Nano-charged resilience: Harnessing chitosan-based nanomaterials for enhanced vegetable crop adaptation in sustainable agriculture

Abstract

Vegetable crops are increasingly exposed to new environmental conditions, including elevated temperatures, erratic rainfall patterns, and declining soil fertility, which threaten global food security. Traditional synthetic fertilizers and pesticides exacerbate environmental degradation. Chitosan, a biodegradable and non-toxic biopolymer derived from chitin, has been developed into nanomaterials such as nanoparticles and nanofibers. These chitosan-based nanomaterials, typically less than 100 nm in size, exhibit high biocompatibility and bioactivity, enhancing chlorophyll content, nutrient uptake, and disease resistance in crops. Nonetheless, differences in synthetic processes and composition may cause unstable efficacy, and field-level increase in yield is between 5-20% in comparison with 15-25% in controlled settings. This review explores current advances in chitosan nanomaterials for vegetable crop improvement under biotic and abiotic stress, focusing on crops like tomatoes, potatoes, and lettuce. It critically evaluates benefits and limitations while emphasizing nanotechnology's role in achieving higher yields and environmental sustainability.

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Article information

Article type
Critical Review
Submitted
18 Aug 2025
Accepted
25 Nov 2025
First published
28 Nov 2025
This article is Open Access
Creative Commons BY-NC license

Environ. Sci.: Adv., 2026, Accepted Manuscript

Nano-charged resilience: Harnessing chitosan-based nanomaterials for enhanced vegetable crop adaptation in sustainable agriculture

Q. Ullah, W. Haider, M. Qasim, M. Waqar, T. Khomphet, M. Farid and Z. U. Zaman Asam, Environ. Sci.: Adv., 2026, Accepted Manuscript , DOI: 10.1039/D5VA00274E

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