Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants

Abiotic stresses such as drought, heat, salinity, and heavy metal contamination severely affect global agricultural productivity. Between 2005 and 2015, droughts caused losses of approximately USD 29 billion in developing countries, and from 2008 to 2018, droughts accounted for over 34% of crop and...

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Published in:Phyton-International Journal of Experimental Botany
Main Author: Lau S.-E.; Lim L.W.T.; Hamdan M.F.; Chan C.; Saidi N.B.; Ong-Abdullah J.; Tan B.C.
Format: Review
Language:English
Published: Tech Science Press 2025
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85217160993&doi=10.32604%2fphyton.2025.059930&partnerID=40&md5=f3e01fa6bdc66b857c3fb566543fd372
id 2-s2.0-85217160993
spelling 2-s2.0-85217160993
Lau S.-E.; Lim L.W.T.; Hamdan M.F.; Chan C.; Saidi N.B.; Ong-Abdullah J.; Tan B.C.
Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants
2025
Phyton-International Journal of Experimental Botany
94
1
10.32604/phyton.2025.059930
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85217160993&doi=10.32604%2fphyton.2025.059930&partnerID=40&md5=f3e01fa6bdc66b857c3fb566543fd372
Abiotic stresses such as drought, heat, salinity, and heavy metal contamination severely affect global agricultural productivity. Between 2005 and 2015, droughts caused losses of approximately USD 29 billion in developing countries, and from 2008 to 2018, droughts accounted for over 34% of crop and livestock yield losses, totaling about USD 37 billion. To support the growing human population, agricultural output must increase substantially, necessitating a 60%–100% rise in crop productivity to meet the escalating demand. To address environmental challenges, organic, inorganic, and microbial biostimulants are increasingly employed to enhance plant resilience through various morphological, physiological, and biochemical modifications. Plant biostimulants enhance plant resilience under abiotic stress through mechanisms such as abscisic acid signaling modulation, which regulates stomatal closure to reduce water loss during drought and heat stress. Additionally, they aid in scavenging reactive oxygen species and stabilizing ion channels, mitigating oxidative damage, and maintaining ionic balance under stress conditions such as salinity. This review summarizes recent advancements in applying these biostimulants, focusing on their roles in triggering morphological, physiological, biochemical, and molecular changes that collectively enhance plant resilience under stress conditions. It also includes a bibliometric analysis of all articles published on biostimulants from 2019 to 2024 and explores future research directions. Emphasis was placed on optimizing biostimulant formulations and understanding their synergistic effects to maximize their efficacy under various stress conditions. By integrating biostimulants into agricultural practices, we can adopt a sustainable strategy to safeguard crop productivity in the face of climate change and environmental stressors. © 2025 The Authors.
Tech Science Press
319457
English
Review

author Lau S.-E.; Lim L.W.T.; Hamdan M.F.; Chan C.; Saidi N.B.; Ong-Abdullah J.; Tan B.C.
spellingShingle Lau S.-E.; Lim L.W.T.; Hamdan M.F.; Chan C.; Saidi N.B.; Ong-Abdullah J.; Tan B.C.
Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants
author_facet Lau S.-E.; Lim L.W.T.; Hamdan M.F.; Chan C.; Saidi N.B.; Ong-Abdullah J.; Tan B.C.
author_sort Lau S.-E.; Lim L.W.T.; Hamdan M.F.; Chan C.; Saidi N.B.; Ong-Abdullah J.; Tan B.C.
title Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants
title_short Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants
title_full Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants
title_fullStr Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants
title_full_unstemmed Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants
title_sort Enhancing Plant Resilience to Abiotic Stress: The Power of Biostimulants
publishDate 2025
container_title Phyton-International Journal of Experimental Botany
container_volume 94
container_issue 1
doi_str_mv 10.32604/phyton.2025.059930
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85217160993&doi=10.32604%2fphyton.2025.059930&partnerID=40&md5=f3e01fa6bdc66b857c3fb566543fd372
description Abiotic stresses such as drought, heat, salinity, and heavy metal contamination severely affect global agricultural productivity. Between 2005 and 2015, droughts caused losses of approximately USD 29 billion in developing countries, and from 2008 to 2018, droughts accounted for over 34% of crop and livestock yield losses, totaling about USD 37 billion. To support the growing human population, agricultural output must increase substantially, necessitating a 60%–100% rise in crop productivity to meet the escalating demand. To address environmental challenges, organic, inorganic, and microbial biostimulants are increasingly employed to enhance plant resilience through various morphological, physiological, and biochemical modifications. Plant biostimulants enhance plant resilience under abiotic stress through mechanisms such as abscisic acid signaling modulation, which regulates stomatal closure to reduce water loss during drought and heat stress. Additionally, they aid in scavenging reactive oxygen species and stabilizing ion channels, mitigating oxidative damage, and maintaining ionic balance under stress conditions such as salinity. This review summarizes recent advancements in applying these biostimulants, focusing on their roles in triggering morphological, physiological, biochemical, and molecular changes that collectively enhance plant resilience under stress conditions. It also includes a bibliometric analysis of all articles published on biostimulants from 2019 to 2024 and explores future research directions. Emphasis was placed on optimizing biostimulant formulations and understanding their synergistic effects to maximize their efficacy under various stress conditions. By integrating biostimulants into agricultural practices, we can adopt a sustainable strategy to safeguard crop productivity in the face of climate change and environmental stressors. © 2025 The Authors.
publisher Tech Science Press
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