Aug 2026· International Journal of Molecular Sciences· Vol 27, pp. 7629· 0 citations· 90 references
TL;DR
This review synthesizes recent advancements in the foliar application of nanocellulose (NC), in particular, cellulose nanocrystals (CNC) and cellulose nanofibers (CNF), to enhance plant fitness.
Abstract
Exogenous application of bio-based nanomaterials provides a targeted strategy to modulate plant physiological and biochemical responses. This review synthesizes recent advancements in the foliar application of nanocellulose (NC), in particular, cellulose nanocrystals (CNC) and cellulose nanofibers (CNF), to enhance plant fitness. CNC-formed films provide physical and biochemical barriers that increase plant drought and cold stress tolerance. Topically applied CNC reduce non-stomatal transpiration and serve as insulators, allowing the flowering buds to successfully survive chilling, avoid freezing, and maintain cell membrane integrity. Simultaneously, CNC- and CNF-formed coatings are porous enough not to block the natural gas exchange essential for plants. CNC trigger internal antioxidant defense systems, upregulating reactive oxygen species-scavenging enzymes and modulating molecular signaling cascades. NC foliar treatment suppresses the growth of pathogenic bacteria and fungi, interferes with their adhesion and plant tissue penetration, and prevents biofilm formation. Thus, topical NC application could be regarded as a multi-functional tool for precision crop management and protection.
Current evidence remains insufficient to support widespread field application without long-term ecological monitoring, standardized assessment protocols, and evaluation of economic feasibility for smallholder farming systems.
O. Oyewole, S. A. Oyegbade, Abdullah S Albaqami· Integrated Environmental Ass...· 0 citations
The recent review highlights a comprehensive overview of microbial NPs synthesis, with a particular focus on the mechanisms underlying NPs formation, NPs-HMs interactions, and their role in improving crop resilience.
F. Basit, Hao Wang, Vishwa Deepak et al.· Frontiers in Microbiology· 0 citations
Modern agriculture faces significant challenges due to excessive agrochemical use, resulting in environmental degradation and reduced sustainability. Bionanomaterials have emerged as eco-friendly alternatives, among which chitosan is widely recognised for its biodegradability, biocompatibility and multifunctional properties. This review demonstrates findings from recent studies (2015–25), highlighting that conventional nutrient use efficiency remains below 50 % for macronutrients and < 5 % for micronutrients, whereas chitosan-based nanomaterials (NMs) significantly enhance nutrient delivery and utilisation. These NMs function as nanofertilisers, nanocarriers, biostimulants and nanopesticides, improving nutrient uptake, enzymatic activity, stress tolerance and overall plant growth. From a physiological perspective, they enable controlled release, targeted delivery and modulation of metabolic processes, thereby enhancing crop productivity while reducing agrochemical dependence. However, key challenges persist, including limited field-scale validation, lack of long-term environmental safety data and absence of standardised formulations. Future research should focus on large-scale validation, mechanistic insights and integration with precision agriculture. Overall, chitosan-based nanotechnology offers a promising and sustainable strategy for advancing plant physiology, though its successful field application requires further validation and standardisation.
S. Garima, K. Subodh, P. Kailash et al.· Plant Science Today· 0 citations
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