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D'Silva, P.

Publications and source records attributed to D'Silva, P..

2 recordsLinked to original sources

Saccharomyces cerevisiae DJ-1 paralogs maintain genome integrity through glycation repair of nucleic acids and proteins

Reactive carbonyl species (RCS) such as methylglyoxal and glyoxal are potent glycolytic intermediates that extensively damage cellular biomolecules leading to genetic aberration and protein misfolding. Hence, RCS levels are crucial indicators in the progression of various pathological diseases. Besides the glyoxalase system, emerging studies report highly conserved DJ-1/ThiJ/PfpI superfamily proteins as critical regulators of RCS. DJ-1 superfamily proteins, including the human DJ-1, a genetic determinant of Parkinsons disease possess diverse physiological functions paramount for combating multiple stressors. Although S. cerevisiae retains four DJ-1 orthologs (namely Hsp31, Hsp32, Hsp33, and Hsp34), their physiological relevance and collective requirement are still obscure due to their close sequence similarity. Here, we report for the first time that the yeast DJ-1 orthologs function as novel enzymes involved in the preferential scavenge of glyoxal and methylglyoxal, toxic metabolites, and genotoxic agents. At the cellular level, their collective loss induces chronic glycation of the proteome, and nucleic acids, resulting in a spectrum of genetic mutations and reduced mRNA translational efficiency. Furthermore, the Hsp31 paralogs efficiently repair severely glycated macromolecules derived from carbonyl modifications. They also participate in genome maintenance as their absence upregulates DNA damage response pathways when exposed to different genotoxins. Interestingly, yeast DJ-1 orthologs provide robust organellar protection by redistributing into mitochondria to alleviate the glycation damage of mitochondrial DNA and proteins. Taken together, our study uncovers the existence of a novel glycation repair pathway in S. cerevisiae and a possible neuroprotective mechanism of how hDJ-1 confers mitochondrial health during carbonyl stress.

biochemistry↗

Functional crosstalk between the carrier translocase machinery and YME1 complex maintains mitochondrial proteostasis and integrity

The TIM22 pathway cargos are essential for sustaining mitochondrial proteostasis as an excess of these proteins leads to proteostatic stress and cell death. Yme1 is an inner membrane metalloprotease that regulates proteostasis with its chaperone-like and proteolytic activities. Although the mitochondrial translocase and protease machinery are critical for organelle health, the functional link between these complexes remains unexplored. The present study unravels a novel genetic connection between the TIM22 complex and YME1 machinery in maintaining mitochondrial proteostasis and quality control. Our genetic analyses indicate that impairment in the TIM22 complex rescues the respiratory growth defects of cells without Yme1. We further demonstrate that Yme1 is essential for the stability of the TIM22 complex and regulating the proteostasis of the TIM22 pathway substrates. Moreover, impairment in the TIM22 complex suppressed the mitochondrial structural and functional defects of Yme1 devoid cells. Notably, the functional dependence between the TIM22 and YME1 complexes remains functionally conserved from yeast to humans. Our findings suggest that excessive levels of the TIM22 pathway substrates could be one of the reasons for the respiratory growth defects of cells lacking Yme1 and compromising the TIM22 complex compensate for the imbalance in mitochondrial proteostasis caused by loss of Yme1.

cell biology↗