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Crochemore, C.

Publications and source records attributed to Crochemore, C..

2 recordsLinked to original sources

HTRA3 protease-chaperone stabilizes cathepsin B for mitochondrial POLG1 depletion in human cell ageing

The maintenance of mitochondrial proteins homeostasis, which is essential for proper cell function, is affected in pathophysiological ageing, yet several underlying mechanisms remain unexplored. We show that in normal and accelerated ageing cells, POLG1, the enzyme responsible for mitochondrial DNA replication, is degraded by the protease cathepsin B, which is overexpressed, escapes from lysosomes, and is stabilized by the chaperone activity of another protease, HTRA3. This degradation is in part counteracted by RAC1, a small GTPase also stabilized by HTRA3. POLG1 depletion, that occurs in progeroid Cockayne syndrome and senescent cells, is linked respectively to impairment or downregulation of the CSB protein, which promote cellular senescence. Our experiments in engineered cells, demonstrate that senescence itself, and not the absence of CSB, triggers the accumulation of cathepsin B and HTRA3, leading to POLG1 degradation. In summary, we uncover a complex, multi-step process that controls the degradation of POLG1 in mitochondria, a process that is activated by cell senescence and becomes more pronounced in Cockayne syndrome cells, providing new insight in the regulation of mitochondrial proteostasis in ageing and progeroid disorders.

cell biology↗

Epigenomic signature of the progeroid Cockayne syndrome exposes distinct and common features with physiological ageing

Cockayne syndrome (CS) and UV-sensitivity syndrome (UVSS) are rare genetic disorders caused by mutation of the DNA repair and chromatin remodelling proteins CSA or CSB, but only CS patients display a progeroid and neurodegenerative phenotype. As epigenetic modifications constitute a well-established hallmark of ageing, we characterized genome-wide DNA methylation (DNAm) of fibroblasts from CS versus UVSS patients and healthy donors. The analysis of differentially methylated positions and regions revealed a CS-specific epigenetic signature, enriched in developmental transcription factors, transmembrane transporters, and cell adhesion factors. The CS-specific signature compared to DNAm changes in other progeroid diseases and regular ageing, identifyied commonalities and differences in epigenetic remodelling. CS shares DNAm changes with normal ageing more than other progeroid diseases do, and according to the methylation clock CS samples show up to 13-fold accelerated ageing. Thus, CS is characterized by a specific epigenomic signature that partially overlaps with and exacerbates DNAm changes occurring in physiological aging. Our results unveil new genes and pathways that are potentially relevant for the progeroid/degenerative CS phenotype.

molecular biology↗