Aug 2026· Sustainable Microbiology· Vol 3· 2 citations· 38 references
Medicine
TL;DR
A risk-proportional framework for the responsible deployment of microbial inoculants grounded in release-based stewardship is proposed, providing a scalable and scientifically grounded pathway to balance innovation and safety, enabling microbial technologies to contribute to soil restoration and climate-resilient agriculture.
Abstract
Abstract Global soil degradation and increasing reliance on chemical inputs threaten agricultural sustainability, driving interest in microbial inoculants as tools for soil restoration. These biological products have the potential to enhance nutrient cycling, improve soil structure, and support plant resilience, but their environmental release raises important safety and stewardship considerations. Here, we propose a risk-proportional framework for the responsible deployment of microbial inoculants grounded in release-based stewardship. The framework integrates genome-resolved strain identification, exclusionary hazard screening, bioassay-based risk triage, ecological testing under realistic conditions, and monitored field deployment. Drawing on evidence from microbial ecology and invasion biology, we highlight how inoculants can alter resident microbial communities, influence ecosystem function, and, in some cases, facilitate gene flow, underscoring the need for risk assessment. We further outline a federated, genome-informed data infrastructure to support traceability, cross-jurisdiction learning, and adaptive management. Together, this approach provides a scalable and scientifically grounded pathway to balance innovation and safety, enabling microbial technologies to contribute to soil restoration and climate-resilient agriculture.
Soil degradation caused by intensive land use, pollution, and climate stress threatens food production and ecosystem function. Single-strain inoculants often perform inconsistently because they do not persist or compete well in resident soil microbiomes. Synthetic microbial communities (SynComs) combine complementary m...
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Rhizoremediation exploits interactions among plant roots, root-associated microorganisms and soil processes to transform, remove or immobilize contaminants. Yet biological activity under controlled conditions often does not translate into reproducible performance in heterogeneous field soils. This critical narrative re...
A. Bodor, G. Feigl· Reviews in Environmental Sci...· 0 citations
The rhizosphere is a dynamic interface among plant roots, soil, and microbiota, where the resident microbial community shapes plant health, ecosystem resistance and resilience, nutrient cycling, and sustainable crop production. Yet the limited efficacy of conventional microbial inoculants under field conditions - refle...
Summary Agriculture in the United Arab Emirates supports food system resilience but operates under extreme heat, water scarcity, salinity, and persistent pest pressure. This systematized narrative review evaluates biological control and integrated pest management (IPM) as alternatives to intensive pesticide use, focusi...
. Microbial diversity and function are central components of soil quality and overall soil health. When ecological conditions shift-whether because of farming practices or contamination-soil microbial communities can undergo structural and functional changes that ultimately alter soil fertility and ecosystem performanc...
L. Canfora, Antonella Lamontanara, Andrea Manfredini et al.· International Agrophysics· 0 citations
Soil is home to a vast array of microorganisms that are essential to ecosystem multifunctionality (EMF), which includes climate regulation, organic matter breakdown, and nutrient cycling. This literature review summarizes the state of knowledge regarding how soil microbial diversity affects agricultural ecosystem servi...
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