Department of Physiology and Medicine, David Geffen School of Medicine, UCLA, Los Angeles, United States.
Centre for Proteome Research, Biosciences Building, Institute of Integrative Biology, University of Liverpool, Liverpool, United Kingdom.
Elife. 2020 May 12;9:e55262. doi: 10.7554/eLife.55262.
Maintenance of connective tissue integrity is fundamental to sustain function, requiring protein turnover to repair damaged tissue. However, connective tissue proteome dynamics remain largely undefined, as do differences in turnover rates of individual proteins in the collagen and glycoprotein phases of connective tissue extracellular matrix (ECM). Here, we investigate proteome dynamics in the collagen and glycoprotein phases of connective tissues by exploiting the spatially distinct fascicular (collagen-rich) and interfascicular (glycoprotein-rich) ECM phases of tendon. Using isotope labelling, mass spectrometry and bioinformatics, we calculate turnover rates of individual proteins within rat Achilles tendon and its ECM phases. Our results demonstrate complex proteome dynamics in tendon, with ~1000 fold differences in protein turnover rates, and overall faster protein turnover within the glycoprotein-rich interfascicular matrix compared to the collagen-rich fascicular matrix. These data provide insights into the complexity of proteome dynamics in tendon, likely required to maintain tissue homeostasis.
维持结缔组织完整性对于维持功能至关重要,这需要蛋白质周转来修复受损组织。然而,结缔组织蛋白质组的动态变化在很大程度上仍未得到明确界定,胶原蛋白和糖蛋白相的结缔组织细胞外基质(ECM)中个别蛋白质的周转率差异也是如此。在这里,我们通过利用肌腱的纤维束(富含胶原蛋白)和纤维束间(富含糖蛋白)ECM 相的空间差异来研究结缔组织中蛋白质组的动态变化。使用同位素标记、质谱和生物信息学,我们计算了大鼠跟腱及其 ECM 相中个别蛋白质的周转率。我们的结果表明,肌腱中的蛋白质组动态变化复杂,蛋白质周转率差异高达 1000 倍,与富含胶原蛋白的纤维束相比,富含糖蛋白的纤维束间基质中的蛋白质周转率总体更快。这些数据为肌腱中蛋白质组动态变化的复杂性提供了深入了解,这可能是维持组织内稳态所必需的。