Ikeuchi Masahiro, Uebayashi Nozomu, Sato Fumihiko, Endo Tsuyoshi
Division of Integrated Life Sciences, Graduate School of Biostudies, Kyoto University, Kyoto, 606-8502, Japan.
Division of Integrated Life Sciences, Graduate School of Biostudies, Kyoto University, Kyoto, 606-8502, Japan
Plant Cell Physiol. 2014 Jul;55(7):1286-95. doi: 10.1093/pcp/pcu069. Epub 2014 May 20.
The PsbS protein plays an important role in dissipating excess light energy as heat in photosystem II (PSII). However, the physiological importance of PsbS under naturally fluctuating light has not been quantitatively estimated. Here we investigated energy allocation in PSII in PsbS-suppressed rice transformants (ΔpsbS) under both naturally fluctuating and constant light conditions. Under constant light, PsbS was essential for inducing the rapid formation of light-inducible thermal dissipation (Φ(NPQ)), which consequently suppressed the rapid formation of basal intrinsic decay (Φ(f,D)), while the quantum yield of electron transport (Φ(II)) did not change. In the steady state phase, the difference between the wild type (WT) and ΔpsbS was minimized. Under regularly fluctuating light, the reduced PsbS resulted in higher Φ(II) upon the transition from high light to low light and in lower Φ(II) upon the transition from low light to high light, indicating that Φ(II) was, to some extent, controlled by PsbS. Under naturally fluctuating light in a greenhouse, rapid changes in Φ(II) were compensated by Φ(NPQ) in the WT, but by Φ(f,D) in ΔpsbS. As a consequence, a significantly lower ΣNPQ integrated Φ(NPQ) over a whole day) and higher Σf,D were found in ΔpsbS. Furthermore, thermal dissipation associated with photoinhibtion was enhanced in ΔpsbS. These results suggest that PsbS plays an important role in photoprotective process at the induction phase of photosynthesis as well as under field conditions. The physiological relevance of PsbS as a photoprotection mechanism and the identities of Φ(NPQ) and Φ(f,D) are discussed.
PsbS蛋白在将光系统II(PSII)中多余的光能以热的形式耗散方面发挥着重要作用。然而,在自然波动光照条件下PsbS的生理重要性尚未得到定量评估。在此,我们研究了在自然波动光照和恒定光照条件下,PsbS抑制型水稻转基因植株(ΔpsbS)中PSII的能量分配情况。在恒定光照下,PsbS对于诱导光诱导热耗散(Φ(NPQ))的快速形成至关重要,这进而抑制了基础固有衰减(Φ(f,D))的快速形成,而电子传递量子产率(Φ(II))没有变化。在稳态阶段,野生型(WT)和ΔpsbS之间的差异最小化。在有规律的波动光照下,PsbS减少导致从高光过渡到低光时Φ(II)升高,而从低光过渡到高光时Φ(II)降低,这表明Φ(II)在一定程度上受PsbS控制。在温室中的自然波动光照下,WT中Φ(II)的快速变化由Φ(NPQ)补偿,而ΔpsbS中则由Φ(f,D)补偿。结果,在ΔpsbS中发现全天积分的显著更低的ΣNPQ(累计Φ(NPQ))和更高的Σf,D。此外,ΔpsbS中与光抑制相关的热耗散增强。这些结果表明,PsbS在光合作用诱导阶段以及田间条件下的光保护过程中发挥着重要作用。文中讨论了PsbS作为光保护机制的生理相关性以及Φ(NPQ)和Φ(f,D)的特性。