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滞育期间熊蜂蜂王的代谢率抑制和飞行肌代谢能力的维持。

Metabolic Rate Suppression and Maintenance of Flight Muscle Metabolic Capacity during Diapause in Bumble Bee () Queens.

出版信息

Ecol Evol Physiol. 2024 May-Jun;97(3):144-156. doi: 10.1086/730587. Epub 2024 May 1.

Abstract

AbstractThe common eastern bumble bee () queens endure cold winter months by entering a diapause state. During this overwintering period, these animals use stored energy reserves while maintaining a low metabolic rate. This study investigates changes in the metabolic rate of bumble bee queens during diapause-like laboratory conditions and the potential reorganization of the flight muscle metabolic properties during this period. We first confirmed the hypometabolic state of queens during diapause in the laboratory, which lowered their resting metabolic rate to less than 5% of normal resting values. Body mass decreased during diapause, body composition changed where carbohydrates decreased initially, and later protein declined, with a similar trend for lipid content. Using cellular respirometry, we determined the capacity of the flight muscle cells of bumble bee queens to use various metabolic fuels and whether this capacity changes during the progression of diapause to favor stored lipid-derived substrates. Queens showed a low capacity to oxidize the amino acid proline, compared with workers, and their capacity to oxidize all metabolic substrates did not change during a 4-mo diapause period in the laboratory. We also show no detectable ability to oxidize fatty acid by flight muscle mitochondria in this species. The metabolic properties of flight muscle tissue were further characterized using metabolic enzyme activity profiles showing little change during diapause, indicating that profound metabolic suppression is induced without major changes in muscle metabolic phenotypes. Overall, queens undergo diapause while maintaining flight muscle capacity under the conditions used.

摘要

摘要 常见的东方大黄蜂()蜂王通过进入滞育状态来度过寒冷的冬季。在这个越冬期间,这些动物利用储存的能量储备,同时保持低代谢率。本研究调查了大黄蜂蜂王在类似滞育的实验室条件下代谢率的变化,以及在此期间飞行肌肉代谢特性可能发生的重组。我们首先在实验室中证实了蜂王在滞育期间的低代谢状态,这将它们的静息代谢率降低到正常静息值的 5%以下。蜂王在滞育期间体重下降,身体成分发生变化,碳水化合物最初减少,随后蛋白质减少,脂质含量也呈相似趋势。使用细胞呼吸测定法,我们确定了大黄蜂蜂王飞行肌肉细胞利用各种代谢燃料的能力,以及这种能力在滞育过程中的变化是否有利于储存的脂类衍生底物。与工蜂相比,蜂王氧化氨基酸脯氨酸的能力较低,并且在实验室中进行 4 个月的滞育期间,它们氧化所有代谢底物的能力没有变化。我们还表明,在该物种中,飞行肌肉线粒体没有检测到氧化脂肪酸的能力。通过代谢酶活性谱进一步表征飞行肌肉组织的代谢特性,发现滞育期间几乎没有变化,这表明在没有肌肉代谢表型发生重大变化的情况下,诱导了深刻的代谢抑制。总体而言,在使用的条件下,蜂王在维持飞行肌肉能力的同时经历滞育。

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