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宿主交配系统和共同进化动态塑造了秀丽隐杆线虫宿主种群中寄生虫回避行为的进化。

Host mating system and coevolutionary dynamics shape the evolution of parasite avoidance in Caenorhabditis elegans host populations.

作者信息

Penley McKenna J, Morran Levi T

机构信息

Department of Biology,Emory University,1510 Clifton Rd, Atlanta, Georgia 30322,USA.

出版信息

Parasitology. 2018 May;145(6):724-730. doi: 10.1017/S0031182017000804. Epub 2017 Jun 28.

DOI:10.1017/S0031182017000804
PMID:28655368
Abstract

Hosts exhibit a variety of defence mechanisms against parasites, including avoidance. Both host-parasite coevolutionary dynamics and the host mating system can alter the evolutionary trajectories of populations. Does the nature of host-parasite interactions and the host mating system affect the mechanisms that evolve to confer host defence? In a previous experimental evolution study, mixed mating and obligately outcrossing Caenorhabditis elegans host populations adapted to either coevolving or static Serratia marcescens parasite populations. Here, we assessed parasite avoidance as a mechanism underlying host adaptation. We measured host feeding preference for the coevolved and static parasites vs preference for Escherichia coli, to assess the evolution of avoidance behaviour within our experiment. We found that mixed mating host populations evolved a preference for E. coli relative to the static parasite strain; therefore, the hosts evolved parasite avoidance as a defence. However, mixed mating hosts did not exhibit E. coli preference when exposed to coevolved parasites, so avoidance cannot account for host adaptation to coevolving parasites. Further, the obligately outcrossing host populations did not exhibit parasite avoidance in the presence of either static or coevolved parasites. Therefore, both the nature of host-parasite interactions and the host mating system shaped the evolution of host defence.

摘要

宿主表现出多种针对寄生虫的防御机制,包括回避。宿主 - 寄生虫的共同进化动态以及宿主交配系统都可以改变种群的进化轨迹。宿主 - 寄生虫相互作用的性质和宿主交配系统是否会影响为赋予宿主防御能力而进化出的机制?在之前的一项实验进化研究中,混合交配和专性异交的秀丽隐杆线虫宿主种群适应了共同进化或静态的粘质沙雷氏菌寄生虫种群。在这里,我们评估了寄生虫回避作为宿主适应基础的一种机制。我们测量了宿主对共同进化和静态寄生虫的取食偏好与对大肠杆菌的偏好,以评估我们实验中回避行为的进化。我们发现,相对于静态寄生虫菌株,混合交配的宿主种群进化出了对大肠杆菌的偏好;因此,宿主进化出寄生虫回避作为一种防御机制。然而,当暴露于共同进化的寄生虫时,混合交配的宿主并未表现出对大肠杆菌的偏好,所以回避不能解释宿主对共同进化寄生虫的适应。此外,专性异交的宿主种群在存在静态或共同进化的寄生虫时都未表现出寄生虫回避行为。因此,宿主 - 寄生虫相互作用的性质和宿主交配系统都塑造了宿主防御的进化。

相似文献

1
Host mating system and coevolutionary dynamics shape the evolution of parasite avoidance in Caenorhabditis elegans host populations.宿主交配系统和共同进化动态塑造了秀丽隐杆线虫宿主种群中寄生虫回避行为的进化。
Parasitology. 2018 May;145(6):724-730. doi: 10.1017/S0031182017000804. Epub 2017 Jun 28.
2
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PLoS One. 2017 Aug 9;12(8):e0181913. doi: 10.1371/journal.pone.0181913. eCollection 2017.
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Running with the Red Queen: host-parasite coevolution selects for biparental sex.与红皇后一起奔跑:宿主-寄生虫协同进化选择了双亲性。
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No measurable fitness cost to experimentally evolved host defence in the Caenorhabditis elegans-Serratia marcescens host-parasite system.在秀丽隐杆线虫-粘质沙雷氏菌的宿主-寄生虫系统中,实验进化的宿主防御没有可衡量的适应性代价。
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Sex differences in host defence interfere with parasite-mediated selection for outcrossing during host-parasite coevolution.宿主防御中的性别差异会干扰寄生虫介导的为杂交而进行的选择,这在宿主-寄生虫的共同进化过程中发生。
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