nucleotide polymorphisms (SNPs) or ∼0.2 million insertion-deletion polymorphisms. Nor were any reproducible differences observed between siblings of the three twin pairs in HLA haplotypes, confirmed MS-susceptibility SNPs, copy number variations, mRNA and genomic SNP and insertion-deletion genotypes, or the expression of ∼19,000 genes in CD4+ T cells. Only 2 to 176 differences in the methylation of ∼2 million CpG dinucleotides were detected between siblings of the three twin pairs, in contrast to ∼800 methylation differences between T cells of unrelated individuals and several thousand differences between tissues or between normal and cancerous tissues. In the first systematic effort to estimate sequence variation among monozygotic co-twins, we did not find evidence for genetic, epigenetic or transcriptome differences that explained disease discordance. These are the first, to our knowledge, female, twin and autoimmune disease individual genome sequences reported.


Genes & Development | 2009

Dysregulation of the Wnt pathway inhibits timely myelination and remyelination in the mammalian CNS

Stephen P.J. Fancy; Sergio E. Baranzini; Chao Zhao; Dong-in Yuk; Karen-Amanda Irvine; Sovann Kaing; Nader Sanai; Robin J.M. Franklin; David H. Rowitch

The progressive loss of CNS myelin in patients with multiple sclerosis (MS) has been proposed to result from the combined effects of damage to oligodendrocytes and failure of remyelination. A common feature of demyelinated lesions is the presence of oligodendrocyte precursors (OLPs) blocked at a premyelinating stage. However, the mechanistic basis for inhibition of myelin repair is incompletely understood. To identify novel regulators of OLP differentiation, potentially dysregulated during repair, we performed a genome-wide screen of 1040 transcription factor-encoding genes expressed in remyelinating rodent lesions. We report that approximately 50 transcription factor-encoding genes show dynamic expression during repair and that expression of the Wnt pathway mediator Tcf4 (aka Tcf7l2) within OLPs is specific to lesioned-but not normal-adult white matter. We report that beta-catenin signaling is active during oligodendrocyte development and remyelination in vivo. Moreover, we observed similar regulation of Tcf4 in the developing human CNS and lesions of MS. Data mining revealed elevated levels of Wnt pathway mRNA transcripts and proteins within MS lesions, indicating activation of the pathway in this pathological context. We show that dysregulation of Wnt-beta-catenin signaling in OLPs results in profound delay of both developmental myelination and remyelination, based on (1) conditional activation of beta-catenin in the oligodendrocyte lineage in vivo and (2) findings from APC(Min) mice, which lack one functional copy of the endogenous Wnt pathway inhibitor APC. Together, our findings indicate that dysregulated Wnt-beta-catenin signaling inhibits myelination/remyelination in the mammalian CNS. Evidence of Wnt pathway activity in human MS lesions suggests that its dysregulation might contribute to inefficient myelin repair in human neurological disorders.


Nature | 2008

Proteomic analysis of active multiple sclerosis lesions reveals therapeutic targets

May H. Han; Sun-Il Hwang; Dolly Roy; Deborah H. Lundgren; Jordan V. Price; Shalina S. Ousman; Guy Haskin Fernald; Bruce Gerlitz; William H. Robinson; Sergio E. Baranzini; Brian W. Grinnell; Cedric S. Raine; Raymond A. Sobel; David K. Han; Lawrence Steinman

Understanding the neuropathology of multiple sclerosis (MS) is essential for improved therapies. Therefore, identification of targets specific to pathological types of MS may have therapeutic benefits. Here we identify, by laser-capture microdissection and proteomics, proteins unique to three major types of MS lesions: acute plaque, chronic active plaque and chronic plaque. Comparative proteomic profiles identified tissue factor and protein C inhibitor within chronic active plaque samples, suggesting dysregulation of molecules associated with coagulation. In vivo administration of hirudin or recombinant activated protein C reduced disease severity in experimental autoimmune encephalomyelitis and suppressed Th1 and Th17 cytokines in astrocytes and immune cells. Administration of mutant forms of recombinant activated protein C showed that both its anticoagulant and its signalling functions were essential for optimal amelioration of experimental autoimmune encephalomyelitis. A proteomic approach illuminated potential therapeutic targets selective for specific pathological stages of MS and implicated participation of the coagulation cascade.


Human Molecular Genetics | 2009

Genome-wide association analysis of susceptibility and clinical phenotype in multiple sclerosis

Sergio E. Baranzini; Joanne Wang; Rachel A. Gibson; Nicholas W. Galwey; Yvonne Naegelin; Frederik Barkhof; Ernst Wilhelm Radue; Raija L.P. Lindberg; Bernard Uitdehaag; Michael R. Johnson; Aspasia Angelakopoulou; Leslie Hall; Jill C. Richardson; Rab K. Prinjha; Achim Gass; Jeroen J. G. Geurts; Madeleine H. Sombekke; Hugo Vrenken; Pamela Qualley; Robin Lincoln; Refujia Gomez; Stacy J. Caillier; Michaela F. George; Hourieh Mousavi; Rosa Guerrero; Darin T. Okuda; Bruce Cree; Ari J. Green; Emmanuelle Waubant; Douglas S. Goodin

Multiple sclerosis (MS), a chronic disorder of the central nervous system and common cause of neurological disability in young adults, is characterized by moderate but complex risk heritability. Here we report the results of a genome-wide association study performed in a 1000 prospective case series of well-characterized individuals with MS and group-matched controls using the Sentrix HumanHap550 BeadChip platform from Illumina. After stringent quality control data filtering, we compared allele frequencies for 551 642 SNPs in 978 cases and 883 controls and assessed genotypic influences on susceptibility, age of onset, disease severity, as well as brain lesion load and normalized brain volume from magnetic resonance imaging exams. A multi-analytical strategy identified 242 susceptibility SNPs exceeding established thresholds of significance, including 65 within the MHC locus in chromosome 6p21.3. Independent replication confirms a role for GPC5, a heparan sulfate proteoglycan, in disease risk. Gene ontology-based analysis shows a functional dichotomy between genes involved in the susceptibility pathway and those affecting the clinical phenotype.


Human Molecular Genetics | 2009

Pathway and network-based analysis of genome-wide association studies in multiple sclerosis

Sergio E. Baranzini; Nicholas W. Galwey; Joanne Wang; Pouya Khankhanian; Raija L.P. Lindberg; Daniel Pelletier; Wen Wu; Bernard M. J. Uitdehaag; Ludwig Kappos; Chris H. Polman; Paul M. Matthews; Stephen L. Hauser; Rachel A. Gibson; Jorge R. Oksenberg; Michael R. Barnes

Genome-wide association studies (GWAS) testing several hundred thousand SNPs have been performed in multiple sclerosis (MS) and other complex diseases. Typically, the number of markers in which the evidence for association exceeds the genome-wide significance threshold is very small, and markers that do not exceed this threshold are generally neglected. Classical statistical analysis of these datasets in MS revealed genes with known immunological functions. However, many of the markers showing modest association may represent false negatives. We hypothesize that certain combinations of genes flagged by these markers can be identified if they belong to a common biological pathway. Here we conduct a pathway-oriented analysis of two GWAS in MS that takes into account all SNPs with nominal evidence of association (P < 0.05). Gene-wise P-values were superimposed on a human protein interaction network and searches were conducted to identify sub-networks containing a higher proportion of genes associated with MS than expected by chance. These sub-networks, and others generated at random as a control, were categorized for membership of biological pathways. GWAS from eight other diseases were analyzed to assess the specificity of the pathways identified. In the MS datasets, we identified sub-networks of genes from several immunological pathways including cell adhesion, communication and signaling. Remarkably, neural pathways, namely axon-guidance and synaptic potentiation, were also over-represented in MS. In addition to the immunological pathways previously identified, we report here for the first time the potential involvement of neural pathways in MS susceptibility.


Neurology | 2009

INCIDENTAL MRI ANOMALIES SUGGESTIVE OF MULTIPLE SCLEROSIS: THE RADIOLOGICALLY ISOLATED SYNDROME

Darin T. Okuda; Ellen M. Mowry; A. Beheshtian; Emmanuelle Waubant; Sergio E. Baranzini; Douglas S. Goodin; Stephen L. Hauser; Daniel Pelletier

Background: The discovery and broad application of MRI in medicine has led to an increased awareness in the number of patients with incidental white matter pathology in the CNS. Routinely encountered in clinical practice, the natural history or evolution of such individuals with respect to their risk of developing multiple sclerosis (MS) is unclear. Objective: To investigate the natural history of patients who exhibit incidental imaging findings highly suggestive of MS pathology. Methods: Detailed clinical and radiologic data were obtained from asymptomatic patients with MRI anomalies suggestive of MS. Results: The cohort consisted of 41 female and 3 male subjects (median age = 38.5, range: 16.2–67.1). Clinical evaluations were performed in 44 patients at the time of initial imaging; longitudinal clinical follow-up occurred for 30 patients, and longitudinal MRI data were acquired for 41 patients. Neurologic examination at the time of the initial MRI scans was normal in nearly all cases. While radiologic progression was identified in 59% of cases, only 10 patients converted to either clinically isolated syndrome or definite MS. The presence of contrast-enhancing lesions on the initial MRI was predictive of dissemination in time on repeat imaging of the brain (hazard ratio [HR] = 3.4, 95% confidence interval [1.3, 8.7], p = 0.01). Conclusion: Individuals with MRI anomalies highly suggestive of demyelinating pathology, not better accounted for by another disease process, are very likely to experience subsequent radiologic or clinical events related to multiple sclerosis. Additional studies will be necessary to fully define this risk.


Nature Reviews Genetics | 2008

The genetics of multiple sclerosis: SNPs to pathways to pathogenesis

Jorge R. Oksenberg; Sergio E. Baranzini; Stephen Sawcer; Stephen L. Hauser

Multiple sclerosis (MS) is an autoimmune demyelinating disease and a common cause of neurological disability in young adults. The modest heritability of MS reflects complex genetic effects and multifaceted gene–environment interactions. The human leukocyte antigen (HLA) region is the strongest susceptibility locus for MS, but a genome-wide association study recently identified new susceptibility genes. Progress in high-throughput genotyping and sequencing technologies and a better understanding of the structural organization of the human genome, together with powerful brain-imaging techniques that refine the phenotype, suggest that the tools could finally exist to identify the full set of genes influencing the pathogenesis of MS.


American Journal of Human Genetics | 2004

Mapping Multiple Sclerosis Susceptibility to the HLA-DR Locus in African Americans

Jorge R. Oksenberg; Lisa F. Barcellos; Bruce Cree; Sergio E. Baranzini; Teodorica L. Bugawan; Omar Khan; Robin Lincoln; Amy Swerdlin; Emmanuel Mignot; Ling Lin; Douglas S. Goodin; Henry A. Erlich; Silke Schmidt; Glenys Thomson; David Reich; Margaret A. Pericak-Vance; Jonathan L. Haines; Stephen L. Hauser

An underlying complex genetic susceptibility exists in multiple sclerosis (MS), and an association with the HLA-DRB1*1501-DQB1*0602 haplotype has been repeatedly demonstrated in high-risk (northern European) populations. It is unknown whether the effect is explained by the HLA-DRB1 or the HLA-DQB1 gene within the susceptibility haplotype, which are in strong linkage disequilibrium (LD). African populations are characterized by greater haplotypic diversity and distinct patterns of LD compared with northern Europeans. To better localize the HLA gene responsible for MS susceptibility, case-control and family-based association studies were performed for DRB1 and DQB1 loci in a large and well-characterized African American data set. A selective association with HLA-DRB1*15 was revealed, indicating a primary role for the DRB1 locus in MS independent of DQB1*0602. This finding is unlikely to be solely explained by admixture, since a substantial proportion of the susceptibility chromosomes from African American patients with MS displayed haplotypes consistent with an African origin.


Nature Neuroscience | 2011

Axin2 as regulatory and therapeutic target in newborn brain injury and remyelination

Stephen P.J. Fancy; Emily P. Harrington; Tracy J Yuen; John Silbereis; Chao Zhao; Sergio E. Baranzini; Charlotte C. Bruce; José Javier Otero; Eric J. Huang; Roel Nusse; Robin J.M. Franklin; David H. Rowitch

Permanent damage to white matter tracts, comprising axons and myelinating oligodendrocytes, is an important component of brain injuries of the newborn that cause cerebral palsy and cognitive disabilities, as well as multiple sclerosis in adults. However, regulatory factors relevant in human developmental myelin disorders and in myelin regeneration are unclear. We found that AXIN2 was expressed in immature oligodendrocyte progenitor cells (OLPs) in white matter lesions of human newborns with neonatal hypoxic-ischemic and gliotic brain damage, as well as in active multiple sclerosis lesions in adults. Axin2 is a target of Wnt transcriptional activation that negatively feeds back on the pathway, promoting β-catenin degradation. We found that Axin2 function was essential for normal kinetics of remyelination. The small molecule inhibitor XAV939, which targets the enzymatic activity of tankyrase, acted to stabilize Axin2 levels in OLPs from brain and spinal cord and accelerated their differentiation and myelination after hypoxic and demyelinating injury. Together, these findings indicate that Axin2 is an essential regulator of remyelination and that it might serve as a pharmacological checkpoint in this process.

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Bruce Cree

University of California

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Daniel Pelletier

University of Southern California

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