Lipid-driven Src self-association modulates its transformation capacity.

IF 3.3 2区 生物学 Q1 BIOLOGY
Life Science Alliance Pub Date : 2025-03-13 Print Date: 2025-05-01 DOI:10.26508/lsa.202403019
Irrem-Laareb Mohammad, Marina I Giannotti, Elise Fourgous, Yvan Boublik, Alejandro Fernández, Anabel-Lise Le Roux, Audrey Sirvent, Marta Taulés, Serge Roche, Miquel Pons
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Abstract

Src tyrosine kinase regulates cell growth and adhesion through membrane signaling, and its deregulation is associated with cancer. Although active Src is anchored to the plasma membrane, the role of membrane lipids in its regulation remains unclear. Here, we report that Src self-associates via a lysine cluster in its SH4 region, a process mediated by lipids in human cells and in vitro. Mutation of the lysine cluster to arginine alters Src self-association and modulates its transforming function in human cells. Lipid-anchored micron-sized condensates of full-length Src form in supported homogeneous lipid bilayers (i.e., independently of lipid phase separation). Condensates also arise from the purified Src N-terminal regulatory element, which includes the myristoylated SH4 domain, the intrinsically disordered Unique domain, and the globular SH3 domain. However, the isolated SH4 domain alone forms small protein-lipid clusters rather than micron-sized condensates. Our findings reveal lipid-mediated kinase self-association as an additional regulatory mechanism for Src. This mechanism may also apply to other membrane-associated signaling proteins containing similar lysine clusters in their unstructured regions.

脂质驱动的Src自关联调节其转化能力。
Src酪氨酸激酶通过膜信号调节细胞生长和粘附,其失调与癌症有关。尽管活性Src锚定在质膜上,但膜脂在其调控中的作用尚不清楚。在这里,我们报道Src通过其SH4区域的赖氨酸簇进行自我结合,这是一个由人类细胞和体外脂质介导的过程。在人类细胞中,赖氨酸簇向精氨酸簇的突变改变了Src的自结合并调节了其转化功能。脂锚定的微米大小的全长Src凝聚物在支持的均匀脂质双层中形成(即独立于脂相分离)。凝析物也来自纯化的Src n端调控元件,包括肉豆油酰化的SH4结构域、内在无序的Unique结构域和球状的SH3结构域。然而,单独分离的SH4结构域形成小的蛋白脂簇,而不是微米大小的凝聚体。我们的研究结果表明脂质介导的激酶自关联是Src的另一种调节机制。这一机制也可能适用于其他膜相关信号蛋白在其非结构化区域含有类似赖氨酸簇。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Life Science Alliance
Life Science Alliance Agricultural and Biological Sciences-Plant Science
CiteScore
5.80
自引率
2.30%
发文量
241
审稿时长
10 weeks
期刊介绍: Life Science Alliance is a global, open-access, editorially independent, and peer-reviewed journal launched by an alliance of EMBO Press, Rockefeller University Press, and Cold Spring Harbor Laboratory Press. Life Science Alliance is committed to rapid, fair, and transparent publication of valuable research from across all areas in the life sciences.
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