孔雀鱼绕行学习和空间识别过程中相对端脑大小的人工选择无性别特异性影响

IF 2.1 3区 农林科学 Q2 FISHERIES Fishes Pub Date : 2023-10-26 DOI:10.3390/fishes8110536
Annika Boussard, Stephanie Edlund, Stephanie Fong, David Wheatcroft, Niclas Kolm
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引用次数: 0

摘要

近几十年来,大量的研究集中在鱼类的认知进化上,以增加我们对鱼类存在的巨大认知能力多样性进化的理解。认知进化的一个重要但未被充分研究的方面是认知能力的两性二态性。脑区域形态的性别特异性变异被认为是这方面的一个重要机制。然而,在行为和认知上发现性别特异性的差异,而在大脑形态上却没有相关的性别差异,这也是很常见的。端脑是脊椎动物大脑的主要认知中枢,端脑大小的变化与认知能力的变化有关。在这里,我们利用最近开发的具有相对端脑大小约10%差异的孔雀鱼人工选择系来研究对该区域大小选择的相似反应是否会影响雄性和雌性的认知能力差异。为此,我们比较了两个与生态学相关的认知方面,绕行学习和二元空间辨别。我们测试了端脑大小和性别之间相互作用的重要性,我们发现端脑大小的进化增加在认知能力测试中没有性别特异性的影响。本研究表明,端脑大小的快速选择没有明显的认知性别特异性效应。我们建议未来对鱼类认知能力性别二态性的研究可以使用各种认知测试和检查端脑亚区,以获得对其进化的更全面的了解。
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No Sex-Specific Effects of Artificial Selection for Relative Telencephalon Size during Detour Learning and Spatial Discrimination in Guppies (Poecilia reticulata)
Over recent decades, substantial research has focused on fish cognitive evolution to increase our understanding of the evolution of the enormous diversity of cognitive abilities that exists in fishes. One important but understudied aspect of cognitive evolution is sexual dimorphism in cognitive abilities. Sex-specific variation in brain region morphology has been proposed to be an important mechanism in this context. However, it is also common to find sex-specific variation in behavior and cognition without associated differences in brain morphology among the sexes. The telencephalon is the major cognitive center in the vertebrate brain and variation in telencephalon size has been associated with variation in cognition. Here, we utilize recently developed guppy artificial selection lines with ca. 10% differences in relative telencephalon size to investigate whether similar responses to selection of the size of this region may affect cognitive abilities differently in males and females. To that end, we compared two ecologically relevant aspects of cognition, detour learning and binary spatial discrimination. We tested the significance of the interaction between telencephalon size and sex, and we found no sex-specific effects of evolutionary increases in telencephalon size in the cognitive abilities tested. This study indicates that no clear cognitive sex-specific effects occur in response to rapid selection of telencephalon size. We suggest that future research on sexual dimorphism in cognitive abilities in fish could use various cognitive tests and examine telencephalic sub-regions to gain a more comprehensive understanding of their evolution.
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来源期刊
Fishes
Fishes Multiple-
CiteScore
1.90
自引率
8.70%
发文量
311
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