Bacillus: A Biological Tool for Crop Improvement through Bio-Molecular Changes in Adverse Environments

Bacillus: биологический инструмент повышения продуктивности сельскохозяйственных культур посредством биомолекулярных изменений в неблагоприятных условиях
Ramalingam Radhakrishnan, Abeer Hashem, Elsayed Fathi Abd Allah
2017-09-06

ACC deaminaseBacillusabiotic and biotic stressphytohormone metabolismplant growth-promoting bacteria
Crop productivity is affected by environmental and genetic factors. Microbes that are beneficial to plants are used to enhance the crop yield and are alternatives to chemical fertilizers and pesticides. Pseudomonas and Bacillus species are the predominant plant growth-promoting bacteria. The spore-forming ability of Bacillus is distinguished from that of Pseudomonas, and members of this genus also survive for a long time under unfavorable environmental conditions. Bacillus spp. secrete several metabolites that trigger plant growth and prevent pathogen infection. Limited studies have been conducted to understand the physiological changes that occur in crops in response to Bacillus spp. to provide protection against adverse environmental conditions. This review describes the current understanding of Bacillus-induced physiological changes in plants as an adaptation to abiotic and biotic stresses. During water scarcity, salinity and heavy metal accumulate in soil, and Bacillus spp. produce exopolysaccharides and siderophores, which prevent the movement of toxic ions and adjust the ionic balance and water transport in plant tissues while controlling the pathogenic microbial population. In addition, the synthesis of indole-3-acetic acid, gibberellic acid and 1-aminocyclopropane-1-carboxylate (ACC) deaminase by Bacillus regulates the intracellular phytohormone metabolism and increases plant stress tolerance. Cell-wall-degrading substances, such as chitosanase, protease, cellulase, glucanase, lipopeptides and hydrogen cyanide, from Bacillus spp. damage the pathogenic bacteria, fungi, nematodes, viruses and pests to control their populations in plants and agricultural lands. The normal plant metabolism is affected by unfavorable environmental stimuli, which suppress crop growth and yield. Abiotic and biotic stress factors that have detrimental effects on crops are mitigated by Bacillus-induced physiological changes, including the regulation of water transport, nutrient up-take and the activation of the antioxidant and defense systems. Bacillus association stimulates plant immunity against stresses by altering stress-responsive genes, proteins, phytohormones and related metabolites. This review describes the beneficial effect of Bacillus spp. on crop plants, which improves plant productivity under unfavorable climatic conditions, and the current understanding of the mitigation mechanism of Bacillus spp. in stress-tolerant and/or stress-resistant plants.
1
Bacillus enzymes and metabolites, including chitosanase, protease, cellulase, glucanase, lipopeptides, and hydrogen cyanide, suppress pathogenic bacteria, fungi, nematodes, viruses, and pests.
2
Bacillus species are promising alternatives to chemical fertilizers and pesticides because they promote plant growth and suppress pathogens.
3
Bacillus spores enable long-term survival under unfavorable conditions, distinguishing these bacteria from predominantly non-spore-forming Pseudomonas.
4
Bacillus-derived indole-3-acetic acid, gibberellic acid, and ACC deaminase regulate plant hormone metabolism and enhance tolerance to environmental stress.
5
Under drought, salinity, and heavy-metal stress, Bacillus-produced exopolysaccharides and siderophores help restrict toxic-ion movement and regulate plant ionic balance and water transport.

crops and plants exposed to abiotic and biotic stresses

Bacillus-induced physiological and biochemical changes that enhance plant stress tolerance, growth, and protection from pathogens

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2017-09-06
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Ramalingam Radhakrishnan
Abeer Hashem
Elsayed Fathi Abd Allah
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