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Dive into the research topics where Stephen C. J. Parker is active.

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Featured researches published by Stephen C. J. Parker.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Chromatin stretch enhancer states drive cell-specific gene regulation and harbor human disease risk variants

Stephen C. J. Parker; Michael L. Stitzel; D. Leland Taylor; Jose Miguel Orozco; Michael R. Erdos; Jennifer A. Akiyama; Kelly Lammerts van Bueren; Peter S. Chines; Nisc Comparative Sequencing Program; Brian L. Black; Axel Visel; Len A. Pennacchio; Francis S. Collins; Jesse Becker; Betty Benjamin; Robert W. Blakesley; Gerry Bouffard; Shelise Brooks; Holly Coleman; Mila Dekhtyar; Michael Gregory; Xiaobin Guan; Jyoti Gupta; Joel Han; April Hargrove; Shi-ling Ho; Taccara Johnson; Richelle Legaspi; Sean Lovett; Quino Maduro

Significance Using high-throughput experiments, we determined the functional epigenomic landscape in pancreatic islet cells. Computational integration of these data along with similar data from the ENCODE project revealed the presence of large gene control elements across diverse cell types that we refer to as “stretch enhancers.” Stretch enhancers are cell type specific and are associated with increased expression of genes involved in cell-specific processes. We find that genetic variations associated with common disease are highly enriched in stretch enhancers; notably, stretch enhancers specific to pancreatic islets harbor variants linked to type 2 diabetes and related traits. We propose that stretch enhancers form as pluripotent cells differentiate into committed lineages, to program important cell-specific gene expression. Chromatin-based functional genomic analyses and genomewide association studies (GWASs) together implicate enhancers as critical elements influencing gene expression and risk for common diseases. Here, we performed systematic chromatin and transcriptome profiling in human pancreatic islets. Integrated analysis of islet data with those from nine cell types identified specific and significant enrichment of type 2 diabetes and related quantitative trait GWAS variants in islet enhancers. Our integrated chromatin maps reveal that most enhancers are short (median = 0.8 kb). Each cell type also contains a substantial number of more extended (≥3 kb) enhancers. Interestingly, these stretch enhancers are often tissue-specific and overlap locus control regions, suggesting that they are important chromatin regulatory beacons. Indeed, we show that (i) tissue specificity of enhancers and nearby gene expression increase with enhancer length; (ii) neighborhoods containing stretch enhancers are enriched for important cell type–specific genes; and (iii) GWAS variants associated with traits relevant to a particular cell type are more enriched in stretch enhancers compared with short enhancers. Reporter constructs containing stretch enhancer sequences exhibited tissue-specific activity in cell culture experiments and in transgenic mice. These results suggest that stretch enhancers are critical chromatin elements for coordinating cell type–specific regulatory programs and that sequence variation in stretch enhancers affects risk of major common human diseases.


Nature | 2014

Comparative analysis of metazoan chromatin organization

Joshua W. K. Ho; Youngsook L. Jung; Tao Liu; Burak H. Alver; Soohyun Lee; Kohta Ikegami; Kyung Ah Sohn; Aki Minoda; Michael Y. Tolstorukov; Alex Appert; Stephen C. J. Parker; Tingting Gu; Anshul Kundaje; Nicole C. Riddle; Eric P. Bishop; Thea A. Egelhofer; Sheng'En Shawn Hu; Artyom A. Alekseyenko; Andreas Rechtsteiner; Dalal Asker; Jason A. Belsky; Sarah K. Bowman; Q. Brent Chen; Ron Chen; Daniel S. Day; Yan Dong; Andréa C. Dosé; Xikun Duan; Charles B. Epstein; Sevinc Ercan

Genome function is dynamically regulated in part by chromatin, which consists of the histones, non-histone proteins and RNA molecules that package DNA. Studies in Caenorhabditis elegans and Drosophila melanogaster have contributed substantially to our understanding of molecular mechanisms of genome function in humans, and have revealed conservation of chromatin components and mechanisms. Nevertheless, the three organisms have markedly different genome sizes, chromosome architecture and gene organization. On human and fly chromosomes, for example, pericentric heterochromatin flanks single centromeres, whereas worm chromosomes have dispersed heterochromatin-like regions enriched in the distal chromosomal ‘arms’, and centromeres distributed along their lengths. To systematically investigate chromatin organization and associated gene regulation across species, we generated and analysed a large collection of genome-wide chromatin data sets from cell lines and developmental stages in worm, fly and human. Here we present over 800 new data sets from our ENCODE and modENCODE consortia, bringing the total to over 1,400. Comparison of combinatorial patterns of histone modifications, nuclear lamina-associated domains, organization of large-scale topological domains, chromatin environment at promoters and enhancers, nucleosome positioning, and DNA replication patterns reveals many conserved features of chromatin organization among the three organisms. We also find notable differences in the composition and locations of repressive chromatin. These data sets and analyses provide a rich resource for comparative and species-specific investigations of chromatin composition, organization and function.


Nature | 2015

Super-enhancers delineate disease-associated regulatory nodes in T cells

Golnaz Vahedi; Yuka Kanno; Yasuko Furumoto; Kan Jiang; Stephen C. J. Parker; Michael R. Erdos; Sean Davis; Rahul Roychoudhuri; Nicholas P. Restifo; Massimo Gadina; Zhonghui Tang; Yijun Ruan; Francis S. Collins; Vittorio Sartorelli; John J. O’Shea

Enhancers regulate spatiotemporal gene expression and impart cell-specific transcriptional outputs that drive cell identity. Super-enhancers (SEs), also known as stretch-enhancers, are a subset of enhancers especially important for genes associated with cell identity and genetic risk of disease. CD4+ T cells are critical for host defence and autoimmunity. Here we analysed maps of mouse T-cell SEs as a non-biased means of identifying key regulatory nodes involved in cell specification. We found that cytokines and cytokine receptors were the dominant class of genes exhibiting SE architecture in T cells. Nonetheless, the locus encoding Bach2, a key negative regulator of effector differentiation, emerged as the most prominent T-cell SE, revealing a network in which SE-associated genes critical for T-cell biology are repressed by BACH2. Disease-associated single-nucleotide polymorphisms for immune-mediated disorders, including rheumatoid arthritis, were highly enriched for T-cell SEs versus typical enhancers or SEs in other cell lineages. Intriguingly, treatment of T cells with the Janus kinase (JAK) inhibitor tofacitinib disproportionately altered the expression of rheumatoid arthritis risk genes with SE structures. Together, these results indicate that genes with SE architecture in T cells encompass a variety of cytokines and cytokine receptors but are controlled by a ‘guardian’ transcription factor, itself endowed with an SE. Thus, enumeration of SEs allows the unbiased determination of key regulatory nodes in T cells, which are preferentially modulated by pharmacological intervention.


Cell Metabolism | 2010

Global Epigenomic Analysis of Primary Human Pancreatic Islets Provides Insights into Type 2 Diabetes Susceptibility Loci

Michael L. Stitzel; Praveen Sethupathy; Daniel Pearson; Peter S. Chines; Lingyun Song; Michael R. Erdos; Ryan P. Welch; Stephen C. J. Parker; Alan P. Boyle; Laura J. Scott; Elliott H. Margulies; Michael Boehnke; Terrence S. Furey; Gregory E. Crawford; Francis S. Collins

Identifying cis-regulatory elements is important to understanding how human pancreatic islets modulate gene expression in physiologic or pathophysiologic (e.g., diabetic) conditions. We conducted genome-wide analysis of DNase I hypersensitive sites, histone H3 lysine methylation modifications (K4me1, K4me3, K79me2), and CCCTC factor (CTCF) binding in human islets. This identified ∼18,000 putative promoters (several hundred unannotated and islet-active). Surprisingly, active promoter modifications were absent at genes encoding islet-specific hormones, suggesting a distinct regulatory mechanism. Of 34,039 distal (nonpromoter) regulatory elements, 47% are islet unique and 22% are CTCF bound. In the 18 type 2 diabetes (T2D)-associated loci, we identified 118 putative regulatory elements and confirmed enhancer activity for 12 of 33 tested. Among six regulatory elements harboring T2D-associated variants, two exhibit significant allele-specific differences in activity. These findings present a global snapshot of the human islet epigenome and should provide functional context for noncoding variants emerging from genetic studies of T2D and other islet disorders.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Whole-genome sequencing identifies a recurrent functional synonymous mutation in melanoma

Jared J. Gartner; Stephen C. J. Parker; Todd D. Prickett; Ken Dutton-Regester; Michael L. Stitzel; Jimmy C. Lin; Sean Davis; Vijaya L. Simhadri; Sujata Jha; Nobuko Katagiri; Valer Gotea; Jamie K. Teer; Xiaomu Wei; Mario A. Morken; Umesh Bhanot; Guo Chen; Laura Elnitski; Michael A. Davies; Jeffrey E. Gershenwald; Hannah Carter; Rachel Karchin; William H. Robinson; Steven E. Robinson; Steven A. Rosenberg; Francis S. Collins; Giovanni Parmigiani; Anton A. Komar; Chava Kimchi-Sarfaty; Nicholas K. Hayward; Elliott H. Margulies

Synonymous mutations, which do not alter the protein sequence, have been shown to affect protein function [Sauna ZE, Kimchi-Sarfaty C (2011) Nat Rev Genet 12(10):683–691]. However, synonymous mutations are rarely investigated in the cancer genomics field. We used whole-genome and -exome sequencing to identify somatic mutations in 29 melanoma samples. Validation of one synonymous somatic mutation in BCL2L12 in 285 samples identified 12 cases that harbored the recurrent F17F mutation. This mutation led to increased BCL2L12 mRNA and protein levels because of differential targeting of WT and mutant BCL2L12 by hsa-miR-671–5p. Protein made from mutant BCL2L12 transcript bound p53, inhibited UV-induced apoptosis more efficiently than WT BCL2L12, and reduced endogenous p53 target gene transcription. This report shows selection of a recurrent somatic synonymous mutation in cancer. Our data indicate that silent alterations have a role to play in human cancer, emphasizing the importance of their investigation in future cancer genome studies.


The Journal of Clinical Endocrinology and Metabolism | 2010

Family-Based Analysis of Candidate Genes for Polycystic Ovary Syndrome

Kathryn G. Ewens; Douglas R. Stewart; Wendy Ankener; Margrit Urbanek; Jan M. McAllister; Chen Chen; K. Maravet Baig; Stephen C. J. Parker; Elliot H. Margulies; Richard S. Legro; Andrea Dunaif; Jerome F. Strauss; Richard S. Spielman

CONTEXT Polycystic ovary syndrome (PCOS) is a complex disorder having both genetic and environmental components. A number of association studies based on candidate genes have reported significant association, but few have been replicated. D19S884, a polymorphic marker in fibrillin 3 (FBN3), is one of the few association findings that has been replicated in independent sets of families. OBJECTIVE The aims of the study are: 1) to genotype single nucleotide polymorphisms (SNPs) in the region of D19S884; and 2) to follow up with an independent data set, published results reporting evidence for PCOS candidate gene associations. DESIGN The transmission disequilibrium test (TDT) was used to analyze linkage and association between PCOS and SNPs in candidate genes previously reported by us and by others as significantly associated with PCOS. SETTING The study was conducted at academic medical centers. PATIENTS OR OTHER PARTICIPANTS A total of 453 families having a proband with PCOS participated in the study. Sisters with PCOS were also included. There was a total of 502 probands and sisters with PCOS. INTERVENTION(S) There were no interventions. MAIN OUTCOME MEASURE(S) The outcome measure was transmission frequency of SNP alleles. RESULTS We identified a six-SNP haplotype block spanning a 6.7-kb region on chromosome 19p13.2 that includes D19S884. SNP haplotype allele-C alone and in combination with D19S884-allele 8 is significantly associated with PCOS: haplotype-C TDT chi(2) = 10.0 (P = 0.0016) and haplotype-C/A8 TDT chi(2) = 7.6 (P = 0.006). SNPs in four of the other 26 putative candidate genes that were tested using the TDT were nominally significant (ACVR2A, POMC, FEM1B, and SGTA). One SNP in POMC (rs12473543, chi(2) = 9.1; P(corrected) = 0.042) is significant after correction for multiple testing. CONCLUSIONS A polymorphic variant, D19S884, in FBN3 is associated with risk of PCOS. POMC is also a candidate gene of interest.


Human Mutation | 2010

Human NPY promoter variation rs16147:T>C as a moderator of prefrontal NPY gene expression and negative affect.

Wolfgang H. Sommer; Jessica Lidström; Hui Sun; Derek Passer; Robert L. Eskay; Stephen C. J. Parker; Stephanie H. Witt; Ulrich S. Zimmermann; Vanessa Nieratschker; Marcella Rietschel; Elliott H. Margulies; Miklós Palkovits; Manfred Laucht; Markus Heilig

Studies in humans and animals suggest a role for NPY in the mediation of behavioral stress responses. Here, we examined whether the NPY promoter variant rs16147:T>C is functional for expression of NPY in a brain region relevant for behavioral control, anxiety and depression, the anterior cingulate cortex. In silico analysis of DNA structural profile changes produced by rs16147 variation suggests allelic differences in protein binding at the rs16147 site. This was confirmed by electrophoretic mobility shift assay, demonstrating that the rs16147 C‐allele has strongly reduced affinity for a yet unknown factor compared to the T‐allele. Analyzing 107 human post‐mortem brain samples we show that allelic variation at rs16147 contributes to regulation of NPY mRNA and peptide levels in this region. Specifically, the C‐allele leads to increased gene expression. In agreement with the molecular findings, rs16147:T>C is associated with anxiety and depressive symptoms in 314 young adults via a gene x environment interaction with early childhood adversity, replicating the recent finding of rs16147‐C as a risk factor for stress related psychopathology. Our results show the importance of rs16147:T>C for regulation of NPY gene expression and brain function.


ACS Chemical Biology | 2011

A map of minor groove shape and electrostatic potential from hydroxyl radical cleavage patterns of DNA.

Eric P. Bishop; Remo Rohs; Stephen C. J. Parker; Sean M. West; Peng Liu; Richard S. Mann; Barry Honig; Thomas D. Tullius

DNA shape variation and the associated variation in minor groove electrostatic potential are widely exploited by proteins for DNA recognition. Here we show that the hydroxyl radical cleavage pattern is a quantitative measure of DNA backbone solvent accessibility, minor groove width, and minor groove electrostatic potential, at single nucleotide resolution. We introduce maps of DNA shape and electrostatic potential as tools for understanding how proteins recognize binding sites in a genome. These maps reveal periodic structural signals in yeast and Drosophila genomic DNA sequences that are associated with positioned nucleosomes.


PLOS Genetics | 2012

Extensive evolutionary changes in regulatory element activity during human origins are associated with altered gene expression and positive selection.

Yoichiro Shibata; Nathan C. Sheffield; Olivier Fedrigo; Courtney C. Babbitt; Matthew Wortham; Alok K. Tewari; Darin London; Lingyun Song; Bum Kyu Lee; Vishwanath R. Iyer; Stephen C. J. Parker; Elliott H. Margulies; Gregory A. Wray; Terrence S. Furey; Gregory E. Crawford

Understanding the molecular basis for phenotypic differences between humans and other primates remains an outstanding challenge. Mutations in non-coding regulatory DNA that alter gene expression have been hypothesized as a key driver of these phenotypic differences. This has been supported by differential gene expression analyses in general, but not by the identification of specific regulatory elements responsible for changes in transcription and phenotype. To identify the genetic source of regulatory differences, we mapped DNaseI hypersensitive (DHS) sites, which mark all types of active gene regulatory elements, genome-wide in the same cell type isolated from human, chimpanzee, and macaque. Most DHS sites were conserved among all three species, as expected based on their central role in regulating transcription. However, we found evidence that several hundred DHS sites were gained or lost on the lineages leading to modern human and chimpanzee. Species-specific DHS site gains are enriched near differentially expressed genes, are positively correlated with increased transcription, show evidence of branch-specific positive selection, and overlap with active chromatin marks. Species-specific sequence differences in transcription factor motifs found within these DHS sites are linked with species-specific changes in chromatin accessibility. Together, these indicate that the regulatory elements identified here are genetic contributors to transcriptional and phenotypic differences among primate species.


Current Opinion in Structural Biology | 2011

DNA shape, genetic codes, and evolution.

Stephen C. J. Parker; Thomas D. Tullius

Although the three-letter genetic code that maps nucleotide sequence to protein sequence is well known, there must exist other codes that are embedded in the human genome. Recent work points to sequence-dependent variation in DNA shape as one mechanism by which regulatory and other information could be encoded in DNA. Recent advances include the discovery of shape-dependent recognition of DNA that depends on minor groove width and electrostatics, the existence of overlapping codes in protein-coding regions of the genome, and evolutionary selection for compensatory changes in nucleotide composition that facilitate nucleosome occupancy. It is becoming clear that DNA shape is important to biological function, and therefore will be subject to evolutionary constraint.

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Francis S. Collins

National Institutes of Health

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Michael R. Erdos

National Institutes of Health

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Elliott H. Margulies

National Institutes of Health

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Peter S. Chines

National Institutes of Health

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