Lenon Romano Modesto, Ignacio Baquedano, Ezgi Öğün Ramalhete, Silvia Mena, Mukesh Sharma, Pablo Rodríguez-Núñez, I. N. Danilov, Dibyojyoty Nath, Natasha Tait, Ignacio Javier Moro, Uliana Reutina, Işıl Yücel, Snežana Vučetić, Alicia Prieto, David Colliaux, Jorge Barriuso, Gonzalo Guirado, Ioannis Ieropoulos, Xavier Muñoz‐Berbel, Jovana Grahovac, Peter Hanappe, Naroa Uría, Markus Schmidt, Rachel Armstrong
Electroactive microorganisms (EAMs) can be incorporated into active soil management as a strategy for regenerative agriculture. Through extracellular electron transfer, they drive nutrient cycling, biofertilization, and pollutant degradation while also producing bioelectricity. Soil microbial fuel cells exemplify their use as self-powered biosensors and platforms for bioremediation. Reframing soils as dynamic bioelectronic interfaces, EAMs enable nutrient recovery, waste valorisation, and resilience. The concept of "gardening microorganisms" integrates them as programmable agents within managed ecosystems. By coupling microbial consortia engineering, bioelectronic scaffolds, and circular nutrient recovery, soils work as intelligent, self-regulating systems. This review positions EAMs as a tool in soil management for shaping climate-smart, regenerative agroecosystems that sustain productivity and ecological balance.