Division of Environmental Photobiology, National Institute for Basic Biology, Okazaki 444-8585, Japan.
Proc Natl Acad Sci U S A. 2013 Jun 11;110(24):10016-21. doi: 10.1073/pnas.1222606110. Epub 2013 May 28.
Plants and green algae have a low pH-inducible mechanism in photosystem II (PSII) that dissipates excess light energy, measured as the nonphotochemical quenching of chlorophyll fluorescence (qE). Recently, nonphotochemical quenching 4 (npq4), a mutant strain of the green alga Chlamydomonas reinhardtii that is qE-deficient and lacks the light-harvesting complex stress-related protein 3 (LHCSR3), was reported [Peers G, et al. (2009) Nature 462(7272):518-521]. Here, applying a newly established procedure, we isolated the PSII supercomplex and its associated light-harvesting proteins from both WT C. reinhardtii and the npq4 mutant grown in either low light (LL) or high light (HL). LHCSR3 was present in the PSII supercomplex from the HL-grown WT, but not in the supercomplex from the LL-grown WT or mutant. The purified PSII supercomplex containing LHCSR3 exhibited a normal fluorescence lifetime at a neutral pH (7.5) by single-photon counting analysis, but a significantly shorter lifetime at pH 5.5, which mimics the acidified lumen of the thylakoid membranes in HL-exposed chloroplasts. The switch from light-harvesting mode to energy-dissipating mode observed in the LHCSR3-containing PSII supercomplex was sensitive to dicyclohexylcarbodiimide, a protein-modifying agent specific to protonatable amino acid residues. We conclude that the PSII-LHCII-LHCSR3 supercomplex formed in the HL-grown C. reinhardtii cells is capable of energy dissipation on protonation of LHCSR3.
植物和绿藻在光系统 II (PSII)中有一个低 pH 诱导机制,用于耗散多余的光能,这可以通过叶绿素荧光的非光化学猝灭 (qE)来衡量。最近,一种绿藻衣藻的突变株 npq4,它缺乏光捕获复合物应激相关蛋白 3 (LHCSR3),因此 qE 缺失,被报道 [Peers G, 等人。(2009) 自然 462(7272):518-521]。在这里,应用一种新建立的程序,我们从在低光 (LL)或高光 (HL)下生长的 WT 衣藻和 npq4 突变体中分离出 PSII 超复合体及其相关的光捕获蛋白。在 HL 生长的 WT 的 PSII 超复合体中存在 LHCSR3,但在 LL 生长的 WT 或突变体的超复合体中不存在。通过单光子计数分析,含有 LHCSR3 的纯化 PSII 超复合体在中性 pH(7.5)下表现出正常的荧光寿命,但在 pH 5.5 下寿命明显缩短,这模拟了暴露在高光下的叶绿体类囊体膜酸化的腔室。在含有 LHCSR3 的 PSII 超复合体中观察到的从光捕获模式到能量耗散模式的转变对二环己基碳化二亚胺敏感,二环己基碳化二亚胺是一种针对可质子化氨基酸残基的蛋白质修饰剂。我们得出结论,在 HL 生长的衣藻细胞中形成的 PSII-LHCII-LHCSR3 超复合体能够在 LHCSR3 质子化时耗散能量。