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环境变化与越冬有关,这会引起温带鲑鱼(Salvelinus fontinalis)明显的代谢可塑性。

Environmental variation associated with overwintering elicits marked metabolic plasticity in a temperate salmonid, Salvelinus fontinalis.

机构信息

Department of Biological Sciences, University of New Brunswick, Saint John, Canada, E2K 5E2.

Département de Biologie, Université de Moncton, Moncton, Canada, E1A 3E9.

出版信息

J Exp Biol. 2024 Feb 1;227(3). doi: 10.1242/jeb.246743. Epub 2024 Feb 12.

Abstract

Poleward winters commonly expose animals, including fish, to frigid temperatures and low food availability. Fishes that remain active over winter must therefore balance trade-offs between conserving energy and maintaining physiological performance in the cold, yet the extent and underlying mechanisms of these trade-offs are not well understood. We investigated the metabolic plasticity of brook char (Salvelinus fontinalis), a temperate salmonid, from the biochemical to whole-animal level in response to cold and food deprivation. Acute cooling (1°C day-1) from 14°C to 2°C had no effect on food consumption but reduced activity by 77%. We then assessed metabolic performance and demand over 90 days with exposure to warm (8°C) or cold winter (2°C) temperatures while fish were fed or starved. Resting metabolic rate (RMR) decreased substantially during initial cooling from 8°C to 2°C (Q10=4.2-4.5) but brook char exhibited remarkable thermal compensation during acclimation (Q10=1.4-1.6). Conversely, RMR was substantially lower (40-48%) in starved fish, conserving energy. Thus, the absolute magnitude of thermal plasticity may be masked or modified under food restriction. This reduction in RMR was associated with atrophy and decreases in in vivo protein synthesis rates, primarily in non-essential tissues. Remarkably, food deprivation had no effect on maximum oxygen uptake rates and thus aerobic capacity, supporting the notion that metabolic capacity can be decoupled from RMR in certain contexts. Overall, our study highlights the multi-faceted energetic flexibility of Salvelinus spp. that likely contributes to their success in harsh and variable environments and may be emblematic of winter-active fishes more broadly.

摘要

极地的冬季通常会使动物(包括鱼类)暴露在严寒和食物匮乏的环境中。因此,那些在冬季仍保持活跃的鱼类必须在节约能量和在寒冷中维持生理性能之间做出权衡,但这些权衡的程度和潜在机制尚不清楚。我们从生物化学水平到整体动物水平研究了冷水性鲑科鱼类——溪红点鲑(Salvelinus fontinalis)对寒冷和食物剥夺的代谢可塑性。从 14°C 急性冷却(1°C/day)至 2°C 不会影响食物摄取量,但会使活动量减少 77%。然后,我们在 8°C 或 2°C 的温暖或寒冷冬季温度下,评估了摄食和饥饿的鱼在 90 天内的代谢性能和需求。当从 8°C 冷却至 2°C 时,静止代谢率(RMR)大幅下降(Q10=4.2-4.5),但溪红点鲑在适应过程中表现出显著的热补偿(Q10=1.4-1.6)。相反,饥饿的鱼的 RMR 会大幅降低(40-48%),从而节约能量。因此,在食物限制下,热可塑性的绝对幅度可能被掩盖或改变。RMR 的降低与萎缩和体内蛋白质合成率的降低有关,主要发生在非必需组织中。值得注意的是,食物剥夺对最大耗氧量没有影响,因此不会影响有氧能力,这支持了在某些情况下代谢能力可以与 RMR 分离的观点。总体而言,我们的研究强调了鲑科鱼类多方面的能量灵活性,这可能有助于它们在恶劣和多变的环境中取得成功,并且可能是更广泛的冬季活跃鱼类的代表。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e282/10911287/363965aada23/jexbio-227-246743-g1.jpg

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