Protein Profiling of Plastoglobules in Chloroplasts and Chromoplasts. A Surprising Site for Differential Accumulation of Metabolic Enzymes
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Open Access
- 3 February 2006
- journal article
- research article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 140 (3) , 984-997
- https://doi.org/10.1104/pp.105.076083
Abstract
Plastoglobules (PGs) are oval or tubular lipid-rich structures present in all plastid types, but their specific functions are unclear. PGs contain quinones, α-tocopherol, and lipids and, in chromoplasts, carotenoids as well. It is not known whether PGs contain any enzymes or regulatory proteins. Here, we determined the proteome of PGs from chloroplasts of stressed and unstressed leaves of Arabidopsis (Arabidopsis thaliana) as well as from pepper (Capsicum annuum) fruit chromoplasts using mass spectrometry. Together, this showed that the proteome of chloroplast PGs consists of seven fibrillins, providing a protein coat and preventing coalescence of the PGs, and an additional 25 proteins likely involved in metabolism of isoprenoid-derived molecules (quinines and tocochromanols), lipids, and carotenoid cleavage. Four unknown ABC1 kinases were identified, possibly involved in regulation of quinone monooxygenases. Most proteins have not been observed earlier but have predicted N-terminal chloroplast transit peptides and lack transmembrane domains, consistent with localization in the PG lipid monolayer particles. Quantitative differences in PG composition in response to high light stress and degreening were determined by differential stable-isotope labeling using formaldehyde. More than 20 proteins were identified in the PG proteome of pepper chromoplasts, including four enzymes of carotenoid biosynthesis and several homologs of proteins observed in the chloroplast PGs. Our data strongly suggest that PGs in chloroplasts form a functional metabolic link between the inner envelope and thylakoid membranes and play a role in breakdown of carotenoids and oxidative stress defense, whereas PGs in chromoplasts are also an active site for carotenoid conversions.Keywords
This publication has 58 references indexed in Scilit:
- From Arabidopsis to agriculture: engineering improved Vitamin E content in soybeanTrends in Plant Science, 2004
- Experimental Analysis of the Arabidopsis Mitochondrial Proteome Highlights Signaling and Regulatory Components, Provides Assessment of Targeting Prediction Programs, and Indicates Plant-Specific Mitochondrial Proteins [W]Plant Cell, 2004
- Proteomics of loosely bound cell wall proteins of Arabidopsis thaliana cell suspension cultures: A critical analysisElectrophoresis, 2003
- Secondary Structures Common to Chloroplast mRNA 3′-Untranslated Regions Direct Cleavage by CSP41, an Endoribonuclease Belonging to the Short Chain Dehydrogenase/Reductase SuperfamilyJournal of Biological Chemistry, 2003
- Functional analysis of the 37 kDa inner envelope membrane polypeptide in chloroplast biogenesis using a Ds‐tagged Arabidopsis pale‐green mutantThe Plant Journal, 2003
- The Arabidopsis male-sterile mutant dde2-2 is defective in the ALLENE OXIDE SYNTHASE gene encoding one of the key enzymes of the jasmonic acid biosynthesis pathwayPlanta, 2002
- Isolation of a novel gene, CABC1, encoding a mitochondrial protein that is highly homologous to yeast activity of bc1 complex.2002
- Carotenoid biosynthesis in flowering plantsCurrent Opinion in Plant Biology, 2001
- Co-Association of CytochromefCatabolites and Plastid-Lipid-Associated Protein with Chloroplast Lipid ParticlesPlant Physiology, 2000
- Isolation and characterization of neutral-lipid-containing organelles and globuli-filled plastids from Brassica napus tapetumProceedings of the National Academy of Sciences, 1997