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Dive into the research topics where Xiaoqin Yang is active.

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Featured researches published by Xiaoqin Yang.


Nucleic Acids Research | 2014

CR Cistrome: a ChIP-Seq database for chromatin regulators and histone modification linkages in human and mouse

Qixuan Wang; Jinyan Huang; Hanfei Sun; Jing Liu; Juan Wang; Qian Wang; Qian Qin; Shenglin Mei; Chengchen Zhao; Xiaoqin Yang; X. Shirley Liu; Yong Zhang

Diversified histone modifications (HMs) are essential epigenetic features. They play important roles in fundamental biological processes including transcription, DNA repair and DNA replication. Chromatin regulators (CRs), which are indispensable in epigenetics, can mediate HMs to adjust chromatin structures and functions. With the development of ChIP-Seq technology, there is an opportunity to study CR and HM profiles at the whole-genome scale. However, no specific resource for the integration of CR ChIP-Seq data or CR-HM ChIP-Seq linkage pairs is currently available. Therefore, we constructed the CR Cistrome database, available online at http://compbio.tongji.edu.cn/cr and http://cistrome.org/cr/, to further elucidate CR functions and CR-HM linkages. Within this database, we collected all publicly available ChIP-Seq data on CRs in human and mouse and categorized the data into four cohorts: the reader, writer, eraser and remodeler cohorts, together with curated introductions and ChIP-Seq data analysis results. For the HM readers, writers and erasers, we provided further ChIP-Seq analysis data for the targeted HMs and schematized the relationships between them. We believe CR Cistrome is a valuable resource for the epigenetics community.


Cell Research | 2016

Comprehensive profiling reveals mechanisms of SOX2-mediated cell fate specification in human ESCs and NPCs

Chenlin Zhou; Xiaoqin Yang; Yiyang Sun; Hongyao Yu; Yong Zhang; Ying Jin

SOX2 is a key regulator of multiple types of stem cells, especially embryonic stem cells (ESCs) and neural progenitor cells (NPCs). Understanding the mechanism underlying the function of SOX2 is of great importance for realizing the full potential of ESCs and NPCs. Here, through genome-wide comparative studies, we show that SOX2 executes its distinct functions in human ESCs (hESCs) and hESC-derived NPCs (hNPCs) through cell type- and stage-dependent transcription programs. Importantly, SOX2 suppresses non-neural lineages in hESCs and regulates neurogenesis from hNPCs by inhibiting canonical Wnt signaling. In hESCs, SOX2 achieves such inhibition by direct transcriptional regulation of important Wnt signaling modulators, WLS and SFRP2. Moreover, SOX2 ensures pluripotent epigenetic landscapes via interacting with histone variant H2A.Z and recruiting polycomb repressor complex 2 to poise developmental genes in hESCs. Together, our results advance our understanding of the mechanism by which cell type-specific transcription factors control lineage-specific gene expression programs and specify cell fate.


Stem Cells | 2016

H3K4 Methyltransferase Set1a Is A Key Oct4 Coactivator Essential for Generation of Oct4 Positive Inner Cell Mass

Lan Fang; Jun Zhang; Hui Zhang; Xiaoqin Yang; Xueling Jin; Ling Zhang; David G. Skalnik; Ying Jin; Yong Zhang; Xingxu Huang; Jiwen Li; Jiemin Wong

Limited core transcription factors and transcriptional cofactors have been shown to govern embryonic stem cell (ESC) transcriptional circuitry and pluripotency, but the molecular interactions between the core transcription factors and cofactors remains ill defined. Here, we analyzed the protein–protein interactions between Oct4, Sox2, Klf4, and Myc (abbreviated as OSKM) and a large panel of cofactors. The data reveal both specific and common interactions between OSKM and cofactors. We found that among the SET1/MLL family H3K4 methyltransferases, Set1a specifically interacts with Oct4 and this interaction is independent of Wdr5. Set1a is recruited to and required for H3K4 methylation at the Oct4 target gene promoters and transcriptional activation of Oct4 target genes in ESCs, and consistently Set1a is required for ESC maintenance and induced pluripotent stem cell generation. Gene expression profiling and chromatin immunoprecipitation‐seq analyses demonstrate the broad involvement of Set1a in Oct4 transcription circuitry and strong enrichment at TSS sites. Gene knockout study demonstrates that Set1a is not only required for mouse early embryonic development but also for the generation of Oct4‐positive inner cell mass. Together our study provides valuable information on the molecular interactions between OSKM and cofactors and molecular mechanisms for the functional importance of Set1a in ESCs and early development. Stem Cells 2016;34:565–580


Genome Research | 2015

SETDB1 modulates PRC2 activity at developmental genes independently of H3K9 trimethylation in mouse ES cells

Qi Fei; Xiaoqin Yang; Hua Jiang; Qian Wang; Yanyan Yu; Yiling Yu; Wei Yi; Shaolian Zhou; Taiping Chen; Chris Lu; Peter Atadja; Xiaole Shirley Liu; En Li; Yong Zhang; Jianyong Shou

SETDB1, a histone methyltransferase responsible for methylation of histone H3 lysine 9 (H3K9), is involved in maintenance of embryonic stem (ES) cells and early embryonic development of the mouse. However, how SETDB1 regulates gene expression during development is largely unknown. Here, we characterized genome-wide SETDB1 binding and H3K9 trimethylation (H3K9me3) profiles in mouse ES cells and uncovered two distinct classes of SETDB1 binding sites, termed solo and ensemble peaks. The solo peaks were devoid of H3K9me3 and enriched near developmental regulators while the ensemble peaks were associated with H3K9me3. A subset of the SETDB1 solo peaks, particularly those near neural development-related genes, was found to be associated with Polycomb Repressive Complex 2 (PRC2) as well as PRC2-interacting proteins JARID2 and MTF2. Genetic deletion of Setdb1 reduced EZH2 binding as well as histone 3 lysine 27 (H3K27) trimethylation level at SETDB1 solo peaks and facilitated neural differentiation. Furthermore, we found that H3K27me3 inhibits SETDB1 methyltransferase activity. The currently identified reciprocal action between SETDB1 and PRC2 reveals a novel mechanism underlying ES cell pluripotency and differentiation regulation.


Chemistry & Biology | 2016

Histone Demethylase LSD1 Promotes Adipocyte Differentiation through Repressing Wnt Signaling

Yan Chen; Jeesun Kim; Ruipeng Zhang; Xiaoqin Yang; Yong Zhang; Jianwu Fang; Zhui Chen; Lin Teng; Xiaowei Chen; Hui Ge; Peter Atadja; En Li; Taiping Chen; Wei Qi

Adipose tissue plays important roles in animals. White fat stores energy in lipids, while brown fat is responsible for nonshivering thermogenesis through UCP1-mediated energy dissipation. Although epigenetic mechanisms modulate differentiation in multiple lineages, the epigenetic regulation of brown adipocyte differentiation is poorly understood. By screening axa0collection of epigenetic compounds, we found that Lysine-Specific Demethylase 1 (LSD1) inhibitors repress brown adipocyte differentiation. RNAi-mediated Lsd1 knockdown causes a similar effect, which can be rescued by expression of wild-type but not catalytic-inactive LSD1. Mechanistically, LSD1 promotes brown adipogenesis by demethylating H3K4 on promoter regions of Wnt signaling components and repressing the Wnt pathway. Furthermore, deletion of Lsd1 in mice leads to inhibition of brown adipogenesis, validating the pivotal role of LSD1 in brownxa0fat development inxa0vivo. Our work identifies LSD1 as a key epigenetic regulator in brown adipogenesis. The link between LSD1 and the Wnt pathway provides potential opportunities to modulate brown fat differentiation.


Archive | 2006

Mineral dressing method of mid-low grade collophane

Yuanhua Jiang; Xiaoqin Yang; Xiao Liu; Tao He; Qisheng Huang; Dingjun Qu; Xiaoping Liu; Shuqing Li; Ming Zhang


Archive | 2009

High-temperature high-pressure fly-ash filter

Yuanhua Jiang; Xiaoqin Yang; Xiao Liu; Nianchun Wan; Jiye Yao; Changjun Meng; Jianping Pan; Junrong Yan; Guoen Li; Zhixiong Lei; Yanjun Chen


Archive | 2009

Hermetic sealing body of chill air compressor

Yuanhua Jiang; Xiaoqin Yang; Xiao Liu; Nianchun Wan; Jiye Yao; Jianping Pan; Changjun Meng; Guoen Li; Yanjun Chen


Archive | 2008

Coal gas producing system parallel-connected operation method

Yuanhua Jiang; Xiaoqin Yang; Xiao Liu; Jiye Yao; Shaoming Yuan; Deshan Yuan; Yunbing Zhang; Jianping Pan; Bo Cai; Xianjun Zhu; Daihong Yang; Jiangwen Nie; Gesheng Qiu; Junbin Xiao


Archive | 2009

Tension device of slag conveyor

Yuanhua Jiang; Xiaoqin Yang; Xiao Liu; Nianchun Wan; Jiye Yao; Jianping Pan; Guoen Li; Youming Zeng; Yanjun Chen; Qinghua Wu

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Yong Zhang

Chinese Academy of Sciences

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Ying Jin

Shanghai Jiao Tong University

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Chenlin Zhou

Chinese Academy of Sciences

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Hongyao Yu

Shanghai Jiao Tong University

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Hui Zhang

East China Normal University

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