Regulatory mechanisms underlying cuticular wax biosynthesis

被引:71
作者
Lee, Saet Buyl [1 ]
Suh, Mi Chung [2 ]
机构
[1] Rural Dev Adm, Natl Inst Agr Sci, Dept Agr Biotechnol, Jeonju 54874, South Korea
[2] Sogang Univ, Dept Life Sci, Seoul 04107, South Korea
基金
新加坡国家研究基金会;
关键词
Arabidopsis; cuticle; cuticular wax; drought; E3 ubiquitin ligase; environmental stress; epigenetic regulation; gene silencing; miRNA; transcription factor; LIPID-TRANSFER PROTEIN; KETOACYL-COA SYNTHASE; PRIMARY ALCOHOL BIOSYNTHESIS; ENHANCES DROUGHT TOLERANCE; FATTY ACYL-COENZYME; TRANSCRIPTION FACTOR; EPICUTICULAR WAX; ARABIDOPSIS-THALIANA; CUTICLE DEVELOPMENT; INCREASED ACCUMULATION;
D O I
10.1093/jxb/erab509
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plants are sessile organisms that have developed hydrophobic cuticles that cover their aerial epidermal cells to protect them from terrestrial stresses. The cuticle layer is mainly composed of cutin, a polyester of hydroxy and epoxy fatty acids, and cuticular wax, a mixture of very-long-chain fatty acids (>20 carbon atoms) and their derivatives, aldehydes, alkanes, ketones, alcohols, and wax esters. During the last 30 years, forward and reverse genetic, transcriptomic, and biochemical approaches have enabled the identification of key enzymes, transporters, and regulators involved in the biosynthesis of cutin and cuticular waxes. In particular, cuticular wax biosynthesis is significantly influenced in an organ-specific manner or by environmental conditions, and is controlled using a variety of regulators. Recent studies on the regulatory mechanisms underlying cuticular wax biosynthesis have enabled us to understand how plants finely control carbon metabolic pathways to balance between optimal growth and development and defense against abiotic and biotic stresses. In this review, we summarize the regulatory mechanisms underlying cuticular wax biosynthesis at the transcriptional, post-transcriptional, post-translational, and epigenetic levels. Advances in regulatory mechanisms underlying cuticular wax biosynthesis have improved our understanding of how plants balance carbon metabolic pathways between optimal growth and development and defense against abiotic stresses.
引用
收藏
页码:2799 / 2816
页数:18
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