光防护
莱茵衣藻
非光化学猝灭
猝灭(荧光)
超快激光光谱学
生物物理学
衣原体
光合作用
类囊体
光化学
飞秒
化学
叶绿素荧光
荧光
电子传输链
叶绿体
生物
物理
生物化学
光谱学
光学
突变体
激光器
量子力学
基因
作者
Mengyuan Zheng,Xiaojie Pang,Ming Chen,Lijin Tian
标识
DOI:10.1038/s41467-024-48789-x
摘要
Abstract Photosynthetic organisms have evolved an essential energy-dependent quenching (qE) mechanism to avoid any lethal damages caused by high light. While the triggering mechanism of qE has been well addressed, candidates for quenchers are often debated. This lack of understanding is because of the tremendous difficulty in measuring intact cells using transient absorption techniques. Here, we have conducted femtosecond pump-probe measurements to characterize this photophysical reaction using micro-sized cell fractions of the green alga Chlamydomonas reinhardtii that retain physiological qE function. Combined with kinetic modeling, we have demonstrated the presence of an ultrafast excitation energy transfer (EET) pathway from Chlorophyll a (Chl a) Q y to a carotenoid (car) S 1 state, therefore proposing that this carotenoid, likely lutein1, is the quencher. This work has provided an easy-to-prepare qE active thylakoid membrane system for advanced spectroscopic studies and demonstrated that the energy dissipation pathway of qE is evolutionarily conserved from green algae to land plants.
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