The growing pressure exerted by global food demand, combined with the excessive use of chemical and synthetic inputs, is prompting the agricultural sector to seek innovative and sustainable solutions to improve, or at least maintain, crop yields in a context of increased abiotic stress linked to climate change. Among the promising approaches, biostimulants are attracting growing interest, particularly those derived from natural sources such as seaweed extracts, humic acids, and beneficial microorganisms. These products work through various mechanisms, including osmotic regulation, activation of antioxidant systems, stimulation of root growth, and improvement of nutrient absorption. Many recent research and review articles have explored the optimal combinations of raw materials, formulation processes, target crops, and environmental conditions to maximize beneficial effects on plant growth, soil health, and tolerance to abiotic stresses. As a result, a growing range of commercial products is emerging, with diverse chemical compositions, formulations, and modes of application. However, the precise relationships between the biochemical composition of biostimulants and their physiological effects remain poorly understood, suggesting a key role for molecular synergies. This review provides a concise overview of recent advances in biostimulant research and their potential to enhance food security by improving crop resilience in the context of climate change.
The need for the most up-to-date, environmentally friendly techniques of controlling plant diseases and pests necessitates keeping an eye out for effective tools that provide a safe environment for human and animal fitness. In recent years, the usage of plant biostimulants (BS), which are derived from various organic materials through hydrolysis reactions, has increased. Soil microbes and plants immediately absorb these Biostimulants, which often consist of peptides, amino acids, polysaccharides, humic acids and phytohormones with less energy requirement. This benefits not only growth but also the yield and quality of the harvested grain or fruit. These items are intended to promote and increase plant metabolism, reduce stress, etc., rather than to supply nutrients. These days, a variety of biotic and abiotic stresses hinder plant development, seed germination and seedling growth due to shifting climatic conditions, which reduces biological and economic yields. Plant growth regulators (PGRs) helps plant in mitigating different abiotic stresses and also enhances the adaptability of plants in stress conditions. A variety of PGRs, including ethylene (ET), salicylic acid (SA), abscisic acid (ABA) and jasmonates (JAs), are linked to improving plants' ability to respond to various stimuli. On the other hand, under both normal and stressful environmental conditions, PGRs like auxin, cytokinins (CKs), gibberellins (GAs) and relatively novel PGRs like strigolactones (SLs) and brassinosteroids (BRs) are engaged in plant growth and development. These PGRs are crucial for regulating stress adaptation through modulates physiological, biochemical and molecular processes and activation of the defense system, upregulating of transcript levels, transcription factors, metabolism genes, and stress proteins at cellular levels.
Dr. Hena Parveen, Dr. Manish Kumar, Dr. Shweta kumari et al.· Genetics and Molecular Resea...· 0 citations
Climate change represents a major global challenge that threatens agricultural productivity, ecosystem stability, and food security by intensifying abiotic stresses such as drought, salinity, and extreme temperatures. Solanaceous crops, which are economically and nutritionally important worldwide, are highly sensitive to these stresses, leading to oxidative damage, impaired photosynthesis, and reduced yield and quality. Nanotechnology has emerged as a promising approach to mitigate these adverse effects. Due to their unique physicochemical properties, nanoparticles (NPs) enhance nutrient uptake, improve water-use efficiency, and regulate plant metabolic processes. They also activate antioxidant defense systems, reduce reactive oxygen species (ROS), and improve the delivery efficiency of growth regulators and bioactive compounds. This review synthesizes recent literature on abiotic stress responses in solanaceous crops and evaluates the role of nanoparticles as mitigation strategies, focusing on physiological, biochemical, and molecular mechanisms. The scope includes drought, salinity, and temperature stresses, as well as nano-enabled applications such as nano-carriers and nano-sensors. Overall, nanoparticle applications improve plant tolerance by enhancing antioxidant activity, regulating stress-responsive pathways, and improving resource-use efficiency, thereby contributing to increased crop productivity under climate change conditions. However, challenges related to nanoparticle toxicity and environmental risks remain, emphasizing the need for optimized and safe application strategies. These findings highlight the potential of nanotechnology as a sustainable tool to enhance the resilience and productivity of solanaceous crops under changing climatic conditions. This review highlights that nanoparticles can enhance abiotic stress tolerance in solanaceous crops by improving antioxidant activity, photosynthesis, nutrient uptake, and water-use efficiency under adverse environmental conditions. Overall, nanotechnology represents a promising strategy for sustainable crop production under climate change, although further studies are needed to ensure its environmental safety and long-term applicability. This review provides a comprehensive overview of abiotic stress effects on solanaceous crops and highlights the role of nanoparticles as a sustainable tool to enhance plant tolerance, productivity, and resilience under climate change conditions.
M. Abou El-Nasr, Karim M. Hassan, Ahmed N. Abdelhamid et al.· Sustainability· 0 citations
The increasing demand for sustainable and environmentally responsible agricultural practices has accelerated the search for alternatives to chemical fertilizers. Microbial biofertilizers, particularly plant growth-promoting rhizobacteria (PGPR), offer a promising strategy to enhance crop productivity while maintaining soil health. Among these, Bacillus species have gained significant attention due to their ecological versatility and functional diversity. This review provides a comprehensive evaluation of the biofertilization potential of Bacillus spp. in sustainable agriculture. Prominent species such as Bacillus subtilis, B. megaterium, and B. amyloliquefaciens contribute to improved nutrient acquisition through nitrogen fixation, phosphate solubilization, and potassium mobilization. In addition, Bacillus spp. produce phytohormones, siderophores, and volatile organic compounds that stimulate plant growth and enhance tolerance to biotic and abiotic stresses. Their endospore-forming ability ensures high survival, prolonged shelf life, and reliable performance under diverse field conditions, supporting their commercial application as biofertilizers. This review also discusses interactions between Bacillus spp. and native soil microbiota, their influence on rhizosphere dynamics, and their role in improving soil fertility and crop productivity. However, inconsistent field performance, formulation challenges, and regulatory constraints remain key barriers to large-scale adoption. Recent advances in genomics, strain improvement, and formulation technologies present new opportunities to enhance the efficacy of Bacillus-based biofertilizers. Integrative approaches combining microbiology, agronomy, and policy frameworks are essential to realize their full potential in sustainable agricultural systems and global food security.
Soumendranath Chatterjee, Dibyendu Saha, Souvik Bag et al.· Discover Plants· 0 citations
Wheat is a major staple crop, and improving its productivity and grain quality is essential to meet rising global food demand. Biostimulants have attracted growing interest because they can enhance nutrient use efficiency, improve tolerance to environmental stresses, and support crop performance without acting as conventional fertilizers, yet a focused synthesis of their effects on wheat remains limited. Following a systematic search of Scopus and Web of Science (2000–2026), this review synthesizes 52 primary studies on microbial and non-microbial biostimulants in common and durum wheat, addressing grain yield, nutritional quality, and resilience to drought, salinity, heavy metals, and temperature extremes. Across studies, 88% reported significant positive effects and none reported a consistent negative effect; grain yield increases ranged from +6% to +123%, with parallel improvements in grain protein and micronutrient biofortification, notably zinc and iron. Microbial biostimulants, especially bacteria and microbial consortia, produced the largest but most variable gains, whereas non-microbial products gave more moderate and consistent responses. Benefits were greatest under low nitrogen, drought, and saline conditions and in nutrient-poor soils, and were modulated by wheat genotype and product dose. Biostimulants are promising tools for sustainable wheat production, though standardized field trials and reporting are still needed.
A. Di Serio, Alfredo Lorenzo, Lisa Antonucci et al.· Agronomy· 0 citations
Securing global food production while reducing environmental burdens demands materials that combine high nutrient use efficiency with sustainability. Polyphenols, a class of natural plant-derived molecules, provide redox activity, multidentate interactions, and strong interfacial adhesion, making them versatile building blocks for bio-derived agricultural systems. This review summarizes recent advances in the molecular design and multifunctional applications of polyphenol-inspired materials across diverse agriculture sectors, including soil remediation, seed coating, nutrient delivery, crop protection, sensing, nitrification inhibition, and food preservation. It focuses on interfacial assembly, structure-property relationships, and environmental interactions of polyphenol-enabled materials, which collectively govern their performance from laboratory tests to field conditions. Key challenges in current agricultural practice-including low precision and high labor dependence, environmental degradation and ecological imbalance, instability under extreme environmental conditions, and low economic efficiency and unsustainability-are also discussed. Finally, future directions centered on precision and smart agriculture, ecosystem protection, climate-resilient plant interfaces, and circular bioeconomy are outlined. This review presents a comprehensive framework that connects molecular innovation to system-level applications, offering a roadmap for future research and the deployment of polyphenols in agriculture.
Haofu Liu, Omid Mazaheri, Zhixing Lin et al.· Advances in Materials· 0 citations