Cargando…
A Rice Plastidial Nucleotide Sugar Epimerase Is Involved in Galactolipid Biosynthesis and Improves Photosynthetic Efficiency
Photosynthesis is the final determinator for crop yield. To gain insight into genes controlling photosynthetic capacity, we selected from our large T-DNA mutant population a rice stunted growth mutant with decreased carbon assimilate and yield production named photoassimilate defective1 (phd1). Mole...
Autores principales: | , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2011
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3145628/ https://www.ncbi.nlm.nih.gov/pubmed/21829379 http://dx.doi.org/10.1371/journal.pgen.1002196 |
_version_ | 1782209110361505792 |
---|---|
author | Li, Chunlai Wang, Yiqin Liu, Linchuan Hu, Yingchun Zhang, Fengxia Mergen, Sod Wang, Guodong Schläppi, Michael R. Chu, Chengcai |
author_facet | Li, Chunlai Wang, Yiqin Liu, Linchuan Hu, Yingchun Zhang, Fengxia Mergen, Sod Wang, Guodong Schläppi, Michael R. Chu, Chengcai |
author_sort | Li, Chunlai |
collection | PubMed |
description | Photosynthesis is the final determinator for crop yield. To gain insight into genes controlling photosynthetic capacity, we selected from our large T-DNA mutant population a rice stunted growth mutant with decreased carbon assimilate and yield production named photoassimilate defective1 (phd1). Molecular and biochemical analyses revealed that PHD1 encodes a novel chloroplast-localized UDP-glucose epimerase (UGE), which is conserved in the plant kingdom. The chloroplast localization of PHD1 was confirmed by immunoblots, immunocytochemistry, and UGE activity in isolated chloroplasts, which was approximately 50% lower in the phd1-1 mutant than in the wild type. In addition, the amounts of UDP-glucose and UDP-galactose substrates in chloroplasts were significantly higher and lower, respectively, indicating that PHD1 was responsible for a major part of UGE activity in plastids. The relative amount of monogalactosyldiacylglycerol (MGDG), a major chloroplast membrane galactolipid, was decreased in the mutant, while the digalactosyldiacylglycerol (DGDG) amount was not significantly altered, suggesting that PHD1 participates mainly in UDP-galactose supply for MGDG biosynthesis in chloroplasts. The phd1 mutant showed decreased chlorophyll content, photosynthetic activity, and altered chloroplast ultrastructure, suggesting that a correct amount of galactoglycerolipids and the ratio of glycolipids versus phospholipids are necessary for proper chloroplast function. Downregulated expression of starch biosynthesis genes and upregulated expression of sucrose cleavage genes might be a result of reduced photosynthetic activity and account for the decreased starch and sucrose levels seen in phd1 leaves. PHD1 overexpression increased photosynthetic efficiency, biomass, and grain production, suggesting that PHD1 plays an important role in supplying sufficient galactolipids to thylakoid membranes for proper chloroplast biogenesis and photosynthetic activity. These findings will be useful for improving crop yields and for bioenergy crop engineering. |
format | Online Article Text |
id | pubmed-3145628 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2011 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-31456282011-08-09 A Rice Plastidial Nucleotide Sugar Epimerase Is Involved in Galactolipid Biosynthesis and Improves Photosynthetic Efficiency Li, Chunlai Wang, Yiqin Liu, Linchuan Hu, Yingchun Zhang, Fengxia Mergen, Sod Wang, Guodong Schläppi, Michael R. Chu, Chengcai PLoS Genet Research Article Photosynthesis is the final determinator for crop yield. To gain insight into genes controlling photosynthetic capacity, we selected from our large T-DNA mutant population a rice stunted growth mutant with decreased carbon assimilate and yield production named photoassimilate defective1 (phd1). Molecular and biochemical analyses revealed that PHD1 encodes a novel chloroplast-localized UDP-glucose epimerase (UGE), which is conserved in the plant kingdom. The chloroplast localization of PHD1 was confirmed by immunoblots, immunocytochemistry, and UGE activity in isolated chloroplasts, which was approximately 50% lower in the phd1-1 mutant than in the wild type. In addition, the amounts of UDP-glucose and UDP-galactose substrates in chloroplasts were significantly higher and lower, respectively, indicating that PHD1 was responsible for a major part of UGE activity in plastids. The relative amount of monogalactosyldiacylglycerol (MGDG), a major chloroplast membrane galactolipid, was decreased in the mutant, while the digalactosyldiacylglycerol (DGDG) amount was not significantly altered, suggesting that PHD1 participates mainly in UDP-galactose supply for MGDG biosynthesis in chloroplasts. The phd1 mutant showed decreased chlorophyll content, photosynthetic activity, and altered chloroplast ultrastructure, suggesting that a correct amount of galactoglycerolipids and the ratio of glycolipids versus phospholipids are necessary for proper chloroplast function. Downregulated expression of starch biosynthesis genes and upregulated expression of sucrose cleavage genes might be a result of reduced photosynthetic activity and account for the decreased starch and sucrose levels seen in phd1 leaves. PHD1 overexpression increased photosynthetic efficiency, biomass, and grain production, suggesting that PHD1 plays an important role in supplying sufficient galactolipids to thylakoid membranes for proper chloroplast biogenesis and photosynthetic activity. These findings will be useful for improving crop yields and for bioenergy crop engineering. Public Library of Science 2011-07-28 /pmc/articles/PMC3145628/ /pubmed/21829379 http://dx.doi.org/10.1371/journal.pgen.1002196 Text en Li et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Li, Chunlai Wang, Yiqin Liu, Linchuan Hu, Yingchun Zhang, Fengxia Mergen, Sod Wang, Guodong Schläppi, Michael R. Chu, Chengcai A Rice Plastidial Nucleotide Sugar Epimerase Is Involved in Galactolipid Biosynthesis and Improves Photosynthetic Efficiency |
title | A Rice Plastidial Nucleotide Sugar Epimerase Is Involved in Galactolipid Biosynthesis and Improves Photosynthetic Efficiency |
title_full | A Rice Plastidial Nucleotide Sugar Epimerase Is Involved in Galactolipid Biosynthesis and Improves Photosynthetic Efficiency |
title_fullStr | A Rice Plastidial Nucleotide Sugar Epimerase Is Involved in Galactolipid Biosynthesis and Improves Photosynthetic Efficiency |
title_full_unstemmed | A Rice Plastidial Nucleotide Sugar Epimerase Is Involved in Galactolipid Biosynthesis and Improves Photosynthetic Efficiency |
title_short | A Rice Plastidial Nucleotide Sugar Epimerase Is Involved in Galactolipid Biosynthesis and Improves Photosynthetic Efficiency |
title_sort | rice plastidial nucleotide sugar epimerase is involved in galactolipid biosynthesis and improves photosynthetic efficiency |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3145628/ https://www.ncbi.nlm.nih.gov/pubmed/21829379 http://dx.doi.org/10.1371/journal.pgen.1002196 |
work_keys_str_mv | AT lichunlai ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT wangyiqin ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT liulinchuan ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT huyingchun ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT zhangfengxia ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT mergensod ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT wangguodong ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT schlappimichaelr ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT chuchengcai ariceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT lichunlai riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT wangyiqin riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT liulinchuan riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT huyingchun riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT zhangfengxia riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT mergensod riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT wangguodong riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT schlappimichaelr riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency AT chuchengcai riceplastidialnucleotidesugarepimeraseisinvolvedingalactolipidbiosynthesisandimprovesphotosyntheticefficiency |