Institute of Biophysics and Biomedical Engineering, Bulgarian Academy of Sciences, Acad. G. Bonchev Str., Bl. 21, 1113, Sofia, Bulgaria.
Institute of Plant Biology, Biological Research Center, Hungarian Academy of Sciences, Temesvári krt. 62, Szeged, 6726, Hungary.
Photosynth Res. 2018 Jul;137(1):95-104. doi: 10.1007/s11120-018-0481-4. Epub 2018 Jan 10.
Phycobilisomes (PBSs) are supramolecular pigment-protein complexes that serve as light-harvesting antennae in cyanobacteria. They are built up by phycobiliproteins assembled into allophycocyanin core cylinders (ensuring the physical interaction with the photosystems) and phycocyanin rods (protruding from the cores and having light-harvesting function), the whole PBSs structure being maintained by linker proteins. PBSs play major role in light-harvesting optimization in cyanobacteria; therefore, the characterization of their structural integrity in intact cells is of great importance. The present study utilizes differential scanning calorimetry and spectroscopy techniques to explore for the first time, the thermodynamic stability of PBSs in intact Synechocystis sp. PCC 6803 cells and to probe its alteration as a result of mutations or under different growth conditions. As a first step, we characterize the thermodynamic behavior of intact and dismantled PBSs isolated from wild-type cells (having fully assembled PBSs) and from CK mutant cells (that lack phycocyanin rods and contain only allophycocyanin cores), and identified the thermal transitions of phycocyanin and allophycocyanin units in vitro. Next, we demonstrate that in intact cells PBSs exhibit sharp, high amplitude thermal transition at about 63 °C that strongly depends on the structural integrity of the PBSs supercomplex. Our findings implicate that calorimetry could offer a valuable approach for the assessment of the influence of variety of factors affecting the stability and structural organization of phycobilisomes in intact cyanobacterial cells.
藻胆体(PBS)是超分子色素-蛋白复合物,在蓝细菌中作为光收集天线。它们由藻胆蛋白组装而成,形成藻蓝蛋白核心圆柱(确保与光系统的物理相互作用)和藻红蛋白棒(从核心突出并具有光收集功能),整个 PBS 结构由连接蛋白维持。PBS 在蓝细菌中的光收集优化中起着重要作用;因此,表征其完整细胞中结构完整性非常重要。本研究首次利用差示扫描量热法和光谱技术,探讨了完整的 Synechocystis sp. PCC 6803 细胞中 PBS 的热力学稳定性,并研究了其由于突变或不同生长条件而发生的变化。作为第一步,我们从野生型细胞(具有完全组装的 PBS)和 CK 突变细胞(缺乏藻红蛋白棒,仅含有藻蓝蛋白核心)中分离出完整和拆解的 PBS,表征其热力学行为,并鉴定了体外藻蓝蛋白和藻红蛋白单元的热转变。接下来,我们证明在完整细胞中 PBS 表现出约 63°C 的尖锐、高振幅热转变,这强烈依赖于 PBS 超复合物的结构完整性。我们的发现表明,量热法可以为评估各种因素对完整蓝细菌细胞中藻胆体稳定性和结构组织的影响提供有价值的方法。