Grewe Sabrina, Ballottari Matteo, Alcocer Marcelo, D'Andrea Cosimo, Blifernez-Klassen Olga, Hankamer Ben, Mussgnug Jan H, Bassi Roberto, Kruse Olaf
Algae Biotechnology and Bioenergy Group, Department of Biology, Center for Biotechnology, Bielefeld University, D-33615 Bielefeld, Germany.
Dipartimento di Biotecnologie, Università di Verona, I-37134 Verona, Italy.
Plant Cell. 2014 Apr;26(4):1598-1611. doi: 10.1105/tpc.114.124198. Epub 2014 Apr 4.
Photosynthetic organisms developed multiple strategies for balancing light-harvesting versus intracellular energy utilization to survive ever-changing environmental conditions. The light-harvesting complex (LHC) protein family is of paramount importance for this function and can form light-harvesting pigment protein complexes. In this work, we describe detailed analyses of the photosystem II (PSII) LHC protein LHCBM9 of the microalga Chlamydomonas reinhardtii in terms of expression kinetics, localization, and function. In contrast to most LHC members described before, LHCBM9 expression was determined to be very low during standard cell cultivation but strongly increased as a response to specific stress conditions, e.g., when nutrient availability was limited. LHCBM9 was localized as part of PSII supercomplexes but was not found in association with photosystem I complexes. Knockdown cell lines with 50 to 70% reduced amounts of LHCBM9 showed reduced photosynthetic activity upon illumination and severe perturbation of hydrogen production activity. Functional analysis, performed on isolated PSII supercomplexes and recombinant LHCBM9 proteins, demonstrated that presence of LHCBM9 resulted in faster chlorophyll fluorescence decay and reduced production of singlet oxygen, indicating upgraded photoprotection. We conclude that LHCBM9 has a special role within the family of LHCII proteins and serves an important protective function during stress conditions by promoting efficient light energy dissipation and stabilizing PSII supercomplexes.
光合生物发展出多种策略来平衡光捕获与细胞内能量利用,以在不断变化的环境条件下生存。光捕获复合体(LHC)蛋白家族对于此功能至关重要,并且可以形成光捕获色素蛋白复合体。在这项工作中,我们从表达动力学、定位和功能方面详细分析了微藻莱茵衣藻的光系统II(PSII)LHC蛋白LHCBM9。与之前描述的大多数LHC成员不同,LHCBM9在标准细胞培养过程中的表达被确定为非常低,但作为对特定应激条件的响应,例如当营养物质可用性受到限制时,其表达会强烈增加。LHCBM9定位于PSII超复合体的一部分,但未发现与光系统I复合体相关联。LHCBM9含量降低50%至70%的敲低细胞系在光照下显示出光合活性降低以及产氢活性受到严重干扰。对分离的PSII超复合体和重组LHCBM9蛋白进行的功能分析表明,LHCBM9的存在导致叶绿素荧光衰减更快,单线态氧的产生减少,表明光保护作用增强。我们得出结论,LHCBM9在LHCII蛋白家族中具有特殊作用,并通过促进有效的光能耗散和稳定PSII超复合体在应激条件下发挥重要的保护功能。