Harnessing the Power of Phenolic Compounds for Boosted Crop Resilience and Health.

Muhammad Humza, Eram Shahzadi, Abdul Basit, Muhammad Umar Zafar Khan, Francis Nosakhare Imade, Babar Iqbal, Muhammad Shahid, Münüre Tanur Erkoyuncu, Erdogan E Hakki

Journal: Physiologia plantarum 2026;178(3):e70851

PMID: 42144915

Abstract

Phenolic compounds are secondary metabolites synthesized by plants that play crucial roles in plant defense, growth, and adaptation to environmental stresses. These compounds are primarily derived from the shikimate pathway and are classified based on their carbon skeleton into simple phenolics (C6, C6-Cn, and C6-Cn-C6) and complex phenolics, such as flavonoids, lignans, stilbenes and tannins. Phenolic compounds act as signaling molecules in plant-microbe interactions, including legume-rhizobia symbiosis and arbuscular mycorrhization. They also contribute to plant defense against biotic and abiotic stressors through direct antimicrobial activity, structural reinforcement and modulation of plant immune responses. Phenolic compounds are synthesized via the shikimate/phenylpropanoid or polyketide acetate/malonate pathways, resulting in a diverse array of compounds with distinct biological activities. Recent advances in biotechnology, including elicitation, genetic transformation, and metabolic engineering, have enabled the enhanced production of valuable phenolic compounds in plants. However, challenges remain in optimizing phenolic biosynthesis for improved crop resilience due to the complexity of the regulatory networks and potential trade-offs with plant growth and ecological interactions. Future research should focus on integrating systems biology, multi-omics approaches, and precision breeding to harness the potential of phenolic compounds for sustainable agriculture and crop improvement in the face of increasing biotic and abiotic stress.

© 2026 Scandinavian Plant Physiology Society.

Address: State Key Laboratory of Wheat Improvement, Shandong Provincial Key Laboratory of Agricultural Microbiology, College of Plant Protection, Shandong Agricultural University, Taian, China.; State Key Laboratory of Wheat Improvement, College of Life Sciences, Shandong Agricultural University, Taian, China.; Guizhou Provincial Key Laboratory for Agricultural Pest Management of the Mountainous Region, Institute of Entomology, and Institute of Plant Health and Medicine, Guizhou University, Guiyang, Guizhou, China.; Institute of Microbiology, Faculty of Veterinary Science, University of Agriculture, Faisalabad, Pakistan.; Plant Science and Biotechnology Department, Faculty of Life Sciences, Ambrose Alli University, Ekpoma, Nigeria.; Plant Pathology Research Institute, Ayub Agricultural Research Institute, Faisalabad, Pakistan.; Plant Breeding and Genetics Division, Nuclear Institute of Agriculture and Biology (NIAB), Faisalabad, Pakistan.; Field Crop Department, Faculty of Agriculture, Selcuk University, Konya, Türkiye.; Department of Soil Science and Plant Nutrition, Selçuk University, Konya, Türkiye.; BoroNext Research Development Corporation, Konya Technopark, Technology Development Zone, Konya, Türkiye.
Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.