Mitochondria and the success of somatic cell nuclear transfer cloning: from nuclear-mitochondrial interactions to mitochondrial complementation and mitochondrial DNA recombination

被引:40
作者
Hiendleder, S [1 ]
Zakhartchenko, V [1 ]
Wolf, E [1 ]
机构
[1] Univ Munich, Gene Ctr, Inst Mol Anim Breeding & Biotechnol, D-81377 Munich, Germany
关键词
D O I
10.1071/RD04115
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The overall success of somatic cell nuclear transfer (SCNT) cloning is rather unsatisfactory, both in terms of efficacy and from an animal health and welfare point of view. Most research activities have concentrated on epigenetic reprogramming problems as one major cause of SCNT failure. The present review addresses the limited success of mammalian SCNT from yet another viewpoint, the mitochondrial perspective. Mitochondria have a broad range of critical functions in cellular energy supply, cell signalling and programmed cell death and, thus, affect embryonic and fetal development, suggesting that inadequate or perturbed mitochondrial functions may adversely affect SCNT success. A survey of perinatal clinical data from human subjects with deficient mitochondrial respiratory chain activity has revealed a plethora of phenotypes that have striking similarities with abnormalities commonly encountered in SCNT fetuses and offspring. We discuss the limited experimental data on nuclear-mitochondrial interaction effects in SCNT and explore the potential effects in the context of new findings about the biology of mitochondria. These include mitochondrial fusion/fission, mitochondrial complementation and mitochondrial DNA recombination, processes that are likely to be affected by and impact on SCNT cloning. Furthermore, we indicate pathways that could link epigenetic reprogramming and mitochondria effects in SCNT and address questions and perspectives for future research.
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页码:69 / 83
页数:15
相关论文
共 172 条
[1]   Alterations in mitochondrial membrane potential during preimplantation stages of mouse and human embryo development [J].
Acton, BM ;
Jurisicova, A ;
Jurisica, I ;
Casper, RF .
MOLECULAR HUMAN REPRODUCTION, 2004, 10 (01) :23-32
[2]   COMPLETE SEQUENCE OF BOVINE MITOCHONDRIAL-DNA - CONSERVED FEATURES OF THE MAMMALIAN MITOCHONDRIAL GENOME [J].
ANDERSON, S ;
DEBRUIJN, MHL ;
COULSON, AR ;
EPERON, IC ;
SANGER, F ;
YOUNG, IG .
JOURNAL OF MOLECULAR BIOLOGY, 1982, 156 (04) :683-717
[3]   Gene expression and in vitro development of inter-species nuclear transfer embryos [J].
Arat, S ;
Rzucidlo, SJ ;
Stice, SL .
MOLECULAR REPRODUCTION AND DEVELOPMENT, 2003, 66 (04) :334-342
[4]   Linkage disequilibrium and recombination in hominid mitochondrial DNA [J].
Awadalla, P ;
Eyre-Walker, A ;
Smith, JM .
SCIENCE, 1999, 286 (5449) :2524-2525
[5]   The mitochondrial genome: mutation, selection and recombination [J].
Ballard, JWO ;
Dean, MD .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 2001, 11 (06) :667-672
[6]   Growth factor-mediated induction of HDM2 positively regulates hypoxia-inducible factor 1α expression [J].
Bárdos, JI ;
Chau, NM ;
Ashcroft, M .
MOLECULAR AND CELLULAR BIOLOGY, 2004, 24 (07) :2905-2914
[7]   Cytochrome c oxidase assembly in primates is sensitive to small evolutionary variations in amino acid sequence [J].
Barrientos, A ;
Müller, S ;
Dey, R ;
Wienberg, J ;
Moraes, CT .
MOLECULAR BIOLOGY AND EVOLUTION, 2000, 17 (10) :1508-1519
[8]   Human xenomitochondrial cybrids - Cellular models of mitochondrial complex I deficiency [J].
Barrientos, A ;
Kenyon, L ;
Moraes, CT .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (23) :14210-14217
[9]   Titrating the effects of mitochondrial complex I impairment in the cell physiology [J].
Barrientos, A ;
Moraes, CT .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (23) :16188-16197
[10]   Mitochondria in human offspring derived from ooplasmic transplantation [J].
Barritt, JA ;
Brenner, CA ;
Malter, HE ;
Cohen, J .
HUMAN REPRODUCTION, 2001, 16 (03) :513-516