{"id":33712,"date":"2026-06-28T16:07:00","date_gmt":"2026-06-28T16:07:00","guid":{"rendered":"https:\/\/veganic.bio\/?p=33712"},"modified":"2026-07-22T20:28:28","modified_gmt":"2026-07-22T20:28:28","slug":"what-are-rhizobacteria-pgpr-and-how-they-improve-soil-fertility","status":"publish","type":"post","link":"https:\/\/veganic.bio\/en-in\/what-are-rhizobacteria-pgpr-and-how-they-improve-soil-fertility\/","title":{"rendered":"What Are Rhizobacteria (PGPR) and How They Improve Soil Fertility"},"content":{"rendered":"<p>The rhizosphere \u2014 the narrow zone of soil directly influenced by root exudates \u2014 is one of the most biologically active environments on Earth. Within this zone, plant roots and soil microorganisms engage in complex, mutually beneficial exchanges that shape plant nutrition, health and resilience. Among the most agronomically significant members of the rhizosphere microbiome are <strong>plant growth-promoting rhizobacteria<\/strong>, universally abbreviated as PGPR.<\/p>\n<p>These beneficial bacteria colonise the root surface (rhizoplane) and surrounding soil, producing a range of compounds and performing metabolic functions that directly and indirectly promote plant growth, improve nutrient availability and enhance resistance to biotic and abiotic stress. Understanding their mechanisms of action and how to deploy them effectively is increasingly central to sustainable crop production strategy.<\/p>\n<h2>What Are PGPR? Definition and Classification<\/h2>\n<p>PGPR are a functionally defined group of soil bacteria that, when colonising the rhizosphere, exert measurable positive effects on plant growth and development. They are not a taxonomic group \u2014 PGPR are found across multiple bacterial genera, including <em>Bacillus<\/em>, <em>Pseudomonas<\/em>, <em>Azospirillum<\/em>, <em>Rhizobium<\/em>, <em>Burkholderia<\/em>, <em>Enterobacter<\/em> and <em>Paenibacillus<\/em>, among others.<\/p>\n<p>They are broadly classified by their mechanisms:<\/p>\n<ul>\n<li><strong>Biofertilisers<\/strong>: PGPR that increase nutrient availability through nitrogen fixation or phosphorus solubilisation<\/li>\n<li><strong>Phytostimulators<\/strong>: PGPR that produce phytohormones (auxins, cytokinins, gibberellins) that directly stimulate plant growth<\/li>\n<li><strong>Stress controllers<\/strong>: PGPR that produce ACC deaminase, reducing ethylene levels in stressed plants and enabling normal growth under drought, salinity or heavy metal stress<\/li>\n<li><strong>Biopesticides<\/strong>: PGPR that produce antibiotics, siderophores or lytic enzymes that suppress soil-borne pathogens<\/li>\n<\/ul>\n<p>Many commercially relevant PGPR strains operate through multiple mechanisms simultaneously, making single-mechanism classification an oversimplification in practice.<\/p>\n<h2>Mechanism 1: Biological Nitrogen Fixation<\/h2>\n<p>Atmospheric nitrogen (N\u2082) constitutes 78% of air but is unavailable to plants in this form. Biological nitrogen fixation (BNF) \u2014 the enzymatic reduction of N\u2082 to ammonia (NH\u2083) by the nitrogenase enzyme complex \u2014 is performed exclusively by prokaryotes. PGPR capable of BNF include both symbiotic species (principally <em>Rhizobium<\/em> and related genera, which fix nitrogen inside root nodules of legumes) and free-living or associative species.<\/p>\n<h3>Associative nitrogen fixation in non-legume crops<\/h3>\n<p><em>Azospirillum brasilense<\/em>, <em>Herbaspirillum seropedicae<\/em> and <em>Gluconacetobacter diazotrophicus<\/em> fix nitrogen in close association with grass crops including wheat, maize, rice and sugarcane without forming nodules. The quantity of nitrogen fixed varies widely \u2014 5\u201340 kg N ha\u207b\u00b9 season\u207b\u00b9 \u2014 depending on soil conditions, carbon availability and the efficiency of the specific strain-crop combination.<\/p>\n<p>While associative BNF rarely substitutes entirely for mineral nitrogen fertilisation in high-yield systems, it can meaningfully reduce nitrogen fertiliser requirements and improve nitrogen use efficiency \u2014 particularly valuable under nitrogen price pressure or in low-input and organic systems.<\/p>\n<h2>Mechanism 2: Phosphorus Solubilisation<\/h2>\n<p>Phosphorus is abundant in most agricultural soils in total terms, but the majority is present in insoluble organic or inorganic forms unavailable to plants. Phosphate-solubilising bacteria (PSB) \u2014 a major functional group within PGPR \u2014 release soil-bound phosphorus through two primary mechanisms:<\/p>\n<h3>Organic acid production<\/h3>\n<p>PSB genera including <em>Bacillus<\/em> spp. and <em>Pseudomonas fluorescens<\/em> \u2014 the active strains present in Veganic&#8217;s MicroGea\u00ae technology (REGESOOR\u00ae, ESCUDOOR\u00ae) \u2014 secrete low-molecular-weight organic acids \u2014 gluconic acid, citric acid, oxalic acid, malic acid \u2014 that acidify the root zone and dissolve inorganic calcium, aluminium and iron phosphates. This is particularly effective in alkaline and calcareous soils where phosphate fixation is a major constraint.<\/p>\n<h3>Phosphatase enzyme production<\/h3>\n<p>Phytase and phosphatase enzymes secreted by PSB mineralise organic phosphorus fractions (phytate, nucleotides, phospholipids) in soil organic matter, releasing plant-available inorganic phosphate. In soils with high organic matter content, enzymatic phosphorus mineralisation can contribute substantially to plant phosphorus supply \u2014 often more than inorganic solubilisation.<\/p>\n<p>Field trials with PSB inoculants in wheat, maize and soybean consistently demonstrate 10\u201325% reductions in mineral phosphorus fertiliser requirements without yield loss when effective strains are applied under appropriate soil conditions.<\/p>\n<h2>Mechanism 3: Phytohormone Production<\/h2>\n<h3>Indole-3-acetic acid (IAA) and root architecture<\/h3>\n<p>The most extensively documented phytohormone produced by PGPR is indole-3-acetic acid (IAA), the primary natural auxin. IAA-producing rhizobacteria \u2014 including numerous <em>Bacillus<\/em>, <em>Pseudomonas<\/em> and <em>Azospirillum<\/em> strains \u2014 stimulate root hair elongation, lateral root initiation and primary root growth at low concentrations. The result is a root system with significantly greater surface area and soil exploration capacity.<\/p>\n<p>This IAA-mediated root architecture improvement translates directly into enhanced nutrient and water uptake \u2014 the root system effect amplifies the impact of the other PGPR mechanisms, creating a positive feedback loop between biological activity and plant nutrition.<\/p>\n<h3>Cytokinins and gibberellins<\/h3>\n<p>Some PGPR strains produce cytokinins that stimulate cell division in shoot meristems, promoting early canopy development. Gibberellin-producing strains \u2014 particularly among <em>Bacillus<\/em> and <em>Azospirillum<\/em> species \u2014 can accelerate germination, seedling elongation and early vegetative growth, effects that are particularly relevant for crops planted in cold soils or under short growing seasons.<\/p>\n<h2>Mechanism 4: ACC Deaminase and Stress Tolerance<\/h2>\n<p>One of the most practically significant PGPR mechanisms \u2014 particularly in the context of climate variability \u2014 is the production of 1-aminocyclopropane-1-carboxylate (ACC) deaminase. ACC is the immediate precursor of ethylene in plants, and ethylene production increases sharply under drought, salinity, flooding, heavy metals and pathogen attack, triggering stress responses that include growth inhibition, leaf senescence and root growth arrest.<\/p>\n<p>PGPR that produce ACC deaminase cleave ACC before it can be converted to ethylene, effectively buffering the stress-induced ethylene surge. Plants inoculated with ACC deaminase-producing PGPR maintain better root growth, higher leaf water potential and less premature senescence under water and salt stress \u2014 consistently demonstrated in tomato, canola, wheat and legumes across multiple research programmes.<\/p>\n<h2>PGPR and Soil-Borne Disease Suppression<\/h2>\n<p>Many PGPR strains produce compounds with direct antifungal or antibacterial activity against soil-borne pathogens. <em>Bacillus subtilis<\/em>, <em>B. amyloliquefaciens<\/em> and <em>Pseudomonas fluorescens<\/em> strains produce cyclic lipopeptides (iturin, fengycin, surfactin), volatile compounds (2,3-butanediol) and siderophores that suppress <em>Fusarium<\/em>, <em>Pythium<\/em>, <em>Rhizoctonia<\/em> and <em>Sclerotinia<\/em> in the root zone.<\/p>\n<p>Additionally, PGPR can trigger <strong>induced systemic resistance (ISR)<\/strong> \u2014 a whole-plant defence priming mechanism that enhances resistance to foliar pathogens and insects through jasmonate\/ethylene-dependent pathways, without the yield cost associated with constitutive defence expression.<\/p>\n<h2>How to Apply PGPR Inoculants Effectively<\/h2>\n<h3>Formulation types and their practical implications<\/h3>\n<p>PGPR are commercially available in several formulation types, each with different shelf-life, handling requirements and field performance characteristics:<\/p>\n<ul>\n<li><strong>Peat-based powder inoculants<\/strong>: highest cell viability, 2\u20136 month shelf life under refrigeration, used for seed treatment and soil application<\/li>\n<li><strong>Liquid suspensions<\/strong>: convenient application via sprayers and drip irrigation, shorter shelf life, sensitive to UV and temperature<\/li>\n<li><strong>Granular formulations<\/strong>: suitable for in-furrow application, extended shelf life, good for slow-release delivery in the root zone<\/li>\n<li><strong>Wettable powders<\/strong>: versatile, suitable for drench or fertigation, intermediate shelf life<\/li>\n<\/ul>\n<h3>Application methods and compatibility<\/h3>\n<p>PGPR inoculants should be applied as close to the root zone as possible at sowing or transplanting. Key compatibility considerations:<\/p>\n<ul>\n<li>Avoid tank-mixing with fungicide seed treatments that have broad bactericidal activity (thiram, captan) \u2014 apply PGPR and fungicide separately or use polymer seed coatings<\/li>\n<li>Do not apply in water containing chlorine concentrations above 0.5 ppm \u2014 use unchlorinated water for mixing liquid formulations<\/li>\n<li>Avoid soil applications immediately before or after high-rate copper or zinc applications that suppress bacterial populations<\/li>\n<li>Store formulations at 4\u20138\u00b0C and apply within recommended shelf life \u2014 viability loss is the most common cause of PGPR inoculant failure<\/li>\n<\/ul>\n<h2>Conclusion<\/h2>\n<p><strong>Rhizobacteria PGPR<\/strong> represent one of the most scientifically substantiated and practically scalable tools for improving soil fertility and crop performance within sustainable production systems. Their multi-mechanism action \u2014 encompassing nitrogen fixation, phosphorus mobilisation, phytohormone production, stress tolerance and disease suppression \u2014 positions them not as a single-effect biostimulant but as a systems-level intervention in rhizosphere biology.<\/p>\n<p>For agronomists and crop advisors, PGPR inoculants are most effective when selected for strain specificity to the target crop, applied correctly and integrated into a broader programme that supports soil biological health \u2014 including reduced tillage, organic matter inputs and judicious use of soil-applied pesticides and mineral fertilisers that can suppress the native and applied microbiome.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>The rhizosphere \u2014 the narrow zone of soil directly influenced by root exudates \u2014 is one of the most biologically active environments on Earth. Within this zone, plant roots and soil microorganisms engage in complex, mutually beneficial exchanges that shape plant nutrition, health and resilience. Among the most agronomically significant members of the rhizosphere microbiome [&hellip;]<\/p>\n","protected":false},"author":8,"featured_media":36639,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[89,87],"tags":[],"class_list":["post-33712","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-biostimulation","category-insights"],"_links":{"self":[{"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/posts\/33712","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/users\/8"}],"replies":[{"embeddable":true,"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/comments?post=33712"}],"version-history":[{"count":3,"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/posts\/33712\/revisions"}],"predecessor-version":[{"id":35648,"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/posts\/33712\/revisions\/35648"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/media\/36639"}],"wp:attachment":[{"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/media?parent=33712"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/categories?post=33712"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/veganic.bio\/en-in\/wp-json\/wp\/v2\/tags?post=33712"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}