Context-dependent coordination of movement in Tribolium castaneum larvae.

IF 2.8 2区 生物学 Q2 BIOLOGY
Journal of Experimental Biology Pub Date : 2025-04-01 Epub Date: 2025-04-10 DOI:10.1242/jeb.250015
Bella Xu Ying, Maarten F Zwart, Stefan R Pulver
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Abstract

Insect pests such as the red flour beetle (Tribolium castaneum) destroy up to 20% of stored grain products worldwide, making them a significant threat to food security. Their success hinges upon adapting their movements to unpredictable, heterogeneous environments like flour. Tribolium is well developed as a genetic model system; however, little is known about its natural locomotion and how its nervous system coordinates adaptive movement. Here, we employed videographic whole-animal and leg tracking to assess how Tribolium larvae locomote over different substrates and analyse their gait kinematics across speeds. Unlike many hexapods, larvae employed a bilaterally symmetric, posterior-to-anterior wave gait during fast locomotion. At slower speeds, coordination within thoracic segments was disrupted, although intersegmental coordination remained intact. Moreover, larvae used terminal abdominal structures (pygopods) to support challenging movements, such as climbing overhangs. Pygopod placement coincided with leg swing initiation, suggesting a stabilising role as adaptive anchoring devices. Surgically lesioning the connective between thoracic and abdominal ganglia impaired pygopod engagement and led to escalating impairments in flat-terrain locomotion, climbing and tunnelling. These results suggest that effective movement in Tribolium larvae requires thoracic-abdominal coordination, and that larval gait and limb recruitment is context dependent. Our work provides the first kinematic analysis of Tribolium larval locomotion and gives insights into its neural control, creating a foundation for future motor control research in a genetically tractable beetle that jeopardises global food security.

斑蝥幼虫运动的环境依赖协调。
红粉甲虫(Tribolium castaneum)等害虫破坏了全世界20%的储存粮食产品,对粮食安全构成重大威胁。它们的成功取决于使它们的动作适应不可预测的、异质的环境,比如面粉。Tribolium是一个发育良好的遗传模式系统;然而,人们对它们的自然运动以及它们的神经系统如何协调适应性运动知之甚少。在这里,我们采用全动物录像和腿部跟踪来评估Tribolium幼虫如何在不同的基质上运动,并分析它们在不同速度下的步态运动学。与许多六足动物不同,幼虫在快速运动时采用双侧对称的后向前波步态。在较慢的速度下,胸节段内的协调被破坏,尽管节段间的协调保持完整。此外,幼虫利用腹部末端结构(腹足)来支持具有挑战性的运动,如攀爬悬垂。尾足的放置与腿的摆动一致,表明其作为自适应锚定装置的稳定作用。手术损伤胸腹神经节之间的结缔组织损害了腹足部的连接,并导致平地运动、攀爬和隧道挖掘的损伤加剧。这些结果表明,Tribolium幼虫的有效运动需要胸腹协调,并且幼虫的步态和肢体招募依赖于环境。我们的工作首次提供了Tribolium幼虫运动的运动学分析,并提供了对其神经控制的见解,为未来对危害全球粮食安全的遗传易感甲虫的运动控制研究奠定了基础。
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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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