Boyoung Shin, Samantha J Chang, Brendan W MacNabb, Ellen V Rothenberg
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引用次数: 0
Abstract
The rate at which cells enter the T cell pathway depends not only on the immigration of hematopoietic precursors into the strong Notch signaling environment of the thymus but also on the kinetics with which each individual precursor cell reaches T-lineage commitment once it arrives. Notch triggers a complex, multistep gene regulatory network in the cells in which the steps are stereotyped but the transition speeds between steps are variable. Progenitor-associated transcription factors delay T-lineage differentiation even while Notch-induced transcription factors within the same cells push differentiation forward. Progress depends on regulator cross-repression, on breaching chromatin barriers, and on shifting, competitive collaborations between stage-specific and stably expressed transcription factors, as reviewed here.
细胞进入 T 细胞通路的速度不仅取决于造血前体细胞进入胸腺的强 Notch 信号环境,还取决于每个前体细胞到达 T 系后的动力学。Notch 在细胞中触发了一个复杂的多步骤基因调控网络,其中的步骤是定型的,但步骤之间的转换速度是可变的。与祖细胞相关的转录因子会延迟 T 线型分化,而同一细胞中由 Notch 诱导的转录因子则会推动分化。进展取决于调控因子的交叉抑制、染色质障碍的突破,以及阶段特异性转录因子和稳定表达转录因子之间的变化和竞争性合作,本文对此进行了综述。
期刊介绍:
Since its establishment in 1896, the Journal of Experimental Medicine (JEM) has steadfastly pursued the publication of enduring and exceptional studies in medical biology. In an era where numerous publishing groups are introducing specialized journals, we recognize the importance of offering a distinguished platform for studies that seamlessly integrate various disciplines within the pathogenesis field.
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