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组织干细胞身份转变导致果蝇肠道神经内分泌肿瘤。

A Switch in Tissue Stem Cell Identity Causes Neuroendocrine Tumors in Drosophila Gut.

机构信息

National Institute of Biological Sciences, No. 7 Science Park Road, Zhongguancun Life Science Park, Beijing 102206, China; School of Life Sciences, Tsinghua University, Beijing 100084, China.

National Institute of Biological Sciences, No. 7 Science Park Road, Zhongguancun Life Science Park, Beijing 102206, China.

出版信息

Cell Rep. 2020 Feb 11;30(6):1724-1734.e4. doi: 10.1016/j.celrep.2020.01.041.

Abstract

Intestinal stem cells (ISCs) are able to generate gut-specific enterocytes, as well as neural-like enteroendocrine cells. It is unclear how the tissue identity of the ISC lineage is regulated to confer cell-lineage fidelity. Here, we show that, in adult Drosophila midgut, loss of the transcriptional repressor Tramtrack in ISCs causes a self-renewal program switch to neural stem cell (NSC)-like, and that switch drives neuroendocrine tumor development. In Tramtrack-depleted ISCs, the ectopically expressed Deadpan acts as a major self-renewal factor for cell propagation, and Sequoia acts as a differentiation factor for the neuroendocrine phenotype. In addition, the expression of Sequoia renders NSC-specific self-renewal genes responsive to Notch in ISCs, thus inverting the differentiation-promoting function of Notch into a self-renewal role as in normal NSCs. These results suggest an active maintenance mechanism for the gut identity of ISCs, whose disruption may lead to an improper acquisition of NSC-like traits and tumorigenesis.

摘要

肠干细胞(ISCs)能够产生肠道特异性肠上皮细胞,以及神经样肠内分泌细胞。目前尚不清楚 ISC 谱系的组织身份是如何受到调控以赋予细胞谱系保真度的。在这里,我们表明,在成年果蝇中肠,ISCs 中转录抑制因子 Tramtrack 的缺失会导致自我更新程序向神经干细胞(NSC)样转变,而这种转变驱动神经内分泌肿瘤的发展。在耗尽 Tramtrack 的 ISCs 中,异位表达的 Deadpan 充当细胞增殖的主要自我更新因子,而 Sequoia 充当神经内分泌表型的分化因子。此外,Sequoia 的表达使 NSC 特异性自我更新基因对 ISC 中的 Notch 有反应,从而将 Notch 的促分化功能反转成类似于正常 NSCs 的自我更新作用。这些结果表明 ISC 的肠道身份存在一种主动维持机制,其破坏可能导致不当获得 NSC 样特征和肿瘤发生。

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