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Ajar Nath Yadav

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Open access 2026

Harnessing nanotechnology for bioremediation: Toward sustainable environmental solutions

Integrating nanotechnology with bioremediation offers a powerful, eco-friendly strategy to address pressing environmental challenges such as heavy metal contamination, hydrocarbon pollution, and persistent organic pollutants. Nanoparticles (NPs) are used as microbial enhancers, adsorbents, or catalysts in bioremediation because of their high surface area-to-volume ratio, reactivity, and pollutant selectivity. For instance, recent studies have demonstrated the successful use of iron oxide and silver NPs in enhancing microbial degradation of industrial wastewater contaminants, highlighting the practical potential of this synergy. Materials that play a significant role in the breakdown and immobilization of pollutants include carbon nanotubes, titanium dioxide, and nano zero-valent iron. Using bacteria, fungi, and plants to create customized NPs, biological synthesis of NPs is becoming more and more popular as an environmentally benign substitute for chemical approaches. This method produces NPs with precise characteristics while reducing toxicity and utilizing natural enzymatic processes. Nanotechnology is also used in biosorption, where microbial biomass adsorbs and stabilizes pollutants, and phytoremediation, where NPs improve plants’ capacity to absorb pollutants. Although there is great potential for integrating nanotechnology into bioremediation, there are still obstacles to overcome. However, challenges such as NPs toxicity, potential ecological risks, and issues of large-scale applicability remain critical hurdles. Future research must focus on designing biocompatible and sustainable nanomaterials, developing scalable remediation systems, and ensuring biosafety standards to translate laboratory success into real-world applications. This integrated approach holds immense potential for sustainable environmental management and long-term ecosystem restoration.

Sneha Verma, Nidhi Srivastava, Anurag Rawat et al. · 0 citations
Open access 2026

Microbial consortia: Nature’s collaborative strategy for agricultural sustainability

The soil ecology is negatively impacted by the overuse of chemical fertilizers worldwide, which goes beyond crop and soil threshold limitations. Thus, by employing soil microbes as a source of fertilizers, farmers are currently transitioning from agrochemical to agro-biotechnological methods. For the past few decades, soil microbial populations have been viewed as the key component of sustainable farming techniques in industrialized nations. In addition to maintaining biogeochemical cycles and the general climatic balance of the Earth system, research has unequivocally demonstrated the critical role that interactions and activities of soil microorganisms play in promoting plant growth, improving soil health, and sustaining agricultural productivity. Beneficial microbial strains, such as bacteria, fungus, and algae that are integrated into appropriate carrier materials to enable their application and mobilization in the soil are referred to as biofertilizers. It mineralizes the organic materials in the soil and fixes nitrogen from the atmosphere. Inoculants for biofertilizers might be unique to a single species or a mixture of many strains that are compatible. The symbiotic relationships between two or more compatible microbial strains are known as microbial consortiums. Compared to single-strain inoculants, a microbial consortium significantly increases crop and soil productivity under high stress. Thus, the greatest way to establish sustainable agriculture practices globally is through consortiums and microbial fertilizers.

Rajeshwari Negi, Ajar Nath Yadav · 0 citations