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滞育蝴蝶蛹大脑中感觉结构的特异发育:对信息处理的影响

Idiosyncratic development of sensory structures in brains of diapausing butterfly pupae: implications for information processing.

作者信息

Lehmann Philipp, Nylin Sören, Gotthard Karl, Carlsson Mikael A

机构信息

Department of Zoology, Stockholm University, SE-106 91 Stockholm, Sweden.

Bolin Centre for Climate Research, Stockholm University, SE-106 91 Stockholm, Sweden.

出版信息

Proc Biol Sci. 2017 Jul 12;284(1858). doi: 10.1098/rspb.2017.0897.

Abstract

Diapause is an important escape mechanism from seasonal stress in many insects. A certain minimum amount of time in diapause is generally needed in order for it to terminate. The mechanisms of time-keeping in diapause are poorly understood, but it can be hypothesized that a well-developed neural system is required. However, because neural tissue is metabolically costly to maintain, there might exist conflicting selective pressures on overall brain development during diapause, on the one hand to save energy and on the other hand to provide reliable information processing during diapause. We performed the first ever investigation of neural development during diapause and non-diapause (direct) development in pupae of the butterfly from a population whose diapause duration is known. The brain grew in size similarly in pupae of both pathways up to 3 days after pupation, when development in the diapause brain was arrested. While development in the brain of direct pupae continued steadily after this point, no further development occurred during diapause until temperatures increased far after diapause termination. Interestingly, sensory structures related to vision were remarkably well developed in pupae from both pathways, in contrast with neuropils related to olfaction, which only developed in direct pupae. The results suggest that a well-developed visual system might be important for normal diapause development.

摘要

滞育是许多昆虫应对季节性压力的一种重要逃避机制。通常需要在滞育状态下经历一定的最短时间才能使其终止。人们对滞育中的计时机制了解甚少,但可以推测需要一个发育良好的神经系统。然而,由于维持神经组织的代谢成本很高,在滞育期间,整体大脑发育可能存在相互冲突的选择压力,一方面要节省能量,另一方面要在滞育期间提供可靠的信息处理。我们首次对已知滞育持续时间的种群中蝴蝶蛹在滞育和非滞育(直接)发育过程中的神经发育进行了研究。在化蛹后的3天内,两种发育途径的蛹脑中大小增长相似,之后滞育蛹脑的发育停止。在此之后,直接发育的蛹脑继续稳步发育,而在滞育期间,直到滞育结束后温度大幅升高之前,不再有进一步发育。有趣的是,与视觉相关的感觉结构在两种发育途径的蛹中都发育得非常好,而与嗅觉相关的神经纤维网只在直接发育的蛹中发育。结果表明,发育良好的视觉系统可能对正常的滞育发育很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/afb2/5524504/32ac965de438/rspb20170897-g1.jpg

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