Mutations in POLG, encoding POLγA, the catalytic subunit of the mitochondrial DNA polymerase, cause a spectrum of disorders characterized by mtDNA instability. However, the molecular pathogenesis of POLG-related diseases is poorly understood and efficient treatments are missing. Here, we generate the PolgA449T/A449T mouse model, which reproduces the A467T change, the most common human recessive mutation of POLG. We show that the mouse A449T mutation impairs DNA binding and mtDNA synthesis activities of POLγ, leading to a stalling phenotype. Most importantly, the A449T mutation also strongly impairs interactions with POLγB, the accessory subunit of the POLγholoenzyme. This allows the free POLγA to become a substrate for LONP1 protease degradation, leading to dramatically reduced levels of POLγA in A449T mouse tissues. Therefore, in addition to its role as a processivity factor, POLγB acts to stabilize POLγA and to prevent LONP1-dependent degradation. Notably, we validated this mechanism for other disease-associated mutations affecting the interaction between the two POLγsubunits. We suggest that targeting POLγA turnover can be exploited as a target for the development of future therapies.

DNA polymerase gamma mutations that impair holoenzyme stability cause catalytic subunit depletion / P. Silva-Pinheiro, C. Pardo-Hernandez, A. Reyes, L. Tilokani, A. Mishra, R. Cerutti, S. Li, D.-. Rozsivalova, S. Valenzuela, S.A. Dogan, B. Peter, P. Fernandez-Silva, A. Trifunovic, J. Prudent, M. Minczuk, L. Bindoff, B. Macao, M. Zeviani, M. Falkenberg, C. Viscomi. - In: NUCLEIC ACIDS RESEARCH. - ISSN 0305-1048. - 49:9(2021 May 06), pp. 5230-5248. [10.1093/nar/gkab282]

DNA polymerase gamma mutations that impair holoenzyme stability cause catalytic subunit depletion

A. Mishra;R. Cerutti;C. Viscomi
Ultimo
2021

Abstract

Mutations in POLG, encoding POLγA, the catalytic subunit of the mitochondrial DNA polymerase, cause a spectrum of disorders characterized by mtDNA instability. However, the molecular pathogenesis of POLG-related diseases is poorly understood and efficient treatments are missing. Here, we generate the PolgA449T/A449T mouse model, which reproduces the A467T change, the most common human recessive mutation of POLG. We show that the mouse A449T mutation impairs DNA binding and mtDNA synthesis activities of POLγ, leading to a stalling phenotype. Most importantly, the A449T mutation also strongly impairs interactions with POLγB, the accessory subunit of the POLγholoenzyme. This allows the free POLγA to become a substrate for LONP1 protease degradation, leading to dramatically reduced levels of POLγA in A449T mouse tissues. Therefore, in addition to its role as a processivity factor, POLγB acts to stabilize POLγA and to prevent LONP1-dependent degradation. Notably, we validated this mechanism for other disease-associated mutations affecting the interaction between the two POLγsubunits. We suggest that targeting POLγA turnover can be exploited as a target for the development of future therapies.
Settore BIOS-14/A - Genetica
   Maintaining the Human Mitochondrial Genome
   DELMIT
   European Commission
   Horizon 2020 Framework Programme - European Research Council - Consolidator Grant
   683191

   Regulation of mitochondrial expression
   REMIX
   European Commission
   Horizon 2020 Framework Programme - European Training Networks
   721757
6-mag-2021
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1232109
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