蛋白质组剖析确定了热休克转录因子 2 与病灶粘附适配体 talin-1 之间的直接相互作用

Alejandro J. Da Silva, Hendrik S. E. Hästbacka, Jens C. Luoto, Rosemarie E. Gough, Leila S. Coelho-Rato, Leena M. Laitala, Benjamin T. Goult, Susumu Y. Imanishi, Lea Sistonen, Eva Henriksson
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引用次数: 0

摘要

热休克因子 2(HSF2)是一种多功能转录因子,在应激条件下、发育过程中和疾病中调节基因表达。尽管最近在鉴定依赖 HSF2 的靶基因方面取得了进展,但人们对与该转录因子相关的蛋白质网络知之甚少。在这项研究中,我们进行了共免疫沉淀和质谱分析,以确定小鼠睾丸中 HSF2 的相互作用组。研究发现,内源性 HSF2 与几种粘附相关蛋白形成复合物,在人类前列腺癌 PC-3 细胞中进行的质谱分析证实了这一发现。值得注意的是,这组蛋白包括局灶粘附适配蛋白 talin-1 (TLN1)。通过共免疫沉淀和邻近连接实验,我们证明了 HSF2-TLN1 相互作用在小鼠和人类中的保守性。此外,通过序列比对分析,我们在 HSF2 C 端发现了一个 TLN1 结合基团,该基团可在体外直接与 TLN1 的多个区域结合。我们提供的证据表明,与 EGFP 融合的 HSF2 的 25 个 C 端氨基酸足以与 TLN1 建立蛋白复合物,并改变人体细胞的细胞粘附性。重要的是,这种 TLN1 结合基团在与 HSF 家族关系密切的 HSF1 的 C 端并不存在,而 HSF1 并不与 TLN1 形成复合物。这些结果凸显了 HSF2 与 HSF1 相比的独特分子特征。综上所述,我们的数据揭示了在生理相关背景下与 HSF2 相关的蛋白质伙伴,并确定 TLN1 是第一个与粘附相关的 HSF2 相互作用伙伴。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Proteomic profiling identifies a direct interaction between heat shock transcription factor 2 and the focal adhesion adapter talin-1

Proteomic profiling identifies a direct interaction between heat shock transcription factor 2 and the focal adhesion adapter talin-1

Heat shock factor 2 (HSF2) is a versatile transcription factor that regulates gene expression under stress conditions, during development, and in disease. Despite recent advances in characterizing HSF2-dependent target genes, little is known about the protein networks associated with this transcription factor. In this study, we performed co-immunoprecipitation coupled with mass spectrometry analysis to identify the HSF2 interactome in mouse testes, where HSF2 is required for normal sperm development. Endogenous HSF2 was discovered to form a complex with several adhesion-associated proteins, a finding substantiated by mass spectrometry analysis conducted in human prostate carcinoma PC-3 cells. Notably, this group of proteins included the focal adhesion adapter protein talin-1 (TLN1). Through co-immunoprecipitation and proximity ligation assays, we demonstrate the conservation of the HSF2-TLN1 interaction from mouse to human. Additionally, employing sequence alignment analyses, we uncovered a TLN1-binding motif in the HSF2 C terminus that binds directly to multiple regions of TLN1 in vitro. We provide evidence that the 25 C-terminal amino acids of HSF2, fused to EGFP, are sufficient to establish a protein complex with TLN1 and modify cell–cell adhesion in human cells. Importantly, this TLN1-binding motif is absent in the C-terminus of a closely related HSF family member, HSF1, which does not form a complex with TLN1. These results highlight the unique molecular characteristics of HSF2 in comparison to HSF1. Taken together, our data unveil the protein partners associated with HSF2 in a physiologically relevant context and identifies TLN1 as the first adhesion-related HSF2-interacting partner.

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