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利用生态代谢理论估算棘鱼宿主和寄生虫的能量通量大小及敏感性。

Estimating the magnitude and sensitivity of energy fluxes for stickleback hosts and parasites using the metabolic theory of ecology.

作者信息

Claar Danielle C, Faiad Sara M, Mastick Natalie C, Welicky Rachel L, Williams Maureen A, Sasser Kristofer T, Weber Jesse N, Wood Chelsea L

机构信息

Washington State Department of Natural Resources Olympia Washington USA.

School of Aquatic and Fishery Sciences University of Washington Seattle Washington USA.

出版信息

Ecol Evol. 2023 Dec 3;13(12):e10755. doi: 10.1002/ece3.10755. eCollection 2023 Dec.

Abstract

Parasites are ubiquitous, yet their effects on hosts are difficult to quantify and generalize across ecosystems. One promising metric of parasitic impact uses the metabolic theory of ecology (MTE) to calculate energy flux, an estimate of energy lost to parasites. We investigated the feasibility of using metabolic scaling rules to compare the energetic burden of parasitism among individuals. Specifically, we found substantial sensitivity of energy flux estimates to input parameters used in the MTE equation when using available data from a model host-parasite system ( and ). Using literature values, size data from parasitized wild fish, and a respirometry experiment, we estimate that a single tapeworm may extract up to 32% of its stickleback host's baseline metabolic energy requirement, and that parasites in multiple infections may collectively extract up to 46%. The amount of energy siphoned from stickleback to tapeworms is large but did not instigate an increase in respiration rate in the current study. This emphasizes the importance of future work focusing on how parasites influence ecosystem energetics. The approach of using the MTE to calculate energy flux provides great promise as a quantitative foundation for such estimates and provides a more concrete metric of parasite impact on hosts than parasite abundance alone.

摘要

寄生虫无处不在,然而它们对宿主的影响却难以量化,也难以在不同生态系统中进行概括。一种很有前景的衡量寄生影响的指标运用生态代谢理论(MTE)来计算能量通量,即对寄生虫所消耗能量的一种估计。我们研究了使用代谢标度律来比较个体间寄生能量负担的可行性。具体而言,当使用来自一个模型宿主 - 寄生虫系统的现有数据时,我们发现能量通量估计值对MTE方程中使用的输入参数非常敏感。利用文献数据、被寄生野生鱼类的大小数据以及一项呼吸测定实验,我们估计,一条单殖吸虫可能摄取其棘背鱼宿主基础代谢能量需求的高达32%,而多重感染中的寄生虫可能总共摄取高达46%。在当前研究中,从棘背鱼转移到吸虫的能量量很大,但并未促使呼吸速率增加。这凸显了未来研究聚焦于寄生虫如何影响生态系统能量学的重要性。使用MTE计算能量通量的方法为这类估计提供了作为定量基础的巨大前景,并且比仅靠寄生虫丰度提供了更具体的衡量寄生虫对宿主影响的指标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9291/10694383/f6a18a0f5d71/ECE3-13-e10755-g004.jpg

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