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UV-A 辐射通过增强可食用蓝细菌中的能量流动和碳同化来增加生物量产量。

UV-A radiation increases biomass yield by enhancing energy flow and carbon assimilation in the edible cyanobacterium .

机构信息

Hubei Key Laboratory of Edible Wild Plants Conservation and Utilization, Hubei Normal University, Huangshi, Hubei, China.

Hubei Key Laboratory of Quality and Safety of Traditional Chinese Medicine Health Food, Jing Brand Co., Ltd., Daye, Hubei, China.

出版信息

Appl Environ Microbiol. 2024 Mar 20;90(3):e0211023. doi: 10.1128/aem.02110-23. Epub 2024 Feb 23.

Abstract

Ultraviolet (UV) A radiation (315-400 nm) is the predominant component of solar UV radiation that reaches the Earth's surface. However, the underlying mechanisms of the positive effects of UV-A on photosynthetic organisms have not yet been elucidated. In this study, we investigated the effects of UV-A radiation on the growth, photosynthetic ability, and metabolome of the edible cyanobacterium . Exposures to 5-15 W m (15-46 µmol photons m s) UV-A and 4.35 W m (20 μmol photons m s) visible light for 16 days significantly increased the growth rate and biomass production of cells by 18%-30% and 15%-56%, respectively, compared to the non-UV-A-acclimated cells. Additionally, the UV-A-acclimated cells exhibited a 1.8-fold increase in the cellular nicotinamide adenine dinucleotide phosphate (NADP) pool with an increase in photosynthetic capacity (58%), photosynthetic efficiency (24%), re-oxidation, photosystem I abundance, and cyclic electron flow (87%), which further led to an increase in light-induced NADPH generation (31%) and ATP content (83%). Moreover, the UV-A-acclimated cells showed a 2.3-fold increase in ribulose-1,5-bisphosphate carboxylase/oxygenase activity, indicating an increase in their carbon-fixing capacity. Gas chromatography-mass spectrometry-based metabolomics further revealed that UV-A radiation upregulated the energy-storing carbon metabolism, as evidenced by the enhanced accumulation of sugars, fatty acids, and citrate in the UV-A-acclimated cells. Therefore, our results demonstrate that UV-A radiation enhances energy flow and carbon assimilation in the cyanobacterium .IMPORTANCEUltraviolet (UV) radiation exerts harmful effects on photo-autotrophs; however, several studies demonstrated the positive effects of UV radiation, especially UV-A radiation (315-400 nm), on primary productivity. Therefore, understanding the underlying mechanisms associated with the promotive effects of UV-A radiation on primary productivity can facilitate the application of UV-A for CO sequestration and lead to the advancement of photobiological sciences. In this study, we used the cyanobacterium , which has an over 1,700-year history of human use as food and medicine, to explore its photosynthetic acclimation response to UV-A radiation. As per our knowledge, this is the first study to demonstrate that UV-A radiation increases the biomass yield of by enhancing energy flow and carbon assimilation. Our findings provide novel insights into UV-A-mediated photosynthetic acclimation and provide a scientific basis for the application of UV-A radiation for optimizing light absorption capacity and enhancing CO sequestration in the frame of a future CO neutral, circular, and sustainable bioeconomy.

摘要

紫外线 (UV) A 辐射 (315-400nm) 是到达地球表面的太阳 UV 辐射的主要成分。然而,UV-A 对光合作用生物体的积极影响的潜在机制尚未阐明。在这项研究中,我们研究了 UV-A 辐射对可食用蓝细菌 的生长、光合作用能力和代谢组的影响。与未适应 UV-A 的细胞相比,暴露于 5-15 W m (15-46µmol 光子 m s) UV-A 和 4.35 W m (20µmol 光子 m s) 可见光 16 天可分别将 细胞的生长率和生物量增加 18%-30%和 15%-56%。此外,UV-A 适应的细胞表现出细胞烟酰胺腺嘌呤二核苷酸磷酸 (NADP) 池增加 1.8 倍,同时光合作用能力 (58%)、光合作用效率 (24%)、 再氧化、光系统 I 丰度和循环电子流 (87%)增加,从而导致光诱导的 NADPH 生成 (31%)和 ATP 含量 (83%)增加。此外,UV-A 适应的细胞的核酮糖-1,5-二磷酸羧化酶/加氧酶活性增加了 2.3 倍,表明其固定碳的能力增强。基于气相色谱-质谱的代谢组学进一步表明,UV-A 辐射上调了储能碳代谢,这表现为适应 UV-A 的细胞中糖、脂肪酸和柠檬酸的积累增加。因此,我们的结果表明,UV-A 辐射增强了蓝细菌 的能量流动和碳同化。重要性紫外线 (UV) 辐射对光自养生物有有害影响;然而,一些研究表明 UV 辐射,尤其是 UV-A 辐射 (315-400nm),对初级生产力有积极影响。因此,了解与 UV-A 辐射对初级生产力的促进作用相关的潜在机制可以促进 UV-A 在 CO 封存方面的应用,并推动光生物学科学的发展。在这项研究中,我们使用了蓝细菌 ,它作为食物和药物已有 1700 多年的历史,来探索其对 UV-A 辐射的光合作用适应反应。据我们所知,这是第一项表明 UV-A 辐射通过增强能量流动和碳同化来增加 生物量的研究。我们的研究结果为 UV-A 介导的光合作用适应提供了新的见解,并为应用 UV-A 辐射优化光吸收能力和增强未来 CO 中性、循环和可持续生物经济中的 CO 封存提供了科学依据。

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