一种两栖动物病原体游动孢子的热驯化试验。

IF 1.1 4区 农林科学 Q3 FISHERIES Diseases of aquatic organisms Pub Date : 2024-12-12 DOI:10.3354/dao03828
Hunter M Craig, Rima A Stepanian, Kyle D Spengler, Karie A Altman, Jason P Sckrabulis, Thomas R Raffel
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引用次数: 0

摘要

热驯化对宏观生物运动性能的影响已被广泛记载,但这种反应在微生物中仍未被广泛探索。生态学代谢理论(MTE)预测较小生物的反应速度更快,这对宿主-寄生虫在可变温度环境中的相互作用有潜在的影响。研究了热驯化对两栖类真菌病原体水蛭壶菌(Batrachochytrium dendroatidis, Bd)游动孢子的影响,量化了(1)最大游动孢子速度的热性能和(2)50% (CT50max)或100% (CT100max)固定游动孢子所需的高温。我们在温度变化后的18分钟内获得了测量结果。我们发现驯化对最大游动孢子速度和CT50max有显著的曲线效应,尽管后者可能是由游动孢子密度混杂驱动的。我们还观察到试验开始温度对CT50max有显著的积极影响,这与在~1-6分钟的时间尺度上对开始温度的快速驯化反应是一致的(即太快了,我们的实验驯化处理无法检测到),这意味着游动孢子要么具有本构耐热性(即没有驯化),要么在~10分钟内使CTmax完全适应新的温度。为了探索这种快速反应的可行性,我们分析了已发表的宏观真核生物的CTmax驯化时间,结果表明,当大规模放大到Bd虫孢子的大小时,预测的四分位数范围为3.11-25.98分钟。综上所述,这些结果表明,在MTE预测的快速时间尺度上,Bd游动孢子确实表现出热驯化反应,这可能使Bd在变温环境中比适应较慢的宿主具有优势。
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Testing for thermal acclimation in zoospores of an amphibian pathogen.

Thermal acclimation effects on locomotory performance have been widely documented for macroscopic organisms, but such responses remain largely unexplored in microorganisms. Metabolic theory of ecology (MTE) predicts faster responses in smaller organisms, with potential consequences for host-parasite interactions in variable temperature environments. We investigated thermal acclimation effects on zoospores of the amphibian fungal pathogen Batrachochytrium dendrobatidis (Bd), quantifying (1) thermal performance for maximum zoospore velocity and (2) high temperatures needed to immobilize 50% (CT50max) or 100% (CT100max) of zoospores. We obtained measurements within 18 min following a temperature shift. We found significant curvilinear acclimation effects on maximum zoospore velocity and CT50max, although the latter pattern might have been driven by confoundment with zoospore density. We also observed a significant positive effect of the trial start temperature on CT50max, consistent with a rapid acclimation response to the start temperature on a time scale of ~1-6 min (i.e. too rapid for our experimental acclimation treatments to detect), implying that zoospores either have constitutive heat tolerance (i.e. no acclimation) or fully acclimate CTmax to new temperatures within ~10 min. To explore the plausibility of such a rapid response, we analyzed published CTmax acclimation times for macroscopic eukaryotes, resulting in a predicted interquartile range of 3.11-25.98 min when mass-scaled to the size of a Bd zoospore. Taken together, these results suggest that Bd zoospores do exhibit thermal acclimation response on the rapid time scale predicted by MTE, possibly giving Bd an advantage over slower-acclimating hosts in variable-temperature environments.

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来源期刊
Diseases of aquatic organisms
Diseases of aquatic organisms 农林科学-兽医学
CiteScore
3.10
自引率
0.00%
发文量
53
审稿时长
8-16 weeks
期刊介绍: DAO publishes Research Articles, Reviews, and Notes, as well as Comments/Reply Comments (for details see DAO 48:161), Theme Sections and Opinion Pieces. For details consult the Guidelines for Authors. Papers may cover all forms of life - animals, plants and microorganisms - in marine, limnetic and brackish habitats. DAO''s scope includes any research focusing on diseases in aquatic organisms, specifically: -Diseases caused by coexisting organisms, e.g. viruses, bacteria, fungi, protistans, metazoans; characterization of pathogens -Diseases caused by abiotic factors (critical intensities of environmental properties, including pollution)- Diseases due to internal circumstances (innate, idiopathic, genetic)- Diseases due to proliferative disorders (neoplasms)- Disease diagnosis, treatment and prevention- Molecular aspects of diseases- Nutritional disorders- Stress and physical injuries- Epidemiology/epizootiology- Parasitology- Toxicology- Diseases of aquatic organisms affecting human health and well-being (with the focus on the aquatic organism)- Diseases as indicators of humanity''s detrimental impact on nature- Genomics, proteomics and metabolomics of disease- Immunology and disease prevention- Animal welfare- Zoonosis
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