Evaluation and comparison of the genetic structure of Bunias orientalis populations in their native range and two non-native ranges

被引:12
|
作者
Patamsyte, Jolanta [1 ]
Naugzemys, Donatas [1 ,2 ]
Cesniene, Tatjana [1 ]
Kleizaite, Violeta [1 ]
Demina, Olga N. [3 ]
Mikhailova, Svetlana I. [4 ]
Agafonov, Vladimir A. [5 ]
Zvingila, Donatas [1 ]
机构
[1] Vilnius Univ, Inst Biosci, Life Sci Ctr, LT-10257 Vilnius, Lithuania
[2] Vilnius Univ, Bot Garden, LT-10239 Vilnius, Lithuania
[3] Karachay Circassian State Univ, Karachaevsk 369200, Russia
[4] Natl Res Tomsk State Univ, Tomsk 634050, Russia
[5] Voronezh State Univ, Voronezh 394018, Russia
关键词
Genetic diversity; Bunias orientalis; Biological invasions; Multiple introductions; ISSR; Warty cabbage; MULTIPLE INTRODUCTIONS; INVASION HISTORY; DIVERSITY; PLANT; PATTERNS; NORTH; BRASSICACEAE; RAPD; EVOLUTION; EXPANSION;
D O I
10.1007/s11258-017-0781-3
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
We studied the invasive warty cabbage Bunias orientalis (Brassicaceae) in three geographically distinct areas. Using inter-simple sequence repeat fingerprinting, we analyzed warty cabbages, including non-native populations, from the eastern Baltic and western Siberian regions and native populations from southwestern Russia. The eastern Baltic region and western Siberia represent the two opposite directions of B. orientalis spread in climatically different zones. The genetic structures of the native and non-native B. orientalis populations were assessed through analysis of molecular variance (AMOVA) and the Bayesian clustering method and by determining the main measures of genetic diversity. AMOVA revealed considerable population differentiation in both the native and invasive ranges. Our results did not indicate a decrease in genetic diversity in the non-native populations of B. orientalis. Similar measures of genetic diversity and genetic structure were determined in the invasive populations in two geographically and ecologically distinct, non-native regions located in Europe and Asia. In both of these regions, higher genetic diversity was detected in the non-native populations than in the native region populations, which may be due to multiple introductions. However, Bayesian clustering analysis revealed slightly different sources of invasive populations in the two non-native regions. Genetic diversity patterns revealed the lack of isolation by distance between populations and confirmed the influence of anthropogenic factors on the spread of B. orientalis. The significance of native populations as germplasm resources for breeding is discussed.
引用
收藏
页码:101 / 114
页数:14
相关论文
共 50 条
  • [1] Evaluation and comparison of the genetic structure of Bunias orientalis populations in their native range and two non-native ranges
    Jolanta Patamsytė
    Donatas Naugžemys
    Tatjana Čėsnienė
    Violeta Kleizaitė
    Olga N. Demina
    Svetlana I. Mikhailova
    Vladimir A. Agafonov
    Donatas Žvingila
    Plant Ecology, 2018, 219 : 101 - 114
  • [2] NO DIFFERENCES IN GENETIC DIVERSITY OF COTONEASTER FRANCHETII (ROSACEAE) SHRUBS BETWEEN NATIVE AND NON-NATIVE RANGES
    Lett, Irene
    Hensen, Isabell
    Hirsch, Heidi
    Renison, Daniel
    BOLETIN DE LA SOCIEDAD ARGENTINA DE BOTANICA, 2015, 50 (03): : 377 - 384
  • [3] Genetic structure in native and non-native populations of the direct-developing gastropod Crepidula convexa
    Cahill, Abigail E.
    Viard, Frederique
    MARINE BIOLOGY, 2014, 161 (10) : 2433 - 2443
  • [4] Genetic diversity, population structure, and genetic relatedness of native and non-native populations of Spartina alterniflora (Poaceae, Chloridoideae)
    Guo, W.
    Qiao, S.
    Wang, Y.
    Shi, S.
    Tan, F.
    Huang, Y.
    HYDROBIOLOGIA, 2015, 745 (01) : 313 - 327
  • [5] Genetic diversity, population structure, and genetic relatedness of native and non-native populations of Spartina alterniflora (Poaceae, Chloridoideae)
    W. Guo
    S. Qiao
    Y. Wang
    S. Shi
    F. Tan
    Y. Huang
    Hydrobiologia, 2015, 745 : 313 - 327
  • [6] Genetic variation and structure in native and invasive Solidago canadensis populations
    Zhao, S. Y.
    Sun, S. G.
    Dai, C.
    Gituru, R. W.
    Chen, J. M.
    Wang, Q. F.
    WEED RESEARCH, 2015, 55 (02) : 163 - 172
  • [7] A preliminary genetic structure study of the non-native weed, common tansy (Tanacetum vulgare)
    Clasen, Benjamin M.
    Moss, Nicole G.
    Chandler, Monika A.
    Smith, Alan G.
    CANADIAN JOURNAL OF PLANT SCIENCE, 2011, 91 (04) : 717 - 723
  • [8] Native versus non-native invasions: similarities and differences in the biodiversity impacts of Pinus contorta in introduced and native ranges
    Taylor, Kimberley T.
    Maxwell, Bruce D.
    Pauchard, Anibal
    Nunez, Martin A.
    Rew, Lisa J.
    DIVERSITY AND DISTRIBUTIONS, 2016, 22 (05) : 578 - 588
  • [9] The global diversity of Deladenus siricidicola in native and non-native populations
    Fitza, Katrin N. E.
    Garnas, Jeff R.
    Lombardero, Maria J.
    Ayres, Matthew P.
    Krivak-Tetley, Flora E.
    Ahumada, Rodrigo
    Hurley, Brett P.
    Wingfield, Michael J.
    Slippers, Bernard
    BIOLOGICAL CONTROL, 2019, 132 : 57 - 65
  • [10] Population structure and genetic variance among local populations of a non-native earthworm species in Minnesota, USA
    Heimburger, Bastian
    Klein, Andreas
    Roth, Alexander
    Scheu, Stefan
    Eisenhauer, Nico
    Schaefer, Ina
    BIOLOGICAL INVASIONS, 2023, 25 (07) : 2361 - 2375