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Hangas, A.

Publications and source records attributed to Hangas, A..

2 recordsLinked to original sources

A small molecule inhibitor Mirin prevents TOP3A-dependent mtDNA breakage and segregation

Mirin, the chemical inhibitor of MRE11, has been recently reported to prevent immune response activation caused by mitochondrial DNA (mtDNA) breakage and release upon replication stalling. We show here that Mirin prevents mitochondrial replication fork breakage in mitochondrial 3-exonuclease MGME1 deficient cells and the resulting innate immune response induction, but that this occurs independently of MRE11. Furthermore, Mirin also caused alteration of mtDNA supercoiling and accumulation of hemicatenated replication termination intermediates, hallmarks of topoisomerase dysfunction, as well as alleviated topological changes induced by the overexpression of mitochondrial TOP3A, including TOP3A-dependent strand breakage at the non-coding region of mtDNA, potentially explaining its protective effect in the MGME1-knockout cells. Although Mirin does not inhibit TOP3A in vitro, our results demonstrate its MRE11-independent effects in cells and give insight into the mechanisms of mtDNA segregation, as well as the maintenance of genomic integrity in mitochondria. Significance StatementO_LIBroken mitochondrial DNA (mtDNA) in MGME1 knockout cells activates innate immune response, which is prevented by Mirin, a small molecule inhibitor of MRE11. C_LIO_LIMirin also interferes with mtDNA replication termination and segregation, suggesting that termination intermediates or paused forks are a major source of mtDNA breakage. C_LIO_LIWe show that these effects are likely dependent on topoisomerase 3A (TOP3A) -related processes in mitochondria, questioning the Mirin target also in the nucleus. C_LI

molecular biology↗

Uncharacterized protein c17orf80: a novel interactor of human mitochondrial nucleoids

Molecular functions of many human proteins remain unstudied, despite the demonstrated association with diseases or pivotal molecular structures, such as mitochondrial DNA (mtDNA). This small genome is crucial for proper functioning of mitochondria, the energy-converting organelles. In mammals, mtDNA is arranged into macromolecular complexes called nucleoids that serve as functional stations for its maintenance and expression. Here, we aimed to explore an uncharacterized protein c17orf80, which was previously detected close to the nucleoid components by proximity-labelling mass spectrometry. To investigate the subcellular localization and function of c17orf80, we took an advantage of immunofluorescence microscopy, interaction proteomics and several biochemical assays. We demonstrate that c17orf80 is a mitochondrial membrane-associated protein that interacts with nucleoids even when mtDNA replication is inhibited. In addition, we show that c17orf80 is not essential for mtDNA maintenance and mitochondrial gene expression in cultured human cells. These results provide a basis for uncovering the molecular function of c17orf80 and the nature of its association with nucleoids, possibly leading to new insights about mtDNA and its expression.

molecular biology↗