In vivo hyperspectral confocal fluorescence imaging to determine pigment localization and distribution in cyanobacterial cells

别藻蓝蛋白 类囊体 光系统II 荧光 联合囊肿 藻蓝蛋白 生物物理学 光系统I 叶绿素 藻胆体 荧光寿命成像显微镜 叶绿素荧光 生物 化学 光化学 光合作用 叶绿体 蓝藻 植物 生物化学 突变体 光学 物理 遗传学 细菌 基因
作者
Wim Vermaas,Jerilyn A. Timlin,Howland D. T. Jones,Michael B. Sinclair,Linda T. Nieman,Sawsan W. Hamad,David K. Melgaard,David M. Haaland
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [Proceedings of the National Academy of Sciences]
卷期号:105 (10): 4050-4055 被引量:172
标识
DOI:10.1073/pnas.0708090105
摘要

Hyperspectral confocal fluorescence imaging provides the opportunity to obtain individual fluorescence emission spectra in small (≈0.03-μm 3 ) volumes. Using multivariate curve resolution, individual fluorescence components can be resolved, and their intensities can be calculated. Here we localize, in vivo , photosynthesis-related pigments (chlorophylls, phycobilins, and carotenoids) in wild-type and mutant cells of the cyanobacterium Synechocystis sp. PCC 6803. Cells were excited at 488 nm, exciting primarily phycobilins and carotenoids. Fluorescence from phycocyanin, allophycocyanin, allophycocyanin-B/terminal emitter, and chlorophyll a was resolved. Moreover, resonance-enhanced Raman signals and very weak fluorescence from carotenoids were observed. Phycobilin emission was most intense along the periphery of the cell whereas chlorophyll fluorescence was distributed more evenly throughout the cell, suggesting that fluorescing phycobilisomes are more prevalent along the outer thylakoids. Carotenoids were prevalent in the cell wall and also were present in thylakoids. Two chlorophyll fluorescence components were resolved: the short-wavelength component originates primarily from photosystem II and is most intense near the periphery of the cell; and the long-wavelength component that is attributed to photosystem I because it disappears in mutants lacking this photosystem is of higher relative intensity toward the inner rings of the thylakoids. Together, the results suggest compositional heterogeneity between thylakoid rings, with the inner thylakoids enriched in photosystem I. In cells depleted in chlorophyll, the amount of both chlorophyll emission components was decreased, confirming the accuracy of the spectral assignments. These results show that hyperspectral fluorescence imaging can provide unique information regarding pigment organization and localization in the cell.

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