Department of Pediatrics and Adolescent Medicine, Experimental Neonatology, Medical Faculty and University Hospital Cologne, University of Cologne, Cologne, Germany; Center for Biochemistry, Medical Faculty and University Hospital Cologne, University of Cologne, Cologne, Germany.
Institute of Genetics and Cologne Excellence Cluster on Cellular Stress Responses in Aging-Associated Diseases (CECAD), University of Cologne, Cologne, Germany.
J Biol Chem. 2021 Oct;297(4):101224. doi: 10.1016/j.jbc.2021.101224. Epub 2021 Sep 22.
Energy metabolism and extracellular matrix (ECM) function together orchestrate and maintain tissue organization, but crosstalk between these processes is poorly understood. Here, we used single-cell RNA-Seq (scRNA-Seq) analysis to uncover the importance of the mitochondrial respiratory chain for ECM homeostasis in mature cartilage. This tissue produces large amounts of a specialized ECM to promote skeletal growth during development and maintain mobility throughout life. A combined approach of high-resolution scRNA-Seq, mass spectrometry/matrisome analysis, and atomic force microscopy was applied to mutant mice with cartilage-specific inactivation of respiratory chain function. This genetic inhibition in cartilage results in the expansion of a central area of 1-month-old mouse femur head cartilage, showing disorganized chondrocytes and increased deposition of ECM material. scRNA-Seq analysis identified a cell cluster-specific decrease in mitochondrial DNA-encoded respiratory chain genes and a unique regulation of ECM-related genes in nonarticular chondrocytes. These changes were associated with alterations in ECM composition, a shift in collagen/noncollagen protein content, and an increase of collagen crosslinking and ECM stiffness. These results demonstrate that mitochondrial respiratory chain dysfunction is a key factor that can promote ECM integrity and mechanostability in cartilage and presumably also in many other tissues.
能量代谢和细胞外基质(ECM)共同协作并维持组织的结构,但这些过程之间的相互作用知之甚少。在这里,我们使用单细胞 RNA-Seq(scRNA-Seq)分析来揭示线粒体呼吸链对于成熟软骨中 ECM 稳态的重要性。这种组织产生大量特殊的 ECM,以促进发育过程中的骨骼生长,并在整个生命周期中保持运动能力。我们采用高分辨率 scRNA-Seq、质谱/基质组分析和原子力显微镜相结合的方法,研究了软骨中呼吸链功能特异性失活的突变小鼠。这种软骨中的遗传抑制导致 1 个月大的小鼠股骨头部软骨中央区域的扩张,表现为排列紊乱的软骨细胞和 ECM 物质的增加沉积。scRNA-Seq 分析鉴定出一个特定的细胞簇中线粒体 DNA 编码的呼吸链基因减少,以及非关节软骨细胞中 ECM 相关基因的独特调控。这些变化与 ECM 组成的改变、胶原/非胶原蛋白含量的转移以及胶原交联和 ECM 硬度的增加有关。这些结果表明,线粒体呼吸链功能障碍是一个关键因素,它可以促进软骨中 ECM 的完整性和机械稳定性,推测也可以促进许多其他组织中的 ECM 完整性和机械稳定性。