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本文引用的文献

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Distinct Responses of the Nitrogen-Fixing Marine Cyanobacterium to a Thermally Variable Environment as a Function of Phosphorus Availability.固氮海洋蓝细菌对热可变环境的不同响应与磷可用性的关系
Front Microbiol. 2019 Jun 11;10:1282. doi: 10.3389/fmicb.2019.01282. eCollection 2019.
2
Nonlinear averaging of thermal experience predicts population growth rates in a thermally variable environment.非线性热经验平均值可预测热环境变化下的种群增长率。
Proc Biol Sci. 2018 Sep 12;285(1886):20181076. doi: 10.1098/rspb.2018.1076.
3
Environmental fluctuations accelerate molecular evolution of thermal tolerance in a marine diatom.环境波动加速了海洋硅藻耐热性的分子进化。
Nat Commun. 2018 Apr 30;9(1):1719. doi: 10.1038/s41467-018-03906-5.
4
Gradual plasticity alters population dynamics in variable environments: thermal acclimation in the green alga .逐渐的可塑性改变了多变环境中的种群动态:绿藻的热驯化。
Proc Biol Sci. 2018 Jan 10;285(1870). doi: 10.1098/rspb.2017.1942.
5
Species packing in eco-evolutionary models of seasonally fluctuating environments.季节性波动环境的生态进化模型中的物种聚集
Ecol Lett. 2017 Sep;20(9):1158-1168. doi: 10.1111/ele.12813. Epub 2017 Jul 23.
6
Microorganisms and ocean global change.微生物与海洋全球变化。
Nat Microbiol. 2017 May 25;2:17058. doi: 10.1038/nmicrobiol.2017.58.
7
Temperature increase and fluctuation induce phytoplankton biodiversity loss - Evidence from a multi-seasonal mesocosm experiment.温度升高和波动导致浮游植物生物多样性丧失——来自多季节中宇宙实验的证据。
Ecol Evol. 2017 Mar 22;7(9):2936-2946. doi: 10.1002/ece3.2889. eCollection 2017 May.
8
Temperature-nutrient interactions exacerbate sensitivity to warming in phytoplankton.温度-养分相互作用加剧了浮游植物对变暖的敏感性。
Glob Chang Biol. 2017 Aug;23(8):3269-3280. doi: 10.1111/gcb.13641. Epub 2017 Mar 6.
9
Towards a multigene phylogeny of the Cymatosiraceae (Bacillariophyta, Mediophyceae) I: novel taxa within the subfamily cymatosiroideae based on molecular and morphological data.迈向 Cymatosiraceae(硅藻门,中带藻纲)的多基因系统发育研究 I:基于分子和形态学数据的 Cymatosiroideae 亚科内的新分类群
J Phycol. 2017 Apr;53(2):342-360. doi: 10.1111/jpy.12501. Epub 2017 Feb 2.
10
Dynamics of phytoplankton communities in eutrophying tropical shrimp ponds affected by vibriosis.受弧菌病影响的热带富营养化对虾池塘中浮游植物群落的动态变化
Mar Pollut Bull. 2016 Sep 15;110(1):449-459. doi: 10.1016/j.marpolbul.2016.06.015. Epub 2016 Jun 19.

短暂暴露于新型高温环境重塑了沿海浮游植物群落。

Transient exposure to novel high temperatures reshapes coastal phytoplankton communities.

机构信息

Department of Biological Sciences, University of Southern California, Los Angeles, CA, 90007, USA.

Exobiology Branch, NASA Ames Research Center, Moffett Blvd., Mountain View, CA, 94035, USA.

出版信息

ISME J. 2020 Feb;14(2):413-424. doi: 10.1038/s41396-019-0525-6. Epub 2019 Oct 21.

DOI:10.1038/s41396-019-0525-6
PMID:31636366
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6976607/
Abstract

Average sea surface temperatures are expected to rise 4° this century, and marine phytoplankton and bacterial community composition, biogeochemical rates, and trophic interactions are all expected to change in a future warmer ocean. Thermal experiments typically use constant temperatures; however, weather and hydrography cause marine temperatures to fluctuate on diel cycles and over multiple days. We incubated natural communities of phytoplankton collected from California coastal waters during spring, summer, and fall under present-day and future mean temperatures, using thermal treatments that were either constant or fluctuated on a 48 h cycle. As assayed by marker-gene sequencing, the emergent microbial communities were consistent within each season, except when culture temperatures exceeded the highest temperature recorded in a 10-year local thermal dataset. When temperature treatments exceeded the 10-year maximum the phytoplankton community shifted, becoming dominated by diatom amplicon sequence variants (ASVs) not seen at lower temperatures. When mean temperatures were above the 10-year maximum, constant and fluctuating regimes each selected for different ASVs. These findings suggest coastal microbial communities are largely adapted to the current range of temperatures they experience. They also suggest a general hypothesis whereby multiyear upper temperature limits may represent thresholds, beyond which large community restructurings may occur. Now inevitable future temperature increases that exceed these environmental thresholds, even temporarily, may fundamentally reshape marine microbial communities and therefore the biogeochemical cycles that they mediate.

摘要

预计本世纪平均海平面温度将上升 4°C,未来温暖的海洋中,海洋浮游植物和细菌群落组成、生物地球化学速率和营养相互作用预计都将发生变化。 热实验通常使用恒定温度;然而,天气和水文条件导致海洋温度在昼夜周期和多天内波动。 我们在当今和未来的平均温度下,使用恒温或 48 小时周期波动的热处理,培养了来自加利福尼亚沿海海域的浮游植物的自然群落。 正如通过标记基因测序所测定的,除了当培养温度超过本地 10 年热数据集记录的最高温度时,每个季节的新兴微生物群落都是一致的。 当温度处理超过 10 年最高值时,浮游植物群落发生变化,优势变成了在较低温度下未观察到的硅藻扩增子序列变体 (ASV)。 当平均温度高于 10 年最高值时,恒温和波动两种处理方式分别选择了不同的 ASV。 这些发现表明,沿海微生物群落已在很大程度上适应了它们所经历的当前温度范围。 它们还提出了一个普遍假设,即多年的高温限制可能代表阈值,超过这些阈值,大型群落重组可能发生。 现在不可避免的未来温度升高,即使是暂时的,也可能从根本上重塑海洋微生物群落,从而改变它们所介导的生物地球化学循环。