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Genome-Nuclear Lamina Interactions Regulate Cardiac Stem Cell Lineage Restriction

机译:基因组核椎板相互作用调节心脏干细胞谱系限制

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摘要

Progenitor cells differentiate into specialized cell types through coordinated expression of lineagespecific genes and modification of complex chromatin configurations. We demonstrate that a histone deacetylase (Hdac3) organizes heterochromatin at the nuclear lamina during cardiac progenitor lineage restriction. Specification of cardiomyocytes is associated with reorganization of peripheral heterochromatin, and independent of deacetylase activity, Hdac3 tethers peripheral heterochromatin containing lineage-relevant genes to the nuclear lamina. Deletion of Hdac3 in cardiac progenitor cells releases genomic regions from the nuclear periphery, leading to precocious cardiac gene expression and differentiation into cardiomyocytes; in contrast, restricting Hdac3 to the nuclear periphery rescues myogenesis in progenitors otherwise lacking Hdac3. Our results suggest that availability of genomic regions for activation by lineage-specific factors is regulated in part through dynamic chromatin-nuclear lamina interactions and that competence of a progenitor cell to respond to differentiation signals may depend upon coordinated movement of responding gene loci away from the nuclear periphery.
机译:祖细胞通过协调表达分化为专用细胞类型,并通过协调的基因表达和复合染色质构型的改性。我们证明,组蛋白脱乙酰化酶(HDAC3)在心血管血管谱系限制期间组织核椎板上的异铬胺。心肌细胞的规范与外周杂蛋白的重组相关,并且与脱乙酰酶活性无关,HDAC3将含有谱系相关基因的外周杂粒素与核椎板有关。心脏祖细胞中HDAC3的缺失释放来自核外周的基因组区域,导致早熟的心脏基因表达和分化为心肌细胞;相反,将HDAC3限制为核外周拯救归因于缺乏HDAC3的祖细胞。我们的研究结果表明,通过谱系特异性因子进行激活的基因组区域的可用性部分通过动态染色质 - 核椎板相互作用来调节,并且祖细胞对分化信号进行响应的能力可能取决于应对基因基因座的协调运动核外围。

著录项

  • 来源
    《Cell》 |2017年第3期|共29页
  • 作者单位

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Icahn Sch Med Mt Sinai Dept Cell Dev &

    Regenerat Biol Mindich Child Hlth &

    Dev Inst New York NY 10029 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Div Endocrinol Diabet &

    Metab Dept Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Icahn Sch Med Mt Sinai Dept Cell Dev &

    Regenerat Biol Mindich Child Hlth &

    Dev Inst New York NY 10029 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Div Endocrinol Diabet &

    Metab Dept Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

    Univ Penn Perelman Sch Med Dept Med Inst Regenerat Med Philadelphia PA 19104 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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