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海洋硅藻光合策略的差异

Divergence of photosynthetic strategies amongst marine diatoms.

作者信息

Fisher Nerissa L, Campbell Douglas A, Hughes David J, Kuzhiumparambil Unnikrishnan, Halsey Kimberly H, Ralph Peter J, Suggett David J

机构信息

Climate Change Cluster, University of Technology Sydney, Ultimo, New South Wales, Australia.

Department of Biology, Mount Allison University, Sackville, New Brunswick, Canada.

出版信息

PLoS One. 2020 Dec 28;15(12):e0244252. doi: 10.1371/journal.pone.0244252. eCollection 2020.

Abstract

Marine phytoplankton, and in particular diatoms, are responsible for almost half of all primary production on Earth. Diatom species thrive from polar to tropical waters and across light environments that are highly complex to relatively benign, and so have evolved highly divergent strategies for regulating light capture and utilization. It is increasingly well established that diatoms have achieved such successful ecosystem dominance by regulating excitation energy available for generating photosynthetic energy via highly flexible light harvesting strategies. However, how different light harvesting strategies and downstream pathways for oxygen production and consumption interact to balance excitation pressure remains unknown. We therefore examined the responses of three diatom taxa adapted to inherently different light climates (estuarine Thalassioisira weissflogii, coastal Thalassiosira pseudonana and oceanic Thalassiosira oceanica) during transient shifts from a moderate to high growth irradiance (85 to 1200 μmol photons m-2 s-1). Transient high light exposure caused T. weissflogii to rapidly downregulate PSII with substantial nonphotochemical quenching, protecting PSII from inactivation or damage, and obviating the need for induction of O2 consuming (light-dependent respiration, LDR) pathways. In contrast, T. oceanica retained high excitation pressure on PSII, but with little change in RCII photochemical turnover, thereby requiring moderate repair activity and greater reliance on LDR. T. pseudonana exhibited an intermediate response compared to the other two diatom species, exhibiting some downregulation and inactivation of PSII, but high repair of PSII and induction of reversible PSII nonphotochemical quenching, with some LDR. Together, these data demonstrate a range of strategies for balancing light harvesting and utilization across diatom species, which reflect their adaptation to sustain photosynthesis under environments with inherently different light regimes.

摘要

海洋浮游植物,尤其是硅藻,贡献了地球上近一半的初级生产。硅藻物种在从极地到热带的水域以及从高度复杂到相对温和的光照环境中都能蓬勃生长,因此进化出了高度不同的调节光捕获和利用的策略。越来越多的确凿证据表明,硅藻通过高度灵活的光捕获策略调节用于产生光合能量的激发能,从而在生态系统中占据了如此成功的主导地位。然而,不同的光捕获策略以及下游的氧气产生和消耗途径如何相互作用以平衡激发压力仍然未知。因此,我们研究了三种适应本质上不同光照环境的硅藻分类群(河口的威氏海链藻、沿海的假微型海链藻和大洋的海洋海链藻)在从适度生长光照强度到高生长光照强度(85至1200 μmol光子·m⁻²·s⁻¹)的瞬态变化过程中的反应。瞬态高光暴露导致威氏海链藻通过大量的非光化学猝灭迅速下调PSII,保护PSII不被失活或损坏,并且无需诱导消耗氧气的(光依赖呼吸,LDR)途径。相比之下,海洋海链藻在PSII上保留了高激发压力,但RCII光化学周转变化不大,因此需要适度的修复活性并更依赖LDR。与其他两种硅藻物种相比,假微型海链藻表现出中间反应,表现出PSII的一些下调和失活,但PSII的修复率高且诱导可逆的PSII非光化学猝灭,并伴有一些LDR。总之,这些数据证明了一系列硅藻物种平衡光捕获和利用的策略,这反映了它们在本质上不同光照条件的环境下维持光合作用的适应性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a484/7769462/800487c8973a/pone.0244252.g001.jpg

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