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OtherCELL BIOLOGY AND SIGNAL TRANSDUCTION
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Release of Photosynthetic Protein Catabolites by Blebbing from Thylakoids

S. Ghosh, K. A. Hudak, E. B. Dumbroff, J. E. Thompson
S. Ghosh
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K. A. Hudak
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E. B. Dumbroff
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J. E. Thompson
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Published December 1994. DOI: https://doi.org/10.1104/pp.106.4.1547

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  • Copyright © 1994 by American Society of Plant Biologists

Abstract

Thylakoid proteins and their catabolites have been detected in lipid-protein particles isolated from the stroma of intact chloroplasts obtained from primary leaves of 2-week-old bean seedlings (Phaseolus vulgaris L. cv Kinghorn). The lipid-protein particles bear morphological resemblance to plastoglobuli seen in the chloroplasts of senescing leaves, but they are much smaller. They range from 10 to 320 nm in radius, are uniformly stained in thin sections visualized by transmission electron microscopy, and are discernible in the stroma of chloroplasts in corresponding thin-sectioned leaf tissue. The lipid-protein particles contain thylakoid lipids and are enriched in free fatty acids. Specifically, the free-to-esterified fatty acid ratio is about 1:1 in the particles compared to only 1:18 for corresponding thylakoid membranes. Western blot analyses indicate that these particles also contain thylakoid proteins and, in some cases, catabolites of these proteins including the CF1 [beta] and [gamma] subunits of ATPase, cytochrome f, and the 31- and 33-kD proteins of PSII. Lipid-protein particles with similar properties were generated in vitro from isolated, light-stressed thylakoids. Collectively, these data suggest that blebbing of lipid-protein particles may be a means of removing potentially destabilizing macromolecular catabolites from thylakoid membrane bilayers.

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Release of Photosynthetic Protein Catabolites by Blebbing from Thylakoids
S. Ghosh, K. A. Hudak, E. B. Dumbroff, J. E. Thompson
Plant Physiology Dec 1994, 106 (4) 1547-1553; DOI: 10.1104/pp.106.4.1547

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Release of Photosynthetic Protein Catabolites by Blebbing from Thylakoids
S. Ghosh, K. A. Hudak, E. B. Dumbroff, J. E. Thompson
Plant Physiology Dec 1994, 106 (4) 1547-1553; DOI: 10.1104/pp.106.4.1547
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Plant Physiology
Vol. 106, Issue 4
Dec 1994
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  • The Cell Wall of the Arabidopsis Pollen Tube—Spatial Distribution, Recycling, and Network Formation of Polysaccharides
  • Systems Dynamic Modeling of a Guard Cell Cl− Channel Mutant Uncovers an Emergent Homeostatic Network Regulating Stomatal Transpiration
  • Architecture-Based Multiscale Computational Modeling of Plant Cell Wall Mechanics to Examine the Hydrogen-Bonding Hypothesis of the Cell Wall Network Structure Model
Show more CELL BIOLOGY AND SIGNAL TRANSDUCTION

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