Velikova Violeta, Müller Constanze, Ghirardo Andrea, Rock Theresa Maria, Aichler Michaela, Walch Axel, Schmitt-Kopplin Philippe, Schnitzler Jörg-Peter
Institute of Plant Physiology and Genetics, Bulgarian Academy of Sciences, Sofia 1113, Bulgaria (V.V.); andResearch Unit Analytical BioGeoChemistry (C.M., T.M.R., P.S.-K.), Research Unit Environmental Simulation, Institute of Biochemical Plant Pathology (V.V., A.G., J.-P.S.), and Research Unit Analytical Pathology (M.A., A.W.), Helmholtz Zentrum München, 85764 Neuherberg, Germany.
Institute of Plant Physiology and Genetics, Bulgarian Academy of Sciences, Sofia 1113, Bulgaria (V.V.); andResearch Unit Analytical BioGeoChemistry (C.M., T.M.R., P.S.-K.), Research Unit Environmental Simulation, Institute of Biochemical Plant Pathology (V.V., A.G., J.-P.S.), and Research Unit Analytical Pathology (M.A., A.W.), Helmholtz Zentrum München, 85764 Neuherberg, Germany
Plant Physiol. 2015 Jul;168(3):859-70. doi: 10.1104/pp.15.00612. Epub 2015 May 14.
Isoprene is a small lipophilic molecule with important functions in plant protection against abiotic stresses. Here, we studied the lipid composition of thylakoid membranes and chloroplast ultrastructure in isoprene-emitting (IE) and nonisoprene-emitting (NE) poplar (Populus × canescens). We demonstrated that the total amount of monogalactosyldiacylglycerols, digalactosyldiacylglycerols, phospholipids, and fatty acids is reduced in chloroplasts when isoprene biosynthesis is blocked. A significantly lower amount of unsaturated fatty acids, particularly linolenic acid in NE chloroplasts, was associated with the reduced fluidity of thylakoid membranes, which in turn negatively affects photosystem II photochemical efficiency. The low photosystem II photochemical efficiency in NE plants was negatively correlated with nonphotochemical quenching and the energy-dependent component of nonphotochemical quenching. Transmission electron microscopy revealed alterations in the chloroplast ultrastructure in NE compared with IE plants. NE chloroplasts were more rounded and contained fewer grana stacks and longer stroma thylakoids, more plastoglobules, and larger associative zones between chloroplasts and mitochondria. These results strongly support the idea that in IE species, the function of this molecule is closely associated with the structural organization and functioning of plastidic membranes.
异戊二烯是一种亲脂性小分子,在植物抵御非生物胁迫中具有重要功能。在此,我们研究了异戊二烯释放型(IE)和非异戊二烯释放型(NE)杨树(Populus × canescens)类囊体膜的脂质组成和叶绿体超微结构。我们证明,当异戊二烯生物合成受阻时,叶绿体中单半乳糖基二酰基甘油、双半乳糖基二酰基甘油、磷脂和脂肪酸的总量会减少。NE叶绿体中不饱和脂肪酸,尤其是亚麻酸的含量显著降低,这与类囊体膜流动性降低有关,进而对光系统II的光化学效率产生负面影响。NE植物中低光系统II光化学效率与非光化学猝灭以及非光化学猝灭的能量依赖成分呈负相关。透射电子显微镜显示,与IE植物相比,NE植物的叶绿体超微结构发生了改变。NE叶绿体更圆,基粒堆叠更少,基质类囊体更长,质体小球更多,叶绿体与线粒体之间的结合区域更大。这些结果有力地支持了这样一种观点,即在IE物种中,该分子的功能与质体膜的结构组织和功能密切相关。