Institute of Biomedical Problems (IBMP), Russian Academy of Sciences, Moscow, 123007, Russia.
Biochemistry (Mosc). 2020 Oct;85(10):1169-1177. doi: 10.1134/S0006297920100053.
Cell senescence leads to a number of changes in the properties of mesenchymal stromal cells (MSCs). In particular, the number of damaged structures is increased producing negative effect on intracellular processes. Elimination of the damaged molecules and organelles occurs via autophagy that can be important in the context of aging. Cultivation under low oxygen level can be used as an approach for enhancement of MSC therapeutic properties and "slowing down" cell senescence. The goal of this work was to study some morphological and functional characteristics and expression of autophagy-associated genes during replicative senescence of MSCs under different oxygen concentration. The study revealed changes in the regulation of autophagy at the transcriptional level. Upregulation of the expression of autophagosome membrane growth genes ATG9A and ULK1, of the autophagosome maturation genes CTSD, CLN3, GAA, and GABARAPL1, of the autophagy regulation genes TP53, TGFB1, BCL2L1, FADD, and HTT was shown. These changes were accompanied by downregulation of IGF1 and TGM2 expression. Increase of the lysosomal compartment volume was observed in the senescent MSCs that also indicated increase of their degradation activity. The number of lysosomes was decreased following prolonged cultivation under low oxygen concentration (5%). The replicative senescence of MSCs under conditions of different oxygen levels led to the similar modifications in the expression of the autophagy-associated genes.
细胞衰老会导致间充质基质细胞(MSCs)的性质发生许多变化。特别是,受损结构的数量增加,对细胞内过程产生负面影响。受损分子和细胞器的消除是通过自噬发生的,自噬在衰老的背景下可能很重要。在低氧水平下培养可以作为增强 MSC 治疗特性和“减缓”细胞衰老的一种方法。本工作的目的是研究在不同氧浓度下 MSC 复制性衰老过程中自噬相关基因的某些形态和功能特征及表达。研究揭示了转录水平上自噬调控的变化。自噬体膜生长基因 ATG9A 和 ULK1、自噬体成熟基因 CTSD、CLN3、GAA 和 GABARAPL1、自噬调节基因 TP53、TGFB1、BCL2L1、FADD 和 HTT 的表达上调。这些变化伴随着 IGF1 和 TGM2 表达的下调。衰老的 MSCs 中观察到溶酶体区室体积增加,这也表明其降解活性增加。在低氧浓度(5%)下延长培养后,溶酶体数量减少。不同氧水平条件下 MSC 的复制性衰老导致自噬相关基因的表达发生类似的修饰。