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黑腹果蝇的近亲繁殖与热适应性

Inbreeding and thermal adaptation in Drosophila subobscura.

作者信息

Zivanovic Goran, Arenas Conxita, Mestres Francesc

机构信息

a Department of Genetics, Institute for Biological Research "Sinisa Stankovic", University of Belgrade, Belgrade, Serbia.

出版信息

Genome. 2014 Sep;57(9):481-8. doi: 10.1139/gen-2014-0149. Epub 2014 Dec 10.

DOI:10.1139/gen-2014-0149
PMID:25580722
Abstract

Using a well-adapted Drosophila subobscura population (Avala, Serbia), a drastic experiment of inbreeding was carried out to assess whether the expected level of homozygosity could be reached or if other evolutionary forces affected the process. In general, no significant changes of inversion (or arrangement) frequencies were detected after 12 brother-sister mating generations. Furthermore, no significant differences were obtained between observed and expected (under the inbreeding model) karyotypic frequencies. Thus, these results seemed to indicate that the main evolutionary factor in the experiment was inbreeding. However, in the G12 generation, complete chromosomal fixation was reached only in two out of the eight final inbred lines. In these lines, the chromosomal compositions were difficult to interpret, but they could be likely a consequence of adaptation to particular laboratory conditions (constant 18 °C, food, light period, etc.). Finally, in a second experiment, the inbred lines presented higher fertility at 18 °C than at 13 °C. Also, there was a significant line effect on fertility: inbred line number 6 (A1, J1, U1+2; U1+2+6, E8, and O3+4+7) presented the highest values, which maybe the result of an adaptation to laboratory conditions. Thus, the results obtained in our experiments reflect the adaptive potential of D. subobscura inversions.

摘要

利用一个适应良好的果蝇(Drosophila subobscura)种群(塞尔维亚的阿瓦拉),进行了一项激烈的近亲繁殖实验,以评估是否能达到预期的纯合度水平,或者是否有其他进化力量影响这一过程。总体而言,在经过12代亲兄妹交配后,未检测到倒位(或排列)频率有显著变化。此外,观察到的核型频率与预期的(在近亲繁殖模型下)核型频率之间没有显著差异。因此,这些结果似乎表明实验中的主要进化因素是近亲繁殖。然而,在第12代,8个最终近交系中只有2个达到了完全的染色体固定。在这些品系中,染色体组成难以解释,但它们很可能是适应特定实验室条件(恒定18°C、食物、光照周期等)的结果。最后,在第二个实验中,近交系在18°C时的繁殖力高于13°C时。此外,繁殖力存在显著的品系效应:近交系6(A1、J1、U1+2;U1+2+6、E8和O3+4+7)表现出最高值,这可能是适应实验室条件的结果。因此,我们实验中获得的结果反映了果蝇(D. subobscura)倒位的适应潜力。

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引用本文的文献

1
Adaptation of Drosophila subobscura chromosomal inversions to climatic variables: the Balkan natural population of Avala.黑腹果蝇染色体倒位对气候变量的适应:阿瓦拉的巴尔干自然种群。
Genetica. 2021 Jun;149(3):155-169. doi: 10.1007/s10709-021-00125-7. Epub 2021 Jun 15.
2
Rate of change for the thermal adapted inversions in Drosophila subobscura.果蝇(Drosophila subobscura)中热适应性倒位的变化率。
Genetica. 2019 Dec;147(5-6):401-409. doi: 10.1007/s10709-019-00078-y. Epub 2019 Oct 17.
3
Climatic adaptation of chromosomal inversions in Drosophila subobscura.
果蝇(Drosophila subobscura)染色体倒位的气候适应性
Genetica. 2018 Oct;146(4-5):433-441. doi: 10.1007/s10709-018-0035-x. Epub 2018 Aug 27.