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具有自交不亲和和自交亲和种群的二种华木莲的遗传多样性和结构。

Genetic diversity and structure in two species of Leavenworthia with self-incompatible and self-compatible populations.

机构信息

Department of Genetics, University of Georgia, Athens, GA, USA.

出版信息

Heredity (Edinb). 2011 Feb;106(2):310-8. doi: 10.1038/hdy.2010.59. Epub 2010 May 19.

Abstract

Self-fertilization is a common mating system in plants and is known to reduce genetic diversity, increase genetic structure and potentially put populations at greater risk of extinction. In this study, we measured the genetic diversity and structure of two cedar glade endemic species, Leavenworthia alabamica and L. crassa. These species have self-incompatible (SI) and self-compatible (SC) populations and are therefore ideal for understanding how the mating system affects genetic diversity and structure. We found that L. alabamica and L. crassa had high species-level genetic diversity (H(e)=0.229 and 0.183, respectively) and high genetic structure among their populations (F(ST)=0.45 and 0.36, respectively), but that mean genetic diversity was significantly lower in SC compared with SI populations (SC vs SI, H(e) for L. alabamica was 0.065 vs 0.206 and for L. crassa was 0.084 vs 0.189). We also found significant genetic structure using maximum-likelihood clustering methods. These data indicate that the loss of SI leads to the loss of genetic diversity within populations. In addition, we examined genetic distance relationships between SI and SC populations to analyze possible population history and origins of self-compatibility. We find there may have been multiple origins of self-compatibility in L. alabamica and L. crassa. However, further work is required to test this hypothesis. Finally, given their high genetic structure and that individual populations harbor unique alleles, conservation strategies seeking to maximize species-level genetic diversity for these or similar species should protect multiple populations.

摘要

自交是植物中一种常见的交配系统,已知它会降低遗传多样性、增加遗传结构,并可能使种群面临更大的灭绝风险。在这项研究中,我们测量了两种崖柏特有种,即 Leavenworthia alabamica 和 L. crassa 的遗传多样性和结构。这两个物种具有自交不亲和(SI)和自交亲和(SC)种群,因此非常适合了解交配系统如何影响遗传多样性和结构。我们发现,L. alabamica 和 L. crassa 具有高的物种水平遗传多样性(H(e)分别为 0.229 和 0.183)和种群间的高遗传结构(F(ST)分别为 0.45 和 0.36),但与 SI 种群相比,SC 种群的平均遗传多样性显著较低(SC 与 SI 相比,L. alabamica 的 H(e)为 0.065 对 0.206,L. crassa 的 H(e)为 0.084 对 0.189)。我们还使用最大似然聚类方法发现了显著的遗传结构。这些数据表明,SI 的丧失导致了种群内遗传多样性的丧失。此外,我们还检查了 SI 和 SC 种群之间的遗传距离关系,以分析可能的种群历史和自交的起源。我们发现,L. alabamica 和 L. crassa 中可能存在多次自交的起源。然而,需要进一步的工作来验证这一假设。最后,鉴于它们具有较高的遗传结构,并且单个种群拥有独特的等位基因,为了最大限度地提高这些或类似物种的物种水平遗传多样性,保护策略应保护多个种群。

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本文引用的文献

1
QUANTITATIVE GENETICS IN PLANTS: THE EFFECT OF THE BREEDING SYSTEM ON GENETIC VARIABILITY.
Evolution. 1995 Oct;49(5):911-920. doi: 10.1111/j.1558-5646.1995.tb02326.x.
2
THE EVOLUTION OF AUTOGAMY IN SPECIES OF THE MUSTARD GENUS LEAVENWORTHIA.
Evolution. 1977 Jun;31(2):265-281. doi: 10.1111/j.1558-5646.1977.tb01007.x.
3
BREEDING SYSTEM AND GENETIC VARIATION IN LEAVENWORTHIA.
Evolution. 1972 Mar;26(1):155-160. doi: 10.1111/j.1558-5646.1972.tb00182.x.
4
The genetical structure of populations.
Ann Eugen. 1951 Mar;15(4):323-54. doi: 10.1111/j.1469-1809.1949.tb02451.x.
5
GenAlEx 6.5: genetic analysis in Excel. Population genetic software for teaching and research--an update.
Bioinformatics. 2012 Oct 1;28(19):2537-9. doi: 10.1093/bioinformatics/bts460. Epub 2012 Jul 20.
8
genepop'007: a complete re-implementation of the genepop software for Windows and Linux.
Mol Ecol Resour. 2008 Jan;8(1):103-6. doi: 10.1111/j.1471-8286.2007.01931.x.
9
Does mate limitation in self-incompatible species promote the evolution of selfing? The case of Leavenworthia alabamica.
Evolution. 2010 Jun;64(6):1657-70. doi: 10.1111/j.1558-5646.2009.00925.x. Epub 2009 Dec 10.
10

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