Literature DB >> 9073519

Cloning, expression, and chromosomal assignment of the human mitochondrial intermediate peptidase gene (MIPEP).

A Chew1, E A Buck, S Peretz, G Sirugo, P Rinaldo, G Isaya.   

Abstract

The mitochondrial intermediate peptidase of Saccharomyces cerevisiae (YMIP) is a component of the yeast mitochondrial protein import machinery critically involved in the biogenesis of the oxidative phosphorylation (OXPHOS) system. This leader peptidase removes specific octapeptides from the amino terminus of nuclear-encoded OXPHOS subunits and components of the mitochondrial genetic apparatus. To address the biologic role of the human peptidase [MIPEP gene, HMIP polypeptide], we have initiated its molecular and functional characterization. A full-length cDNA was isolated by screening a human liver library using a rat MIP (RMIP) cDNA as a probe. The encoded protein contained a typical mitochondrial leader peptide and showed 92 and 54% homology to RMIP and YMIP, respectively. A survey of human mitochondrial protein precursors revealed that, similar to YMIP, HMIP is primarily involved in the maturation of OXPHOS-related proteins. Northern analysis showed that the MIPEP gene is differentially expressed in human tissues, with the highest levels of expression in the heart, skeletal muscle, and pancreas, three organ systems that are frequently affected in OXPHOS disorders. Using fluorescence in situ hybridization, the MIPEP locus was assigned to 13q12. This information offers the possibility of testing the potential involvement of HMIP in the pathophysiology of nuclear-driven OXPHOS disorders.

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Year:  1997        PMID: 9073519     DOI: 10.1006/geno.1996.4586

Source DB:  PubMed          Journal:  Genomics        ISSN: 0888-7543            Impact factor:   5.736


  11 in total

1.  Mutation detection in four candidate genes (OXA1L, MRS2L, YME1L and MIPEP) for combined deficiencies in the oxidative phosphorylation system.

Authors:  M J H Coenen; J A M Smeitink; R Smeets; F J M Trijbels; L P van den Heuvel
Journal:  J Inherit Metab Dis       Date:  2005       Impact factor: 4.982

2.  Genetic variants at 13q12.12 are associated with high myopia in the Han Chinese population.

Authors:  Yi Shi; Jia Qu; Dingding Zhang; Peiquan Zhao; Qingjiong Zhang; Pancy Oi Sin Tam; Liangdan Sun; Xianbo Zuo; Xiangtian Zhou; Xueshan Xiao; Jianbin Hu; Yuanfeng Li; Li Cai; Xiaoqi Liu; Fang Lu; Shihuang Liao; Bin Chen; Fei He; Bo Gong; He Lin; Shi Ma; Jing Cheng; Jie Zhang; Yiye Chen; Fuxin Zhao; Xian Yang; Yuhong Chen; Charles Yang; Dennis Shun Chiu Lam; Xi Li; Fanjun Shi; Zhengzheng Wu; Ying Lin; Jiyun Yang; Shiqiang Li; Yunqing Ren; Anquan Xue; Yingchuan Fan; Dean Li; Chi Pui Pang; Xuejun Zhang; Zhenglin Yang
Journal:  Am J Hum Genet       Date:  2011-06-06       Impact factor: 11.025

3.  Fine mapping of a QTL on chromosome 13 for submaximal exercise capacity training response: the HERITAGE Family Study.

Authors:  Treva K Rice; Mark A Sarzynski; Yun Ju Sung; George Argyropoulos; Adrian M Stütz; Margarita Teran-Garcia; D C Rao; Claude Bouchard; Tuomo Rankinen
Journal:  Eur J Appl Physiol       Date:  2011-12-15       Impact factor: 3.078

4.  Substrate specificity of mitochondrial intermediate peptidase analysed by a support-bound peptide library.

Authors:  M F M Marcondes; F M Alves; D M Assis; I Y Hirata; L Juliano; V Oliveira; M A Juliano
Journal:  FEBS Open Bio       Date:  2015-05-16       Impact factor: 2.693

5.  Exercise Capacity and Response to Training Quantitative Trait Loci in a NZW X 129S1 Intercross and Combined Cross Analysis of Inbred Mouse Strains.

Authors:  Michael P Massett; Joshua J Avila; Seung Kyum Kim
Journal:  PLoS One       Date:  2015-12-28       Impact factor: 3.240

6.  MIPEP recessive variants cause a syndrome of left ventricular non-compaction, hypotonia, and infantile death.

Authors:  Mohammad K Eldomery; Zeynep C Akdemir; F-Nora Vögtle; Wu-Lin Charng; Patrycja Mulica; Jill A Rosenfeld; Tomasz Gambin; Shen Gu; Lindsay C Burrage; Aisha Al Shamsi; Samantha Penney; Shalini N Jhangiani; Holly H Zimmerman; Donna M Muzny; Xia Wang; Jia Tang; Ravi Medikonda; Prasanna V Ramachandran; Lee-Jun Wong; Eric Boerwinkle; Richard A Gibbs; Christine M Eng; Seema R Lalani; Jozef Hertecant; Richard J Rodenburg; Omar A Abdul-Rahman; Yaping Yang; Fan Xia; Meng C Wang; James R Lupski; Chris Meisinger; V Reid Sutton
Journal:  Genome Med       Date:  2016-11-01       Impact factor: 11.117

7.  Genetic variants in nuclear DNA along with environmental factors modify mitochondrial DNA copy number: a population-based exome-wide association study.

Authors:  Zhihua Li; Meng Zhu; Jiangbo Du; Hongxia Ma; Guangfu Jin; Juncheng Dai
Journal:  BMC Genomics       Date:  2018-10-16       Impact factor: 3.969

Review 8.  Mitochondrial Processing Peptidases-Structure, Function and the Role in Human Diseases.

Authors:  Nina Kunová; Henrieta Havalová; Gabriela Ondrovičová; Barbora Stojkovičová; Jacob A Bauer; Vladena Bauerová-Hlinková; Vladimir Pevala; Eva Kutejová
Journal:  Int J Mol Sci       Date:  2022-01-24       Impact factor: 5.923

9.  An integrative analysis reveals coordinated reprogramming of the epigenome and the transcriptome in human skeletal muscle after training.

Authors:  Maléne E Lindholm; Francesco Marabita; David Gomez-Cabrero; Helene Rundqvist; Tomas J Ekström; Jesper Tegnér; Carl Johan Sundberg
Journal:  Epigenetics       Date:  2014-12       Impact factor: 4.528

Review 10.  Mitochondrial Protein Homeostasis and Cardiomyopathy.

Authors:  Emily Wachoski-Dark; Tian Zhao; Aneal Khan; Timothy E Shutt; Steven C Greenway
Journal:  Int J Mol Sci       Date:  2022-03-20       Impact factor: 5.923

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