The mitochondrial bottleneck occurs without reduction of mtDNA content in female mouse germ cells

被引:274
作者
Cao, Liqin
Shitara, Hiroshi
Horii, Takuro
Nagao, Yasumitsu
Imai, Hiroshi
Abe, Kuniya
Hara, Takahiko
Hayashi, Jun-Ichi
Yonekawa, Hiromichi [1 ]
机构
[1] Tokyo Metropolitan Inst Med Sci, Dept Lab Anim Sci, Tokyo 1138613, Japan
[2] Univ Tsukuba, Grad Sch Life & Environm Sci, Tsukuba, Ibaraki 3058572, Japan
[3] Kyoto Univ, Grad Sch Agr, Reprod Biol Lab, Kyoto 6068502, Japan
[4] RIKEN, Tsukuba Inst, BRC, Technol & Dev Team Mammalian Cellular Disorders, Tsukuba, Ibaraki 3050074, Japan
[5] Tokyo Metropolitan Inst Med Sci, Stem Cell Project Grp, Tokyo 1138613, Japan
关键词
D O I
10.1038/ng1970
中图分类号
Q3 [遗传学];
学科分类号
071007 [遗传学]; 090102 [作物遗传育种];
摘要
Observations of rapid shifts in mitochondrial DNA (mtDNA) variants between generations prompted the creation of the bottleneck theory. A prevalent hypothesis is that a massive reduction in mtDNA content during early oogenesis leads to the bottleneck(1,2). To test this, we estimated the mtDNA copy number in single germline cells and in single somatic cells of early embryos in mice. Primordial germ cells (PGCs) show consistent, moderate mtDNA copy numbers across developmental stages, whereas primary oocytes demonstrate substantial mtDNA expansion during early oocyte maturation. Some somatic cells possess a very low mtDNA copy number. We also demonstrated that PGCs have more than 100 mitochondria per cell. We conclude that the mitochondrial bottleneck is not due to a drastic decline in mtDNA copy number in early oogenesis but rather to a small effective number of segregation units for mtDNA in mouse germ cells. These results provide new information for mtDNA segregation models and for understanding the recurrence risks for mtDNA diseases.
引用
收藏
页码:386 / 390
页数:5
相关论文
共 30 条
[1]
RAPID SEGREGATION OF HETEROPLASMIC BOVINE MITOCHONDRIA [J].
ASHLEY, MV ;
LAIPIS, PJ ;
HAUSWIRTH, WW .
NUCLEIC ACIDS RESEARCH, 1989, 17 (18) :7325-7331
[2]
Nuclear genetic control of mitochondrial DNA segregation [J].
Battersby, BJ ;
Loredo-Osti, JC ;
Shoubridge, EA .
NATURE GENETICS, 2003, 33 (02) :183-186
[3]
RELAXED AND STRINGENT GENOMES - WHY CYTOPLASMIC GENES DONT OBEY MENDELS LAWS [J].
BIRKY, CW .
JOURNAL OF HEREDITY, 1994, 85 (05) :355-365
[4]
Skewed segregation of the mtDNA nt 8993 (T->G) mutation in human oocytes [J].
Blok, RB ;
Gook, DA ;
Thorburn, DR ;
Dahl, HHM .
AMERICAN JOURNAL OF HUMAN GENETICS, 1997, 60 (06) :1495-1501
[5]
MITOCHONDRIAL-DNA SEQUENCES OF PRIMATES - TEMPO AND MODE OF EVOLUTION [J].
BROWN, WM ;
PRAGER, EM ;
WANG, A ;
WILSON, AC .
JOURNAL OF MOLECULAR EVOLUTION, 1982, 18 (04) :225-239
[6]
RAPID EVOLUTION OF ANIMAL MITOCHONDRIAL-DNA [J].
BROWN, WM ;
GEORGE, M ;
WILSON, AC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1979, 76 (04) :1967-1971
[7]
HOMOLOGY BETWEEN MITOCHONDRIOGENESIS IN THE AVIAN AND AMPHIBIAN OOCYTE [J].
DHERDE, K ;
CALLEBAUT, M ;
ROELS, F ;
DEPREST, B ;
VANNASSAUW, L .
REPRODUCTION NUTRITION DEVELOPMENT, 1995, 35 (03) :305-311
[8]
MITOCHONDRIAL-DNA POLYMORPHISM IN A MATERNAL LINEAGE OF HOLSTEIN COWS [J].
HAUSWIRTH, WW ;
LAIPIS, PJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1982, 79 (15) :4686-4690
[9]
The functional organization of mitochondrial genomes in human cells [J].
Iborra, Francisco J. ;
Kimura, Hiroshi ;
Cook, Peter R. .
BMC BIOLOGY, 2004, 2 (1)
[10]
The bottleneck: mitochondrial imperatives in oogenesis and ovarian follicular fate [J].
Jansen, RPS ;
de Boer, K .
MOLECULAR AND CELLULAR ENDOCRINOLOGY, 1998, 145 (1-2) :81-88