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Qudrat Ullah

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Review Open access Sep 2026

Toxicological risks of industrial waste in agricultural soils for food safety and environmental sustainability

Industrialization has significantly increased the productivity of agriculture but industrial wastes have also increased the contamination of agricultural soils. This is an increasing threat to the food safety, the stability of ecosystems and human health. Certain industrial by-products can provide short-term benefits to soil fertility and crop yields but can also introduce hazardous contaminants to agroecosystems, including heavy metals, persistent organic pollutants (POPs), microplastics, per- and polyfluoroalkyl substances (PFAS), and engineered nanoparticles. This review critically synthesizes the global evidence of sources, transport pathways, environmental fate and transfer to the food chain of industrial contaminants in agricultural soils. It emphasizes the paradox of high crop yields in spite of the clandestine build-up of toxic substances that deteriorate soil health, microbial diversity, crop safety and the long term sustainability of agriculture. The major challenges are poor management of industrial waste, lack of monitoring systems, interactions among pollutants, weak regulatory frameworks and limited knowledge about emerging contaminants under changing climatic conditions. The review also includes integrated mitigation measures such as sustainable waste management, innovative soil remediation techniques, phytoremediation, biochar use, precision agriculture and other stronger environmental policies to reduce the accumulation of contaminants and human exposure. Future perspectives emphasize the need for high-throughput monitoring tools, remote sensing, biosensors, digital soil mapping, improved risk assessment frameworks, and interdisciplinary research to better understand contaminant dynamics and develop resilient soil management strategies. In summary, the review emphasizes that sustainable agriculture should be assessed not only by crop productivity but also by soil health, environmental integrity and food safety. In the context of an increasingly industrialized world it is crucial to take a holistic and integrated approach combining scientific innovation with efficient policy implementation and continuous environmental surveillance for the protection of agricultural ecosystems and sustainable food production.

M. Hayat, M. Mahmud, Nuzhat Tabassum Muniza et al. · 0 citations
Review Open access Sep 2026

Mechanistic role of biochar as a geobiochemical amendment: Mitigating abiotic stress and enhancing soil–plant interactions

Abiotic stressors, including drought, salinity, and heavy metal contamination, pose escalating threats to global food security, challenges further exacerbated by climate change and progressive soil degradation. As a strategic geochemical amendment, biochar is increasingly proposed to enhance soil resilience and agricultural sustainability, directly supporting sustainable development goal (SDG) 2 (Zero Hunger) and SDG 13 (Climate Action). This review critically evaluates biochar in stress mitigation, focusing on production principles, soil physicochemical adjustments, and changes in the soil‐plant microbiome and soil–plant–microbe interactions. Specifically, we synthesize data demonstrating biochar's multifaceted efficacy: regulating ion homeostasis to reduce Na + uptake by 20%–40% under saline conditions, enhancing water use efficiency by 15%–30% in arid environments, and immobilizing heavy metals to reduce cadmium (Cd) accumulation by 25%–50%. These synergistic soil–plant interactions further contribute to SDG 6 (Clean Water and Sanitation) and SDG 15 (Life on Land). However, significant challenges remain regarding feedstock variability, dosage optimization, and long‐term field stability. Furthermore, performance discrepancies under combined multi‐stress scenarios underscore the urgent need for standardized biochar formulations. Integrating biochar into precision frameworks offers a promising geobiochemical frontier for modulating multi‐stress crop resilience and shifting soil–plant–microbe dynamics toward climate‐adaptive landscapes. Such advancements are essential for ensuring global food security for a projected population of 9.7 billion by 2050.

Waqas Haider, Qudrat Ullah, M. Qasim et al. · 0 citations

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