Cantrell Michael, Ware Maxwell A, Peers Graham
Department of Biology, Colorado State University, Fort Collins, CO, USA.
Photosynth Res. 2023 Oct;158(1):23-39. doi: 10.1007/s11120-023-01037-7. Epub 2023 Jul 24.
Rapid fluctuations in the quantity and quality of natural light expose photosynthetic organisms to conditions when the capacity to utilize absorbed quanta is insufficient. These conditions can result in the production of reactive oxygen species and photooxidative damage. Non-photochemical quenching (NPQ) and alternative electron transport are the two most prominent mechanisms which synergistically function to minimize the overreduction of photosystems. In the green alga Chlamydomonas reinhardtii, the stress-related light-harvesting complex (LHCSR) is a required component for the rapid induction and relaxation of NPQ in the light-harvesting antenna. Here, we use simultaneous chlorophyll fluorescence and oxygen exchange measurements to characterize the acclimation of the Chlamydomonas LHCSR-less mutant (npq4lhcsr1) to saturating light conditions. We demonstrate that, in the absence of NPQ, Chlamydomonas does not acclimate to sinusoidal light through increased light-dependent oxygen consumption. We also show that the npq4lhcsr1 mutant has an increased sink capacity downstream of PSI and this energy flow is likely facilitated by cyclic electron transport. Furthermore, we show that the timing of additions of mitochondrial inhibitors has a major influence on plastid/mitochondrial coupling experiments.
自然光在数量和质量上的快速波动,使光合生物面临吸收量子的能力不足的情况。这些情况会导致活性氧的产生和光氧化损伤。非光化学猝灭(NPQ)和交替电子传递是两种最突出的机制,它们协同作用以尽量减少光系统的过度还原。在绿藻莱茵衣藻中,与应激相关的捕光复合体(LHCSR)是在捕光天线中快速诱导和缓解NPQ所必需的成分。在此,我们使用同步叶绿素荧光和氧交换测量来表征莱茵衣藻无LHCSR突变体(npq4lhcsr1)对饱和光照条件的适应性。我们证明,在没有NPQ的情况下,莱茵衣藻不会通过增加光依赖的氧消耗来适应正弦光。我们还表明,npq4lhcsr1突变体在PSI下游具有增加的汇能力,并且这种能量流可能由循环电子传递促进。此外,我们表明添加线粒体抑制剂的时间对质体/线粒体偶联实验有重大影响。