Department of Physiology and Biophysics, University of Illinois Chicago, Chicago, IL, USA.
University of Illinois Cancer Center, Chicago, IL, USA.
Expert Rev Proteomics. 2024 Nov;21(11):463-481. doi: 10.1080/14789450.2024.2427136. Epub 2024 Nov 15.
The extracellular matrix (ECM) is a highly organized and dynamic network of proteins and glycosaminoglycans that provides critical structural, mechanical, and biochemical support to cells. The functions of the ECM are directly influenced by the conformation of the proteins that compose it. ECM proteoforms, which can result from genetic, transcriptional, and/or post-translational modifications, adopt different conformations and, consequently, confer different structural properties and functionalities to the ECM in both physiological and pathological contexts.
In this review, we discuss how bottom-up proteomics has been applied to identify, map, and quantify post-translational modifications (. additions of chemical groups, proteolytic cleavage, or cross-links) and ECM proteoforms arising from alternative splicing or genetic variants. We further illustrate how proteoform-level information can be leveraged to gain novel insights into ECM protein structure and ECM functions in health and disease.
In the Expert opinion section, we discuss remaining challenges and opportunities with an emphasis on the importance of devising experimental and computational methods tailored to account for the unique biochemical properties of ECM proteins with the goal of increasing sequence coverage and, hence, accurate ECM proteoform identification.
细胞外基质 (ECM) 是一种高度组织化和动态的蛋白质和糖胺聚糖网络,为细胞提供关键的结构、机械和生化支持。ECM 的功能直接受到组成它的蛋白质构象的影响。ECM 蛋白多型体可以通过遗传、转录和/或翻译后修饰产生,采用不同的构象,因此在生理和病理情况下为 ECM 赋予不同的结构特性和功能。
在这篇综述中,我们讨论了如何应用从头蛋白质组学来识别、映射和定量翻译后修饰(添加化学基团、蛋白水解切割或交联)以及由选择性剪接或遗传变异产生的 ECM 蛋白多型体。我们进一步说明了如何利用蛋白多型体水平的信息来深入了解 ECM 蛋白结构以及 ECM 在健康和疾病中的功能。
在专家意见部分,我们讨论了仍然存在的挑战和机遇,重点强调了设计专门针对 ECM 蛋白独特生化特性的实验和计算方法的重要性,目的是增加序列覆盖率,从而更准确地识别 ECM 蛋白多型体。