酵母模型揭示了SMAD3核输入机制。

Delfina P González, Morgan C Emokpae, C Patrick Lusk, Mustafa K Khokha
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引用次数: 0

摘要

TGF-β信号在胚胎发育过程中对组织的模式化很重要,并依赖于smad的核输入。基本的SMAD核进口机制仍有待充分了解,并可能受益于我们对核运输机制的理解的进展。为了评估SMAD核转运的分子决定因素,我们利用单细胞S. cerevisiae模型,该模型缺乏脊椎动物TGF-β信号传导的复杂性,但具有保守的核转运机制。在这个最小的系统中,我们发现SMAD2/3、SMAD4和SMAD1/5的稳态分布是随机依赖的,要么在细胞核中积累,要么从细胞核中耗尽。有条件地抑制每一种核丝蛋白/进口蛋白表明SMAD3是通过进口蛋白-β、进口蛋白-7和进口蛋白-8的同源物进口的。先前定义的核定位信号不足以授予核进口。相反,我们的数据表明整个MH1结构域可能作为一个输入结合表面。删除该结构域的一部分会损害SMAD3在爪蟾中的功能和HEK293T细胞中的SMAD3核富集。因此,酵母平台为阐明胚胎信号效应物的核转运机制提供了一个有效的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A yeast model reveals the SMAD3 nuclear import mechanism.

TGF-β signaling is important for patterning tissues during embryonic development and relies on the nuclear import of SMADs. Basal SMAD nuclear import mechanisms remain to be fully understood and could benefit from advances in our understanding of nuclear transport machinery. To assess the molecular determinants of SMAD nuclear transport, we take advantage of the unicellular S. cerevisiae model that lacks the TGF-β signaling complexity of vertebrates but has conserved nuclear transport machinery. In this minimal system, we find that the steady-state distribution of SMAD2/3, SMAD4, and SMAD1/5 are Ran-dependent and either accumulate in, or are depleted from the nucleus. Conditionally inhibiting each of the karyopherin/importins demonstrates that SMAD3 is imported by orthologues of importin-β, importin-7 and importin-8. The previously defined nuclear localization signal is insufficient to confer nuclear import. Instead, our data suggest the entire MH1 domain may act as an importin binding surface. Deleting a portion of this domain impairs SMAD3 function in Xenopus and SMAD3 nuclear enrichment in HEK293T cells. Thus, the yeast platform provides an efficient strategy to illuminate the nuclear transport mechanisms of embryonic signaling effectors.

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