Suberin in plants: biosynthesis, regulation, and its role in salt stress resistance

Soil salinization represents a significant global ecological challenge. Plants encounter salt stress in their growth environments. Suberin, a hydrophobic polymer, plays a critical role in plant salt tolerance. This review examines the mechanisms by which suberin contributes to salt tolerance. Suberi...

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Main Authors: Ruonan Chen, Pengrui Wang, Jianing Liu, Xue Yang, Xiaoying Gong, Hongliang Zhou, Ning Han, Zhen Yang
Format: Article
Language:English
Published: Frontiers Media S.A. 2025-06-01
Series:Frontiers in Plant Science
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Online Access:https://www.frontiersin.org/articles/10.3389/fpls.2025.1624136/full
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author Ruonan Chen
Pengrui Wang
Jianing Liu
Xue Yang
Xiaoying Gong
Hongliang Zhou
Ning Han
Zhen Yang
author_facet Ruonan Chen
Pengrui Wang
Jianing Liu
Xue Yang
Xiaoying Gong
Hongliang Zhou
Ning Han
Zhen Yang
author_sort Ruonan Chen
collection DOAJ
description Soil salinization represents a significant global ecological challenge. Plants encounter salt stress in their growth environments. Suberin, a hydrophobic polymer, plays a critical role in plant salt tolerance. This review examines the mechanisms by which suberin contributes to salt tolerance. Suberin comprises polyaliphatic and polyphenolic domains. Its biosynthesis involves multiple enzymes, including fatty acid synthases, the fatty acid elongation complex, and various cytochrome P450 monooxygenases. ABCG transporters and lipid transfer proteins facilitate the transport of suberin monomers from the endoplasmic reticulum to the plasma membrane and cell wall. Plants utilize suberin lamellae to respond to salt stress through multiple mechanisms. Under salt stress, the structure and composition of suberin lamellae undergo modifications, including increased thickness and enhanced very-long-chain fatty acid components. In addition, salt stress elevates the expression of genes associated with suberin biosynthesis and transport. Mutations in these genes often result in salt-sensitive phenotypes. Fundamentally, suberin contributes to forming the hydrophobic component of the apoplastic barrier, thereby reducing passive Na+ influx and restricting sodium uptake to protect plants from ion toxicity. Understanding the mechanisms of suberin in salt tolerance offers potential strategies for enhancing crop salt tolerance through genetic engineering.
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publishDate 2025-06-01
publisher Frontiers Media S.A.
record_format Article
series Frontiers in Plant Science
spelling doaj-art-ee0f16f6d39f44daae0a0b36694697ce2025-08-20T02:38:18ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2025-06-011610.3389/fpls.2025.16241361624136Suberin in plants: biosynthesis, regulation, and its role in salt stress resistanceRuonan ChenPengrui WangJianing LiuXue YangXiaoying GongHongliang ZhouNing HanZhen YangSoil salinization represents a significant global ecological challenge. Plants encounter salt stress in their growth environments. Suberin, a hydrophobic polymer, plays a critical role in plant salt tolerance. This review examines the mechanisms by which suberin contributes to salt tolerance. Suberin comprises polyaliphatic and polyphenolic domains. Its biosynthesis involves multiple enzymes, including fatty acid synthases, the fatty acid elongation complex, and various cytochrome P450 monooxygenases. ABCG transporters and lipid transfer proteins facilitate the transport of suberin monomers from the endoplasmic reticulum to the plasma membrane and cell wall. Plants utilize suberin lamellae to respond to salt stress through multiple mechanisms. Under salt stress, the structure and composition of suberin lamellae undergo modifications, including increased thickness and enhanced very-long-chain fatty acid components. In addition, salt stress elevates the expression of genes associated with suberin biosynthesis and transport. Mutations in these genes often result in salt-sensitive phenotypes. Fundamentally, suberin contributes to forming the hydrophobic component of the apoplastic barrier, thereby reducing passive Na+ influx and restricting sodium uptake to protect plants from ion toxicity. Understanding the mechanisms of suberin in salt tolerance offers potential strategies for enhancing crop salt tolerance through genetic engineering.https://www.frontiersin.org/articles/10.3389/fpls.2025.1624136/fullsuberinsalt stresssalt resistancebiosynthesistransportationsalt exclusion
spellingShingle Ruonan Chen
Pengrui Wang
Jianing Liu
Xue Yang
Xiaoying Gong
Hongliang Zhou
Ning Han
Zhen Yang
Suberin in plants: biosynthesis, regulation, and its role in salt stress resistance
Frontiers in Plant Science
suberin
salt stress
salt resistance
biosynthesis
transportation
salt exclusion
title Suberin in plants: biosynthesis, regulation, and its role in salt stress resistance
title_full Suberin in plants: biosynthesis, regulation, and its role in salt stress resistance
title_fullStr Suberin in plants: biosynthesis, regulation, and its role in salt stress resistance
title_full_unstemmed Suberin in plants: biosynthesis, regulation, and its role in salt stress resistance
title_short Suberin in plants: biosynthesis, regulation, and its role in salt stress resistance
title_sort suberin in plants biosynthesis regulation and its role in salt stress resistance
topic suberin
salt stress
salt resistance
biosynthesis
transportation
salt exclusion
url https://www.frontiersin.org/articles/10.3389/fpls.2025.1624136/full
work_keys_str_mv AT ruonanchen suberininplantsbiosynthesisregulationanditsroleinsaltstressresistance
AT pengruiwang suberininplantsbiosynthesisregulationanditsroleinsaltstressresistance
AT jianingliu suberininplantsbiosynthesisregulationanditsroleinsaltstressresistance
AT xueyang suberininplantsbiosynthesisregulationanditsroleinsaltstressresistance
AT xiaoyinggong suberininplantsbiosynthesisregulationanditsroleinsaltstressresistance
AT hongliangzhou suberininplantsbiosynthesisregulationanditsroleinsaltstressresistance
AT ninghan suberininplantsbiosynthesisregulationanditsroleinsaltstressresistance
AT zhenyang suberininplantsbiosynthesisregulationanditsroleinsaltstressresistance