Westwick Rebecca R, Rittschof Clare C
Department of Entomology, University of Kentucky, Lexington, KY, United States.
Front Behav Neurosci. 2021 Apr 21;15:660464. doi: 10.3389/fnbeh.2021.660464. eCollection 2021.
Early-life experiences have strong and long-lasting consequences for behavior in a surprising diversity of animals. Determining which environmental inputs cause behavioral change, how this information becomes neurobiologically encoded, and the functional consequences of these changes remain fundamental puzzles relevant to diverse fields from evolutionary biology to the health sciences. Here we explore how insects provide unique opportunities for comparative study of developmental behavioral plasticity. Insects have sophisticated behavior and cognitive abilities, and they are frequently studied in their natural environments, which provides an ecological and adaptive perspective that is often more limited in lab-based vertebrate models. A range of cues, from relatively simple cues like temperature to complex social information, influence insect behavior. This variety provides experimentally tractable opportunities to study diverse neural plasticity mechanisms. Insects also have a wide range of neurodevelopmental trajectories while sharing many developmental plasticity mechanisms with vertebrates. In addition, some insects retain only subsets of their juvenile neuronal population in adulthood, narrowing the targets for detailed study of cellular plasticity mechanisms. Insects and vertebrates share many of the same knowledge gaps pertaining to developmental behavioral plasticity. Combined with the extensive study of insect behavior under natural conditions and their experimental tractability, insect systems may be uniquely qualified to address some of the biggest unanswered questions in this field.
早期生活经历对种类惊人的动物的行为有着强烈且持久的影响。确定哪些环境输入会导致行为变化、这些信息如何在神经生物学上进行编码以及这些变化的功能后果,仍然是从进化生物学到健康科学等不同领域的基本难题。在这里,我们探讨昆虫如何为发育行为可塑性的比较研究提供独特的机会。昆虫具有复杂的行为和认知能力,并且它们经常在自然环境中被研究,这提供了一种生态和适应性视角,而这在基于实验室的脊椎动物模型中往往较为有限。一系列线索,从相对简单的线索如温度到复杂的社会信息,都会影响昆虫的行为。这种多样性为研究不同的神经可塑性机制提供了易于实验操作的机会。昆虫还具有广泛的神经发育轨迹,同时与脊椎动物共享许多发育可塑性机制。此外,一些昆虫在成年后仅保留其幼年神经元群体的一部分,从而缩小了细胞可塑性机制详细研究的目标范围。昆虫和脊椎动物在发育行为可塑性方面存在许多相同的知识空白。结合在自然条件下对昆虫行为的广泛研究及其实验易操作性,昆虫系统可能特别适合解决该领域一些最大的未解决问题。