Jacob Aishwarya G, Moutsopoulos Ilias, Petchey Alex, Kollyfas Rafael, Knight-Schrijver Vincent R, Mohorianu Irina, Sinha Sanjay, Smith Christopher W J
Department of Biochemistry, University of Cambridge, Cambridge CB2 1QW, UK.
MRC-Wellcome Cambridge Stem Cell Institute, Cambridge CB2 0AW, UK.
Cardiovasc Res. 2024 Dec 14;120(16):2104-2116. doi: 10.1093/cvr/cvae198.
Differentiated vascular smooth muscle cells (VSMCs) express a unique network of mRNA isoforms via smooth muscle-specific alternative pre-mRNA splicing (SM-AS) in functionally critical genes, including those comprising the contractile machinery. We previously described RNA Binding Protein with Multiple Splicing (RBPMS) as a potent driver of differentiated SM-AS in the rat PAC1 VSMC cell line. What is unknown is how RBPMS affects VSMC phenotype and behaviour. Here, we aimed to dissect the role of RBPMS in SM-AS in human cells and determine the impact on VSMC phenotypic properties.
We used human embryonic stem cell-derived VSMCs (hESC-VSMCs) as our platform. hESC-VSMCs are inherently immature, and we found that they display only partially differentiated SM-AS patterns while RBPMS protein levels are low. We found that RBPMS over-expression induces SM-AS patterns in hESC-VSMCs akin to the contractile tissue VSMC splicing patterns. We present in silico and experimental findings that support RBPMS' splicing activity as mediated through direct binding and via functional cooperativity with splicing factor RBFOX2 on a significant subset of targets. We also demonstrate that RBPMS can alter the motility and the proliferative properties of hESC-VSMCs to mimic a more differentiated state.
Overall, this study emphasizes a critical role for RBPMS in establishing the contractile phenotype splicing programme of human VSMCs.
分化的血管平滑肌细胞(VSMC)通过平滑肌特异性可变前体mRNA剪接(SM-AS)在功能关键基因中表达独特的mRNA异构体网络,这些基因包括构成收缩机制的基因。我们之前将多剪接RNA结合蛋白(RBPMS)描述为大鼠PAC1 VSMC细胞系中分化的SM-AS的有效驱动因子。尚不清楚的是RBPMS如何影响VSMC的表型和行为。在此,我们旨在剖析RBPMS在人类细胞SM-AS中的作用,并确定其对VSMC表型特性的影响。
我们使用人胚胎干细胞衍生的VSMC(hESC-VSMC)作为我们的平台。hESC-VSMC本质上是未成熟的,我们发现它们仅显示部分分化的SM-AS模式,而RBPMS蛋白水平较低。我们发现RBPMS的过表达在hESC-VSMC中诱导出类似于收缩组织VSMC剪接模式的SM-AS模式。我们展示了计算机模拟和实验结果,支持RBPMS的剪接活性是通过直接结合以及与剪接因子RBFOX2在大量靶标子集上的功能协同作用介导的。我们还证明RBPMS可以改变hESC-VSMC的运动性和增殖特性,以模拟更分化的状态。
总体而言,本研究强调了RBPMS在建立人类VSMC收缩表型剪接程序中的关键作用。