Literature DB >> 35199537

Conplastic strains for identification of retrograde effects of mitochondrial dna variation on cardiometabolic traits in the spontaneously hypertensive rat.

M Pravenec1, J Šilhavý, P Mlejnek, M Šimáková, T Mráček, A Pecinová, K Tauchmannová, M Hütl, H Malínská, L Kazdová, J Neckář, F Kolář, J Žurmanová, J Novotný, J Houštěk.   

Abstract

Mitochondrial retrograde signaling is a pathway of communication from mitochondria to the nucleus. Recently, natural mitochondrial genome (mtDNA) polymorphisms (haplogroups) received increasing attention in the pathophysiology of human common diseases. However, retrograde effects of mtDNA variants on such traits are difficult to study in humans. The conplastic strains represent key animal models to elucidate regulatory roles of mtDNA haplogroups on defined nuclear genome background. To analyze the relationship between mtDNA variants and cardiometabolic traits, we derived a set of rat conplastic strains (SHR-mtBN, SHR-mtF344 and SHR-mtLEW), harboring all major mtDNA haplotypes present in common inbred strains on the nuclear background of the spontaneously hypertensive rat (SHR). The BN, F344 and LEW mtDNA differ from the SHR in multiple amino acid substitutions in protein coding genes and also in variants of tRNA and rRNA genes. Different mtDNA haplotypes were found to predispose to various sets of cardiometabolic phenotypes which provided evidence for significant retrograde effects of mtDNA in the SHR. In the future, these animals could be used to decipher individual biochemical components involved in the retrograde signaling.

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Year:  2021        PMID: 35199537      PMCID: PMC9054184          DOI: 10.33549/physiolres.934740

Source DB:  PubMed          Journal:  Physiol Res        ISSN: 0862-8408            Impact factor:   2.139


  33 in total

Review 1.  Genotype to phenotype: Diet-by-mitochondrial DNA haplotype interactions drive metabolic flexibility and organismal fitness.

Authors:  Wen C Aw; Samuel G Towarnicki; Richard G Melvin; Neil A Youngson; Michael R Garvin; Yifang Hu; Shaun Nielsen; Torsten Thomas; Russell Pickford; Sonia Bustamante; Antón Vila-Sanjurjo; Gordon K Smyth; J William O Ballard
Journal:  PLoS Genet       Date:  2018-11-06       Impact factor: 5.917

Review 2.  Recent progress in the genetics of spontaneously hypertensive rats.

Authors:  M Pravenec; V Křen; V Landa; P Mlejnek; A Musilová; J Šilhavý; M Šimáková; V Zídek
Journal:  Physiol Res       Date:  2014       Impact factor: 1.881

3.  Sequence analysis of the complete mitochondrial DNA in 10 commonly used inbred rat strains.

Authors:  Nancy E Schlick; Michael I Jensen-Seaman; Kimberly Orlebeke; Anne E Kwitek; Howard J Jacob; Jozef Lazar
Journal:  Am J Physiol Cell Physiol       Date:  2006-07-19       Impact factor: 4.249

4.  Mutant Wars2 gene in spontaneously hypertensive rats impairs brown adipose tissue function and predisposes to visceral obesity.

Authors:  M Pravenec; V Zídek; V Landa; P Mlejnek; J Šilhavý; M Šimáková; J Trnovská; V Škop; I Marková; H Malínská; M Hüttl; L Kazdová; K Bardová; K Tauchmannová; M Vrbacký; H Nůsková; T Mráček; J Kopecký; J Houštěk
Journal:  Physiol Res       Date:  2017-12-20       Impact factor: 1.881

Review 5.  Maternal transmission of diabetes.

Authors:  J C Alcolado; K Laji; R Gill-Randall
Journal:  Diabet Med       Date:  2002-02       Impact factor: 4.359

6.  A novel class of tests for the detection of mitochondrial DNA-mutation involvement in diseases.

Authors:  Fengzhu Sun; Jing Cui; Haralambos Gavras; Faina Schwartz
Journal:  Am J Hum Genet       Date:  2003-04-30       Impact factor: 11.025

7.  Mitochondrial polymorphisms in rat genetic models of hypertension.

Authors:  Sivarajan Kumarasamy; Kathirvel Gopalakrishnan; Asher Shafton; Jeremy Nixon; Jayakumar Thangavel; Phyllis Farms; Bina Joe
Journal:  Mamm Genome       Date:  2010-05-05       Impact factor: 2.957

8.  Mitochondrial and nuclear DNA matching shapes metabolism and healthy ageing.

Authors:  Ana Latorre-Pellicer; Raquel Moreno-Loshuertos; Ana Victoria Lechuga-Vieco; Fátima Sánchez-Cabo; Carlos Torroja; Rebeca Acín-Pérez; Enrique Calvo; Esther Aix; Andrés González-Guerra; Angela Logan; María Luisa Bernad-Miana; Eduardo Romanos; Raquel Cruz; Sara Cogliati; Beatriz Sobrino; Ángel Carracedo; Acisclo Pérez-Martos; Patricio Fernández-Silva; Jesús Ruíz-Cabello; Michael P Murphy; Ignacio Flores; Jesús Vázquez; José Antonio Enríquez
Journal:  Nature       Date:  2016-07-06       Impact factor: 49.962

9.  Wars2 is a determinant of angiogenesis.

Authors:  Mao Wang; Patrick Sips; Ester Khin; Maxime Rotival; Ximing Sun; Rizwan Ahmed; Anissa Anindya Widjaja; Sebastian Schafer; Permeen Yusoff; Pervinder Kaur Choksi; Nicole Shi Jie Ko; Manvendra K Singh; David Epstein; Yuguang Guan; Josef Houštěk; Tomas Mracek; Hana Nuskova; Brittney Mikell; Jessie Tan; Francesco Pesce; Frantisek Kolar; Leonardo Bottolo; Massimiliano Mancini; Norbert Hubner; Michal Pravenec; Enrico Petretto; Calum MacRae; Stuart A Cook
Journal:  Nat Commun       Date:  2016-07-08       Impact factor: 14.919

10.  Mitochondrial - nuclear genetic interaction modulates whole body metabolism, adiposity and gene expression in vivo.

Authors:  Kimberly J Dunham-Snary; Michael W Sandel; Melissa J Sammy; David G Westbrook; Rui Xiao; Ryan J McMonigle; William F Ratcliffe; Arthur Penn; Martin E Young; Scott W Ballinger
Journal:  EBioMedicine       Date:  2018-09-16       Impact factor: 8.143

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