Chromosomal evolution of Arvicolinae (Cricetidae, Rodentia). III. Karyotype relationships of ten Microtus species

被引:0
|
作者
Natalia A. Lemskaya
Svetlana A. Romanenko
Feodor N. Golenishchev
Nadezhda V. Rubtsova
Olga V. Sablina
Natalya A. Serdukova
Patricia C. M. O’Brien
Beiyuan Fu
Nuri Yiğit
Malcolm A. Ferguson-Smith
Fengtang Yang
Alexander S. Graphodatsky
机构
[1] Institute of Chemical Biology and Fundamental Medicine,Department of Molecular and Cellular Biology
[2] SB RAS,Specialized Educational Scientific Center
[3] Zoological Institute,Cambridge Resource Centre for Comparative Genomics, Department of Veterinary Medicine
[4] RAS,Faculty of Science, Department of Biology
[5] Institute of Cytology and Genetics,undefined
[6] SB RAS,undefined
[7] Novosibirsk State University,undefined
[8] University of Cambridge,undefined
[9] University of Ankara,undefined
[10] Wellcome Trust Sanger Institute,undefined
来源
Chromosome Research | 2010年 / 18卷
关键词
Arvicolinae; chromosome painting; comparative cytogenetics; genome evolution; ancestral ; karyotype;
D O I
暂无
中图分类号
学科分类号
摘要
The genus Microtus consists of 65 extant species, making it one of the rodentia genera with the highest number of species. The extreme karyotype diversification in Microtus has made them an ideal species group for comparative cytogenetics and cytotaxonomy. Conventional comparative cytogenetic studies in Microtus have been based mainly on chromosomal banding patterns; the number of Microtus species examined by molecular cytogenetics—cross-species chromosome painting—is limited. In this study, we used whole chromosome painting probes of the field vole Microtus agrestis to detect regions of homology in the karyotypes of eight Microtus species. For almost all investigated species, species-specific associations of conserved chromosomal segments were revealed. Analysis of data obtained here and previously published data allowed us to propose that the ancestral Microtus species had a 2n = 54 karyotype, including two associations of field vole chromosomal segments (MAG 1/17 and 2/8). Further mapping of the chromosome rearrangements onto a molecular phylogenetic tree allows the reconstruction of a karyotype evolution pathway in the Microtus genus.
引用
收藏
页码:459 / 471
页数:12
相关论文
共 50 条
  • [1] Chromosomal evolution of Arvicolinae (Cricetidae, Rodentia). III. Karyotype relationships of ten Microtus species
    Lemskaya, Natalia A.
    Romanenko, Svetlana A.
    Golenishchev, Feodor N.
    Rubtsova, Nadezhda V.
    Sablina, Olga V.
    Serdukova, Natalya A.
    O'Brien, Patricia C. M.
    Fu, Beiyuan
    Yigit, Nuri
    Ferguson-Smith, Malcolm A.
    Yang, Fengtang
    Graphodatsky, Alexander S.
    CHROMOSOME RESEARCH, 2010, 18 (04) : 459 - 471
  • [2] Sex chromosome variability outlines the pathway to the chromosomal evolution in Microtus thomasi (Rodentia, Arvicolinae)
    Mitsainas, George P.
    Rovatsos, Michail Th.
    Rizou, Eleni I.
    Giagia-Athanasopoulou, Eva B.
    BIOLOGICAL JOURNAL OF THE LINNEAN SOCIETY, 2009, 96 (03) : 685 - 695
  • [3] On karyotype variation in common vole Microtus rossiaemeridionalis (Rodentia, Cricetidae)
    Yakimenko, LV
    Kryukov, AP
    ZOOLOGICHESKY ZHURNAL, 1997, 76 (03): : 375 - 378
  • [4] Karyotype evolution and phylogenetic relationships of hamsters (Cricetidae, Muroidea, Rodentia) inferred from chromosomal painting and banding comparison
    Romanenko, Svetlana A.
    Volobouev, Vitaly T.
    Perelman, Polina L.
    Lebedev, Vladimir S.
    Serdukova, Natalya A.
    Trifonov, Vladimir A.
    Biltueva, Larisa S.
    Nie, Wenhui
    Brien, Patricia C. M. O.
    Bulatova, Nina Sh.
    Ferguson-Smith, Malcolm A.
    Yang, Fengtang
    Graphodatsky, Alexander S.
    CHROMOSOME RESEARCH, 2007, 15 (03) : 283 - 297
  • [5] Karyotype evolution and phylogenetic relationships of hamsters (Cricetidae, Muroidea, Rodentia) inferred from chromosomal painting and banding comparison
    Svetlana A. Romanenko
    Vitaly T. Volobouev
    Polina L. Perelman
    Vladimir S. Lebedev
    Natalya A. Serdukova
    Vladimir A. Trifonov
    Larisa S. Biltueva
    Wenhui Nie
    Patricia C. M. O’Brien
    Nina Sh. Bulatova
    Malcolm A. Ferguson-Smith
    Fengtang Yang
    Alexander S. Graphodatsky
    Chromosome Research, 2007, 15 : 283 - 298
  • [6] Antioxidant Defenses in Tissues of Four Species of Arvicolinae (Rodentia, Cricetidae)
    E. P. Antonova
    S. N. Kalinina
    A. E. Yakimova
    V. A. Ilyukha
    Biology Bulletin, 2023, 50 : S428 - S435
  • [7] Antioxidant Defenses in Tissues of Four Species of Arvicolinae (Rodentia, Cricetidae)
    Antonova, E. P.
    Kalinina, S. N.
    Yakimova, A. E.
    Ilyukha, V. A.
    BIOLOGY BULLETIN, 2023, 50 (SUPPL 3) : S428 - S435
  • [8] CHROMOSOMAL EVOLUTION IN GENUS PEROMYSCUS (CRICETIDAE RODENTIA)
    HSU, TC
    ARRIGHI, FE
    CYTOGENETICS, 1966, 5 (05): : 355 - &
  • [9] KARYOTYPE STABILITY AND DISTRIBUTION OF REED VOLES - MICROTUS-FORTIS (RODENTIA, CRICETIDAE)
    KOVALSKAYA, YM
    MALYGIN, VM
    KARTAVTSEVA, IV
    ZOOLOGICHESKY ZHURNAL, 1988, 67 (08): : 1255 - 1259
  • [10] Complete Mitochondrial Genome of Three Species of the Genus Microtus (Arvicolinae, Rodentia)
    Lamelas, Luz
    Aleix-Mata, Gael
    Rovatsos, Michail
    Marchal, Juan Alberto
    Palomeque, Teresa
    Lorite, Pedro
    Sanchez, Antonio
    ANIMALS, 2020, 10 (11): : 1 - 16