Department of Biochemistry and Biophysics, University of Pennsylvania, Philadelphia, PA 19104, USA.
Department of Chemistry, Iowa State University, Ames, IA 50011, USA.
Sci Adv. 2024 Jul 12;10(28):eadk6580. doi: 10.1126/sciadv.adk6580. Epub 2024 Jul 10.
The functional properties of RNA binding proteins (RBPs) require allosteric regulation through interdomain communication. Despite the importance of allostery to biological regulation, only a few studies have been conducted to describe the biophysical nature by which interdomain communication manifests in RBPs. Here, we show for hnRNP A1 that interdomain communication is vital for the unique stability of its amino-terminal domain, which consists of two RNA recognition motifs (RRMs). These RRMs exhibit drastically different stability under pressure. RRM2 unfolds as an individual domain but remains stable when appended to RRM1. Variants that disrupt interdomain communication between the tandem RRMs show a significant decrease in stability. Carrying these mutations over to the full-length protein for in vivo experiments revealed that the mutations affected the ability of the disordered carboxyl-terminal domain to engage in protein-protein interactions and influenced the protein's RNA binding capacity. Collectively, this work reveals that thermodynamic coupling between the tandem RRMs of hnRNP A1 accounts for its allosteric regulatory functions.
RNA 结合蛋白 (RBP) 的功能特性需要通过域间通讯进行变构调节。尽管变构对于生物调节很重要,但只有少数研究描述了 RBPs 中域间通讯表现出的生物物理性质。在这里,我们表明 hnRNP A1 的域间通讯对于其由两个 RNA 识别基序 (RRM) 组成的氨基末端结构域的独特稳定性至关重要。这些 RRM 在压力下表现出截然不同的稳定性。RRM2 作为一个单独的结构域展开,但当连接到 RRM1 时仍保持稳定。破坏串联 RRMs 之间的域间通讯的变体显示出稳定性显著降低。将这些突变引入全长蛋白进行体内实验表明,突变影响了无序羧基末端结构域参与蛋白-蛋白相互作用的能力,并影响了该蛋白的 RNA 结合能力。总的来说,这项工作揭示了 hnRNP A1 串联 RRMs 之间的热力学偶联解释了其变构调节功能。