Assessing Genetic Diversity and Population Structure of Western Honey Bees in the Czech Republic Using 22 Microsatellite Loci

被引:0
|
作者
Knoll, Ales [1 ]
Sotek, Martin [1 ]
Prouza, Jan [2 ]
Langova, Lucie [1 ]
Pridal, Antonin [2 ]
Urban, Tomas [1 ]
机构
[1] Mendel Univ Brno, Fac AgriSci, Dept Anim Morphol Physiol & Genet, Zemedelska 1, Brno 61300, Czech Republic
[2] Mendel Univ Brno, Fac AgriSci, Dept Anim Breeding, Zemedelska 1, Brno 61300, Czech Republic
关键词
<italic>Apis mellifera</italic>; population genetics; Central Europe; sampling method; genetic group; district; MELLIFERA; SOFTWARE; CONSERVATION; CLUSTERS; NUMBER;
D O I
10.3390/insects16010055
中图分类号
Q96 [昆虫学];
学科分类号
摘要
To date, no study has been conducted to investigate the diversity in honeybee populations of Apis mellifera in the Czech Republic. Between 2022 and 2023, worker bees were collected from colonies distributed throughout the Czech Republic in 77 districts, and their genetic differences were examined using 22 microsatellite loci. The samples were obtained from hives (n = 3647) and through the process of capture on flowers (n = 553). Genetic diversity parameters were assessed for both populations in all 77 districts. The findings demonstrated that honeybee populations exhibit moderate genetic diversity, as evidenced by the number of observed alleles, the Shannon index, and heterozygosity values. There was no discrepancy in diversity between hive and flower samples. Diversity characteristics were determined: mean observed heterozygosity 0.55 (hives) and 0.56 (flowers), and fixation index 0.58 for both populations. The average number of alleles per locus was 13.77 and 11.18 from hives and flowers, respectively. The low FST and FIS values (they measured the level of genetic differentiation between populations and the level of inbreeding, respectively) suggest the absence or minimal genetic diversity within and among studied populations. The genetic variation was calculated as 2% and 1% between populations, 8% and 6% between individuals within populations, and 91% and 93% between all individuals in samples from hives and flowers, respectively. Cluster and DAPC (discriminant analysis principal component) analysis classified the bee samples collected from across the country into three and five to six distinguishable groups, respectively. The honeybee population in the Czech Republic displays sufficient diversity and a partial structure. However, there appears to be no correlation between the genetic groups and the geographic regions to which they are assigned.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Genetic diversity and population structure of two subspecies of western honey bees (Apis mellifera L.) in the Republic of South Africa as revealed by microsatellite genotyping
    Eimanifar, Amin
    Pieplow, Johanna T.
    Asem, Alireza
    Ellis, James D.
    PEERJ, 2020, 8
  • [2] Novel microsatellite loci reveal high genetic diversity yet low population structure for alfalfa leafcutting bees in North America
    Strange, James P.
    Delaney, Deborah A.
    Tarpy, David R.
    James, Rosalind R.
    CONSERVATION GENETICS, 2017, 18 (03) : 679 - 687
  • [3] Estimating genetic diversity and population structure of 22 chicken breeds in Asia using microsatellite markers
    Roh, Hee-Jong
    Kim, Seung-Chang
    Cho, Chang-Yeon
    Lee, Jinwook
    Jeon, Dayeon
    Kim, Dong-kyo
    Kim, Kwan-Woo
    Afrin, Fahmida
    Ko, Yeoung-Gyu
    Lee, Jun-Heon
    Batsaikhan, Solongo
    Susanti, Triana
    Hegay, Sergey
    Kongvongxay, Siton
    Gorkhali, Neena Amatya
    Lan Anh Nguyen Thi
    Trinh Thi Thu Thao
    Manikku, Lakmalie
    ASIAN-AUSTRALASIAN JOURNAL OF ANIMAL SCIENCES, 2020, 33 (12): : 1896 - 1904
  • [4] Novel microsatellite loci reveal high genetic diversity yet low population structure for alfalfa leafcutting bees in North America
    James P. Strange
    Deborah A. Delaney
    David R. Tarpy
    Rosalind R. James
    Conservation Genetics, 2017, 18 : 679 - 687
  • [5] Genetic diversity and population structure of Garcinia paucinervis, an endangered species using microsatellite markers
    Zhang, Jun-Jie
    Wei, Xiao
    Chai, Sheng-Feng
    Wang, Zheng-Feng
    Akunne, Theophine
    Wu, Shao-Hua
    Yi, Jun-Hong
    Wei, Ji-Qing
    Chen, Zong-You
    CONSERVATION GENETICS, 2019, 20 (04) : 837 - 849
  • [6] Genetic Diversity and Population Structure of Rhodeus uyekii in the Republic of Korea Revealed by Microsatellite Markers from Whole Genome Assembly
    Kim, Kang-Rae
    Park, So Young
    Jeong, Ju Hui
    Hwang, Yujin
    Kim, Heesoo
    Sung, Mu-Sung
    Yu, Jeong-Nam
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2024, 25 (12)
  • [7] Assessing genetic diversity and population structure in a Dipteryx alata germplasm collection utilizing microsatellite markers
    Guimaraes, Rejane Araujo
    Correa Miranda, Kassia Marques
    Silva Mota, Elias Emanuel
    Chaves, Lazaro Jose
    de Campos Telles, Mariana Pires
    Soares, Thannya Nascimento
    CROP BREEDING AND APPLIED BIOTECHNOLOGY, 2019, 19 (03): : 329 - 336
  • [8] Genetic diversity and structure of Quercus variabilis populations in the Republic of Korea based on microsatellite markers
    Ahn, Ji-Young
    Hong, Kyung-Nak
    Lim, Hyo-In
    JOURNAL OF FOREST RESEARCH, 2023, 28 (05) : 353 - 363
  • [9] ASSESSING CHEATGRASS (BROMUS TECTORUM) GENETIC DIVERSITY AND POPULATION STRUCTURE USING RAPD AND MICROSATELLITE MOLECULAR MARKERS
    Ashley, Michael C.
    Longland, William S.
    WESTERN NORTH AMERICAN NATURALIST, 2009, 69 (01) : 63 - 74
  • [10] Population Structure and Genetic Diversity of Sporothrix globosa in China According to 10 Novel Microsatellite Loci
    Gong, Jie
    Zhang, Mingrui
    Wang, Yu
    Li, Ruoyu
    He, Lihua
    Wan, Zhe
    Li, Fuqiu
    Zhang, Jianzhong
    JOURNAL OF MEDICAL MICROBIOLOGY, 2019, 68 (02) : 248 - 254