Tianyi Zhang , Qingxiang Zhou , Nisveta Jusić , Wenwen Lu , Francesca Pignoni , Scott J. Neal
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Yki physically interacts with Mitf and can modify its transcriptional activity <em>in vitro</em>. Severe loss of Mitf, instead, results in the de-repression of retinogenesis in the PE, precluding its development. This activity of Mitf requires the protein phosphatase 2 A holoenzyme STRIPAK-PP2A, but not Yki; Mitf transcriptional activity is potentiated by STRIPAK-PP2A <em>in vitro</em> and <em>in vivo</em>. Knockdown of STRIPAK-PP2A results in cytoplasmic retention of Mitf <em>in vivo</em> and in its decreased stability <em>in vitro</em>, highlighting two potential mechanisms for the control of Mitf function by STRIPAK-PP2A. 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引用次数: 0
摘要
小眼球相关转录因子(MITF)控制着许多细胞和发育过程。在小鼠中,它促进视网膜色素上皮(RPE)的规格化和分化;在人类中,MITF的某些突变会诱发先天性眼部畸形。在这里,我们探讨了Mitf在果蝇眼发育过程中的功能和调控,并发现了它的两种作用。我们发现,敲除 Mitf 会导致视网膜移位(RDis),这是一种与眼球形成异常相关的表型。Mitf通过Hippo通路效应因子Yorkie(Yki)在视网膜周围上皮细胞(PE)(一种类似于RPE的视网膜支持组织)中发挥抑制RDis的作用。Yki 与 Mitf 发生物理相互作用,并能在体外改变其转录活性。相反,Mitf 的严重缺失会导致 PE 中视网膜生成的去抑制作用,阻碍 PE 的发育。Mitf的这种活性需要蛋白磷酸酶2 A全酶STRIPAK-PP2A,但不需要Yki;Mitf的转录活性在体外和体内都会受到STRIPAK-PP2A的增强。敲除 STRIPAK-PP2A 会导致 Mitf 在体内滞留在细胞质中,在体外稳定性降低,这突显了 STRIPAK-PP2A 控制 Mitf 功能的两种潜在机制。因此,Mitf是果蝇眼祖细胞上皮细胞形态和命运的关键决定因素,其功能的发挥与环境有关。
Mitf, with Yki and STRIPAK-PP2A, is a key determinant of form and fate in the progenitor epithelium of the Drosophila eye.
The Microphthalmia-associated Transcription Factor (MITF) governs numerous cellular and developmental processes. In mice, it promotes specification and differentiation of the retinal pigmented epithelium (RPE), and in humans, some mutations in MITF induce congenital eye malformations. Herein, we explore the function and regulation of Mitf in Drosophila eye development and uncover two roles. We find that knockdown of Mitf results in retinal displacement (RDis), a phenotype associated with abnormal eye formation. Mitf functions in the peripodial epithelium (PE), a retinal support tissue akin to the RPE, to suppress RDis, via the Hippo pathway effector Yorkie (Yki). Yki physically interacts with Mitf and can modify its transcriptional activity in vitro. Severe loss of Mitf, instead, results in the de-repression of retinogenesis in the PE, precluding its development. This activity of Mitf requires the protein phosphatase 2 A holoenzyme STRIPAK-PP2A, but not Yki; Mitf transcriptional activity is potentiated by STRIPAK-PP2A in vitro and in vivo. Knockdown of STRIPAK-PP2A results in cytoplasmic retention of Mitf in vivo and in its decreased stability in vitro, highlighting two potential mechanisms for the control of Mitf function by STRIPAK-PP2A. Thus, Mitf functions in a context-dependent manner as a key determinant of form and fate in the Drosophila eye progenitor epithelium.
期刊介绍:
The European Journal of Cell Biology, a journal of experimental cell investigation, publishes reviews, original articles and short communications on the structure, function and macromolecular organization of cells and cell components. Contributions focusing on cellular dynamics, motility and differentiation, particularly if related to cellular biochemistry, molecular biology, immunology, neurobiology, and developmental biology are encouraged. Manuscripts describing significant technical advances are also welcome. In addition, papers dealing with biomedical issues of general interest to cell biologists will be published. Contributions addressing cell biological problems in prokaryotes and plants are also welcome.