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PMID: 24674921 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

OsATG7 is required for autophagy-dependent lipid metabolism in rice postmeiotic anther development.

Autophagy ·Vol. 10 ·No. 5 ·2014-05-00 ·Pages 878-88

Kurusu T, Koyano T, Hanamata S, Kubo T, Noguchi Y, Yagi C, Nagata N, Yamamoto T, Ohnishi T, Okazaki Y, Kitahata N, Ando D, Ishikawa M, Wada S, Miyao A, Hirochika H, Shimada H, Makino A, Saito K, Ishida H, Kinoshita T, Kurata N, Kuchitsu K

Abstract

In flowering plants, the tapetum, the innermost layer of the anther, provides both nutrient and lipid components to developing microspores, pollen grains, and the pollen coat. Though the programmed cell death of the tapetum is one of the most critical and sensitive steps for fertility and is affected by various environmental stresses, its regulatory mechanisms remain mostly unknown. Here we show that autophagy is required for the metabolic regulation and nutrient supply in anthers and that autophagic degradation within tapetum cells is essential for postmeiotic anther development in rice. Autophagosome-like structures and several vacuole-enclosed lipid bodies were observed in postmeiotic tapetum cells specifically at the uninucleate stage during pollen development, which were completely abolished in a retrotransposon-insertional OsATG7 (autophagy-related 7)-knockout mutant defective in autophagy, suggesting that autophagy is induced in tapetum cells. Surprisingly, the mutant showed complete sporophytic male sterility, failed to accumulate lipidic and starch components in pollen grains at the flowering stage, showed reduced pollen germination activity, and had limited anther dehiscence. Lipidomic analyses suggested impairment of editing of phosphatidylcholines and lipid desaturation in the mutant during pollen maturation. These results indicate a critical involvement of autophagy in a reproductive developmental process of rice, and shed light on the novel autophagy-mediated regulation of lipid metabolism in eukaryotic cells.

Keywords
anther autophagy male sterility pollen development rice
MeSH Terms
Autophagy/genetics Flowers/genetics,growth & development,metabolism Lipid Metabolism/genetics Meiosis/genetics Oryza/genetics,growth & development,metabolism Plant Proteins/physiology Plants, Genetically Modified Pollen/genetics,metabolism Ubiquitin-Activating Enzymes/physiology
Chemicals
Plant Proteins Ubiquitin-Activating Enzymes
Authors & Affiliations
23 authors, click to expand affiliations / ORCID
Kurusu Takamitsu
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan; Research Institute for Science and Technology; Tokyo University of Science; Noda, Chiba Japan; School of Bioscience and Biotechnology; Tokyo University of Technology; Hachioji, Tokyo Japan.
Koyano Tomoko
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan.
Hanamata Shigeru
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan.
Kubo Takahiko
Plant Genetics Laboratory; National Institute of Genetics; Mishima, Shizuoka Japan.
Noguchi Yuhei
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan.
Yagi Chikako
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan.
Nagata Noriko
Department of Chemical Biological Science; Faculty of Science; Japan Women's University; Bunkyo-ku, Tokyo Japan.
Yamamoto Takashi
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan.
Ohnishi Takayuki
Faculty of Bioscience; Nagahama Institute of Bio-Science and Technology; Shiga, Japan.
Okazaki Yozo
Metabolomic Function Research Group; RIKEN Center for Sustainable Resource Science; Yokohama, Kanagawa Japan.
Kitahata Nobutaka
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan.
Ando Daichi
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan.
Ishikawa Masaya
Environmental Stress Research Unit; Division of Plant Sciences; National Institute of Agrobiological Sciences; Tsukuba, Ibaraki Japan.
Wada Shinya
Department of Applied Plant Science; Graduate School of Agricultural Sciences; Tohoku University; Sendai, Miyagi, Japan.
Miyao Akio
Agrogenomics Research Center; National Institute of Agrobiological Sciences; Tsukuba, Ibaraki Japan.
Hirochika Hirohiko
Agrogenomics Research Center; National Institute of Agrobiological Sciences; Tsukuba, Ibaraki Japan.
Shimada Hiroaki
Research Institute for Science and Technology; Tokyo University of Science; Noda, Chiba Japan; Department of Biological Science and Technology; Tokyo University of Science; Katsushika, Tokyo Japan.
Makino Amane
Department of Applied Plant Science; Graduate School of Agricultural Sciences; Tohoku University; Sendai, Miyagi, Japan.
Saito Kazuki
Metabolomic Function Research Group; RIKEN Center for Sustainable Resource Science; Yokohama, Kanagawa Japan; Graduate School of Pharmaceutical Sciences; Chiba University; Chiba, Chiba Japan.
Ishida Hiroyuki
Department of Applied Plant Science; Graduate School of Agricultural Sciences; Tohoku University; Sendai, Miyagi, Japan.
Kinoshita Tetsu
Faculty of Bioscience; Nagahama Institute of Bio-Science and Technology; Shiga, Japan.
Kurata Nori
Plant Genetics Laboratory; National Institute of Genetics; Mishima, Shizuoka Japan.
Kuchitsu Kazuyuki
Department of Applied Biological Science; Tokyo University of Science; Noda, Chiba Japan; Research Institute for Science and Technology; Tokyo University of Science; Noda, Chiba Japan.
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Article Info
Journal
Autophagy
Abbr.
Autophagy
ISSN
1554-8635
Published
2014-05-00
Epub
2014-00-24
Pages
878-88
Language
English
Region
United States
NLM ID
101265188
PMCID
PMC5119067
Subset
IM
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