Exogenous spermidine promotes the formation of the closing layer at potato tuber wounds by inducing polyamine synthesis and phenylpropanoid metabolism

IF 6.8 1区 农林科学 Q1 AGRONOMY Postharvest Biology and Technology Pub Date : 2025-04-09 DOI:10.1016/j.postharvbio.2025.113572
Ying Wang , Ruirui Yang , Qihui Wang , Pengdong Xie , Xiaojing Wang , Yongcai Li , Dov Prusky , Ye Han , Yang Bi
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Abstract

Spermidine (Spd) is an essential polyamine in plants. Although there are reports that exogenous Spd can enhance the synthesis of endogenous polyamines and induce plant resistance, it remains unknown whether exogenous Spd affects the formation of the potato tuber wound closing layers by modulating polyamine synthesis and phenylpropanoid metabolism. This study found that Spd enhanced the gene expression and activity of arginine decarboxylase (ADC), ornithine decarboxylase (ODC) and S-adenosylmethionine decarboxylase (SAMDC), leading to an increase in the levels of Put, Spd, and Spm. Additionally, Spd increased the activity of phenylalanine ammonia-lyase (PAL), 4-coumaroyl-CoA ligase (4CL), and cinnamyl alcohol dehydrogenase (CAD), and elevated the levels of five phenolic acids and three lignin monomers. Furthermore, Spd increased the gene expression and activity of peroxidase (POD), diamine oxidase (DAO), and polyamine oxidase (PAO), resulting in an increase in the level of H2O2. The aforementioned phenolic acids and lignin monomers are oxidized and cross-linked under the combined action of POD and H2O2 to form suberin polyphenols (SPP) and lignin, which are deposited on the wound surface. The competitive inhibitor D-arginine (D-Arg) from ADC and the specific inhibitor guazatine (GZ) from PAO can delay the deposition of SPP and lignin by inhibiting polyamine synthesis, reducing the levels of phenolic acids and lignin monomers, and inhibiting POD activity and H2O2 production. In conclusion, exogenous Spd can promote the deposition of the closing layer on potato tuber wounds by promoting endogenous polyamine synthesis and phenylpropanoid metabolism.
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外源亚精胺通过诱导多胺合成和苯丙氨酸代谢促进马铃薯块茎伤口闭合层的形成
亚精胺(Spd)是植物体内必需的一种多胺。虽然有报道称外源Spd可以增强内源多胺的合成,诱导植物抗性,但外源Spd是否通过调节多胺合成和苯丙素代谢影响马铃薯块茎创口闭合层的形成尚不清楚。本研究发现,Spd增强了精氨酸脱羧酶(ADC)、鸟氨酸脱羧酶(ODC)和s -腺苷蛋氨酸脱羧酶(SAMDC)的基因表达和活性,导致Put、Spd和Spm水平升高。Spd增加了苯丙氨酸解氨酶(PAL)、4- coumaryl - coa连接酶(4CL)和肉桂醇脱氢酶(CAD)的活性,提高了5种酚酸和3种木质素单体的水平。Spd增加了过氧化物酶(POD)、二胺氧化酶(DAO)和多胺氧化酶(PAO)的基因表达和活性,导致H2O2水平升高。上述酚酸和木质素单体在POD和H2O2的共同作用下被氧化交联,形成木质素多酚(suberin polyphenols, SPP)和木质素,沉积在伤口表面。来自ADC的竞争性抑制剂d -精氨酸(D-Arg)和来自PAO的特异性抑制剂瓜嗪丁(GZ)可以通过抑制多胺合成、降低酚酸和木质素单体水平、抑制POD活性和H2O2生成来延缓SPP和木质素的沉积。综上所述,外源Spd通过促进内源多胺合成和苯丙类代谢,促进马铃薯块茎创面闭合层沉积。
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来源期刊
Postharvest Biology and Technology
Postharvest Biology and Technology 农林科学-农艺学
CiteScore
12.00
自引率
11.40%
发文量
309
审稿时长
38 days
期刊介绍: The journal is devoted exclusively to the publication of original papers, review articles and frontiers articles on biological and technological postharvest research. This includes the areas of postharvest storage, treatments and underpinning mechanisms, quality evaluation, packaging, handling and distribution of fresh horticultural crops including fruit, vegetables, flowers and nuts, but excluding grains, seeds and forages. Papers reporting novel insights from fundamental and interdisciplinary research will be particularly encouraged. These disciplines include systems biology, bioinformatics, entomology, plant physiology, plant pathology, (bio)chemistry, engineering, modelling, and technologies for nondestructive testing. Manuscripts on fresh food crops that will be further processed after postharvest storage, or on food processes beyond refrigeration, packaging and minimal processing will not be considered.
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