鞭毛虫的应激反应p38信号轴。

IF 3.1 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Florentine U. Rutaganira, Maxwell C. Coyle, Maria H. T. Nguyen, Iliana Hernandez, Alex P. Scopton, Arvin C. Dar and Nicole King
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引用次数: 0

摘要

动物激酶调节细胞对环境刺激的反应,包括细胞分化、迁移、生存和应激反应,但对这些功能的起源知之甚少。鞭毛虫是现存动物的近亲,编码多种动物激酶的同源物,并已成为重建动物起源的模式生物。然而,由于目前可用的遗传工具的限制,确定鞭藻中关键激酶调节因子的努力受到了限制。在这里,我们报告了一个框架,结合了小分子驱动的激酶发现和靶向遗传学,揭示了鞭藻中的激酶功能。为了研究尾鞭毛虫激酶的生理作用,我们建立了两个高通量平台,利用精心策划的人类激酶抑制剂文库筛选模型尾鞭毛虫Salpingoeca rosetta。我们鉴定了95种不同的激酶抑制剂,破坏罗塞塔葡萄球菌细胞增殖。通过关注一种抑制剂索拉非尼,我们确定了p38激酶作为S. rosetta热休克反应的调节器。这一发现揭示了p38在鞭藻、动物和真菌之间的保守功能。此外,这项研究表明,现有的激酶抑制剂可以作为强有力的工具来检查调节现代动物发育的激酶的祖先作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A stress-responsive p38 signaling axis in choanoflagellates†

A stress-responsive p38 signaling axis in choanoflagellates†

Animal kinases regulate cellular responses to environmental stimuli, including cell differentiation, migration, survival, and response to stress, but the ancestry of these functions is poorly understood. Choanoflagellates, the closest living relatives of animals, encode homologs of diverse animal kinases and have emerged as model organisms for reconstructing animal origins. However, efforts to identify key kinase regulators in choanoflagellates have been constrained by the limitations of currently available genetic tools. Here, we report on a framework that combines small molecule-driven kinase discovery with targeted genetics to reveal kinase function in choanoflagellates. To study the physiological roles of choanoflagellate kinases, we established two high-throughput platforms to screen the model choanoflagellate Salpingoeca rosetta with a curated library of human kinase inhibitors. We identified 95 diverse kinase inhibitors that disrupt S. rosetta cell proliferation. By focusing on one inhibitor, sorafenib, we identified a p38 kinase as a regulator of the heat shock response in S. rosetta. This finding reveals a conserved p38 function between choanoflagellates, animals, and fungi. Moreover, this study demonstrates that existing kinase inhibitors can serve as powerful tools to examine the ancestral roles of kinases that regulate modern animal development.

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来源期刊
CiteScore
6.10
自引率
0.00%
发文量
128
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10 weeks
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