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  4. Molecular Architecture of Plant Thylakoids under Physiological and Light Stress Conditions: A Study of Lipid-Light-Harvesting Complex II Model Membranes
 
research article

Molecular Architecture of Plant Thylakoids under Physiological and Light Stress Conditions: A Study of Lipid-Light-Harvesting Complex II Model Membranes

Janik, Ewa
•
Bednarska, Joanna
•
Zubik, Monika
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2013
The Plant Cell

In this study, we analyzed multibilayer lipid-protein membranes composed of the photosynthetic light-harvesting complex II (LHCII; isolated from spinach [Spinacia oleracea]) and the plant lipids monogalcatosyldiacylglycerol and digalactosyldiacylglycerol. Two types of pigment-protein complexes were analyzed: those isolated from dark-adapted leaves (LHCII) and those from leaves preilluminated with high-intensity light (LHCII-HL). The LHCII-HL complexes were found to be partially phosphorylated and contained zeaxanthin. The results of the x-ray diffraction, infrared imaging microscopy, confocal laser scanning microscopy, and transmission electron microscopy revealed that lipid-LHCII membranes assemble into planar multibilayers, in contrast with the lipid-LHCII-HL membranes, which form less ordered structures. In both systems, the protein formed supramolecular structures. In the case of LHCII-HL, these structures spanned the multibilayer membranes and were perpendicular to the membrane plane, whereas in LHCII, the structures were lamellar and within the plane of the membranes. Lamellar aggregates of LHCII-HL have been shown, by fluorescence lifetime imaging microscopy, to be particularly active in excitation energy quenching. Both types of structures were stabilized by intermolecular hydrogen bonds. We conclude that the formation of trans-layer, rivet-like structures of LHCII is an important determinant underlying the spontaneous formation and stabilization of the thylakoid grana structures, since the lamellar aggregates are well suited to dissipate excess energy upon overexcitation.

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Type
research article
DOI
10.1105/tpc.113.113076
Web of Science ID

WOS:000322371500021

Author(s)
Janik, Ewa
Bednarska, Joanna
Zubik, Monika
Puzio, Michal
Luchowski, Rafal
Grudzinski, Wojciech
Mazur, Radoslaw
Garstka, Maciej
Maksymiec, Waldemar
Kulik, Andrzej  
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Date Issued

2013

Publisher

Amer Soc Plant Biologists

Published in
The Plant Cell
Volume

25

Issue

6

Start page

2155

End page

2170

Subjects

Light Harvesting Complex

•

Photosynthesis

•

nanoscale Infrared Spectroscopy

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
LPMV  
Available on Infoscience
August 28, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/94340
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