Mitochondrial Pyruvate Dehydrogenase Contributes to Auxin-Regulated Organ Development.

Iwai Ohbayashi, Shaobai Huang, Hidehiro Fukaki, Xiaomin Song, Song Sun, Miyo Terao Morita, Masao Tasaka, A Harvey Millar, Masahiko Furutani

Journal: Plant physiology 2020;180(2):896-909

PMID: 30894418

Abstract

Pyruvate dehydrogenase is the first enzyme (E1) of the PDH complex (PDC). This multienzyme complex contains E1, E2, and E3 components and controls the entry of carbon into the mitochondrial tricarboxylic acid cycle to enable cellular energy production. The E1 component of the PDC is composed of an E1α catalytic subunit and an E1β regulatory subunit. In Arabidopsis (), there are two mitochondrial E1α homologs encoded by () and (), and one mitochondrial E1β homolog. Although IAR4 was reported to be involved in auxin conjugate sensitivity and auxin homeostasis in root development, its precise role remains unknown. Here, we provide experimental evidence that mitochondrial PDC E1 contributes to polar auxin transport during organ development. We performed genetic screens for factors involved in cotyledon development and identified an uncharacterized mutant, (). encodes a mitochondrial PDC E1β subunit that can form both a homodimer and a heterodimer with IAR4. The mutation impaired MAB1 homodimerization, reduced the abundance of IAR4 and IAR4L, weakened PDC enzymatic activity, and diminished mitochondrial respiration. A metabolomics analysis showed significant changes in metabolites including amino acids in and, in particular, identified an accumulation of Ala. These results suggest that MAB1 is a component of the Arabidopsis mitochondrial PDC E1. Furthermore, in mutants and seedlings where the TCA cycle was pharmacologically blocked, we found reduced abundance of the PIN-FORMED (PIN) auxin efflux carriers, possibly due to impaired PIN recycling and enhanced PIN degradation in vacuoles. Therefore, we suggest that induces defective polar auxin transport via metabolic abnormalities.

© 2019 American Society of Plant Biologists. All Rights Reserved.

Address: College of Life Sciences, Fujian Agriculture and Forestry University, No.15 Shangxiadian Road, Cangshan District, Fuzhou City, Fujian 350002, China.; FAFU-UCR Joint Center and Fujian Provincial Key Laboratory of Haixia Applied Plant Systems Biology, Haixia Institute of Science and Technology, Fujian Agriculture and Forestry University, No.15 Shangxiadian Road, Cangshan District, Fuzhou City, Fujian 350002, China.; School of Molecular Science and ARC Centre of Excellence in Plant Energy Biology, Bayliss Building, M316, The University of Western Australia, 35 Stirling Highway, Crawley, Washington 6009, Western Australia, Australia.; Department of Biology, Graduate School of Science, Kobe University, Rokkodai 1-1, Kobe 657-8501, Japan.; Division of Plant Environmental Responses, National Institute for Basic Biology, Myodaiji, Okazaki 444-8556, Japan.; Graduate School of Biological Sciences, Nara Institute of Science and Technology (NAIST), Takayama 8916-5, Ikoma, Nara 630-0192, Japan.; College of Life Sciences, Fujian Agriculture and Forestry University, No.15 Shangxiadian Road, Cangshan District, Fuzhou City, Fujian 350002, China [email protected].

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