Literature DB >> 20818731

Polymerase gamma disease through the ages.

Russell P Saneto1, Robert K Naviaux.   

Abstract

The most common group of mitochondrial disease is due to mutations within the mitochondrial DNA polymerase, polymerase gamma 1 (POLG). This gene product is responsible for replication and repair of the small mitochondrial DNA genome. The structure-function relationship of this gene product produces a wide variety of diseases that at times, seems to defy the common perceptions of genetics. The unique features of mitochondrial physiology are in part responsible, but POLG structure and function add to the conundrum of how one gene product can demonstrate autosomal recessive and autosomal dominant transmission, while also being responsible for pharmacogenetic disease, and exhibiting strong gene-environment interactions. The wide spectrum of clinical manifestations of POLG disease can arise from infancy to old age. The modulation of clinical findings relate in part to the molecular architecture of the POLG protein. POLG has three distinct molecular domains: exonuclease, linker, and polymerase domains. Most of the mutations leading to dominant forms of POLG disease are located in the Polymerase domain. Mutations leading to recessive inheritance are distributed in all three domains of the gene. Environmental factors like valproic acid and infection can unmask POLG disease, causing it to occur earlier in life than when not exposed to these factors. Other drugs like nucleoside reverse transcriptase inhibitors can produce genotype-specific POLG pharmacogenetic disease. Our current state of POLG understanding cannot account for many features of POLG disease. There is no answer for why the same mutation can give rise to varying diseases, disease severity, and age of onset. We introduce the term Ecogenetics in the context these features of POLG disease, to emphasize the important interactions between genes and environment in determining the expression of mitochondrial disease. In this article, we identify some of the key features that will help the reader understand POLG pathophysiology. When possible, we also identify genotype-phenotype relationships, give clues for diagnosis, and summarize the major clinical phenotypes in the spectrum of POLG disease presenting from birth to old age. (c) 2010 Wiley-Liss, Inc.

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Year:  2010        PMID: 20818731     DOI: 10.1002/ddrr.105

Source DB:  PubMed          Journal:  Dev Disabil Res Rev        ISSN: 1940-5529


  30 in total

1.  Synergistic Effects of the in cis T251I and P587L Mitochondrial DNA Polymerase γ Disease Mutations.

Authors:  Karen L DeBalsi; Matthew J Longley; Kirsten E Hoff; William C Copeland
Journal:  J Biol Chem       Date:  2017-02-02       Impact factor: 5.157

Review 2.  Mitochondrial disease in childhood: mtDNA encoded.

Authors:  Russell P Saneto; Margret M Sedensky
Journal:  Neurotherapeutics       Date:  2013-04       Impact factor: 7.620

Review 3.  Alpers-Huttenlocher syndrome.

Authors:  Russell P Saneto; Bruce H Cohen; William C Copeland; Robert K Naviaux
Journal:  Pediatr Neurol       Date:  2013-03       Impact factor: 3.372

4.  Mapping 136 pathogenic mutations into functional modules in human DNA polymerase γ establishes predictive genotype-phenotype correlations for the complete spectrum of POLG syndromes.

Authors:  Gregory A Farnum; Anssi Nurminen; Laurie S Kaguni
Journal:  Biochim Biophys Acta       Date:  2014-02-07

Review 5.  Defects of mitochondrial DNA replication.

Authors:  William C Copeland
Journal:  J Child Neurol       Date:  2014-06-30       Impact factor: 1.987

Review 6.  Mitochondrial genome maintenance in health and disease.

Authors:  William C Copeland; Matthew J Longley
Journal:  DNA Repair (Amst)       Date:  2014-04-26

Review 7.  The interface of transcription and DNA replication in the mitochondria.

Authors:  Rajesh Kasiviswanathan; Tammy R L Collins; William C Copeland
Journal:  Biochim Biophys Acta       Date:  2011-12-20

8.  Mitochondrial POLG related disorder presenting prenatally with fetal cerebellar growth arrest.

Authors:  Michal Inbar-Feigenberg; Susan Blaser; Cynthia Hawkins; Patrick Shannon; Stacy Hewson; David Chitayat
Journal:  Metab Brain Dis       Date:  2018-03-25       Impact factor: 3.584

Review 9.  Mitochondrial DNA maintenance: an appraisal.

Authors:  Alexander T Akhmedov; José Marín-García
Journal:  Mol Cell Biochem       Date:  2015-08-19       Impact factor: 3.396

Review 10.  Human mitochondrial DNA replication machinery and disease.

Authors:  Matthew J Young; William C Copeland
Journal:  Curr Opin Genet Dev       Date:  2016-04-09       Impact factor: 5.578

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