Bacillus subtilis: A plant-growth promoting rhizobacterium that also impacts biotic stress

被引:438
|
作者
Hashem, Abeer [1 ,2 ]
Tabassum, Baby [3 ]
Abd Allah, Elsayed Fathi [4 ]
机构
[1] King Saud Univ, Coll Sci, Bot & Microbiol Dept, POB 2460, Riyadh 11451, Saudi Arabia
[2] ARC, Plant Pathol Res Inst, Mycol & Plant Dis Survey Dept, Giza, Egypt
[3] Govt Raza PG Coll, Dept Zool, Toxicol Lab, Rampur, UP, India
[4] King Saud Univ, Coll Food & Agr Sci, Plant Prod Dept, POB 2460, Riyadh 11451, Saudi Arabia
关键词
Rhizobacteria; Bacillus subtilis; Biocontrol potential; Biocontrol mechanism; Biotic stress; Abiotic stress; BIOLOGICAL-CONTROL; BIOFILM FORMATION; SHEATH BLIGHT; LIPOPEPTIDES; CHEMOTAXIS; BIOCONTROL; RHIZOSPHERE; RESISTANCE; BACTERIA; ROOTS;
D O I
10.1016/j.sjbs.2019.05.004
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Plants encounter many biotic agents, such as viruses, bacteria, nematodes, weeds, and arachnids. These entities induce biotic stress in their hosts by disrupting normal metabolism, and as a result, limit plant growth and/or are the cause of plant mortality. Some biotic agents, however, interact symbiotically or synergistically with their host plants. Some microbes can be beneficial to plants and perform the same role as chemical fertilizers and pesticides, acting as a biofertilizer and/or biopesticide. Plant growth promoting rhizobacteria (PGPR) can significantly enhance plant growth and represent a mutually helpful plantmicrobe interaction. Bacillus species are a major type of rhizobacteria that can form spores that can survive in the soil for long period of time under harsh environmental conditions. Plant growth is enhanced by PGPR through the induction of systemic resistance, antibiosis, and competitive omission. Thus, the application of microbes can be used to induce systemic resistance in plants against biotic agents and enhance environmental stress tolerance. Bacillus subtilis exhibits both a direct and indirect biocontrol mechanism to suppress disease caused by pathogens. The direct mechanism includes the synthesis of many secondary metabolites, hormones, cell-wall-degrading enzymes, and antioxidants that assist the plant in its defense against pathogen attack. The indirect mechanism includes the stimulation of plant growth and the induction of acquired systemic resistance. Bacillus subtilis can also solubilize soil P, enhance nitrogen fixation, and produce siderophores that promote its growth and suppresses the growth of pathogens. Bacillus subtilis enhances stress tolerance in their plant hosts by inducing the expression of stress-response genes, phytohormones, and stress-related metabolites. The present review discusses the activity of B. subtilis in the rhizosphere, its role as a root colonizer, its biocontrol potential, the associated mechanisms of biocontrol and the ability of B. subtilis to increase crop productivity under conditions of biotic and abiotic stress. (C) 2019 The Authors. Production and hosting by Elsevier B.V.
引用
收藏
页码:1291 / 1297
页数:7
相关论文
共 50 条
  • [1] Effect of Using Bacillus Subtilis as Plant-growth-promoting Rhizobacterium on Hemp Yield and Quality
    Ebel, Roland
    [J]. HORTSCIENCE, 2022, 57 (09) : S112 - S113
  • [2] Agroindustry by-products as a carrier resource for plant-growth-promoting rhizobacterium, Bacillus subtilis
    Aparna Gunjal
    Balasaheb Kapadnis
    Namdeo Pawar
    [J]. Journal of Material Cycles and Waste Management, 2012, 14 : 274 - 280
  • [3] Agroindustry by-products as a carrier resource for plant-growth-promoting rhizobacterium, Bacillus subtilis
    Gunjal, Aparna
    Kapadnis, Balasaheb
    Pawar, Namdeo
    [J]. JOURNAL OF MATERIAL CYCLES AND WASTE MANAGEMENT, 2012, 14 (03) : 274 - 280
  • [4] Growth promotion of apple seedlings by plant growth promoting rhizobacterium (Bacillus megaterium)
    Shirkot, CK
    Sharma, N
    [J]. PROCEEDINGS OF THE VIITH INTERNATIONAL SYMPOSIUM ON TEMPERATE ZONE FRUITS IN THE TROPICS AND SUBTROPICS, PT 2, 2005, (696): : 157 - 162
  • [5] Genome Sequence of the Plant Growth-Promoting Rhizobacterium Bacillus sp Strain 916
    Wang, Xiaoyu
    Luo, Chuping
    Chen, Zhiyi
    [J]. JOURNAL OF BACTERIOLOGY, 2012, 194 (19) : 5467 - 5468
  • [6] Induction of plant defense enzymes by plant growth-promoting rhizobacterium Bacillus subtilis IN937b in relation to suppression of Phytophthora blight on squash
    Mo, X.
    Zhang, S.
    [J]. PHYTOPATHOLOGY, 2012, 102 (07) : 81 - 81
  • [7] Root Transcriptional and Metabolic Dynamics Induced by the Plant Growth Promoting Rhizobacterium (PGPR) Bacillus subtilis Mbi600 on Cucumber Plants
    Samaras, Anastasios
    Kamou, Nathalie
    Tzelepis, Georgios
    Karamanoli, Katerina
    Menkissoglu-Spiroudi, Urania
    Karaoglanidis, George S.
    [J]. PLANTS-BASEL, 2022, 11 (09):
  • [8] Transcriptome analysis of Arabidopsis colonized by a plant-growth promoting rhizobacterium reveals a general effect on disease resistance
    Cartieaux, F
    Thibaud, MC
    Zimmerli, L
    Lessard, P
    Sarrobert, C
    David, P
    Gerbaud, A
    Robaglia, C
    Somerville, S
    Nussaume, L
    [J]. PLANT JOURNAL, 2003, 36 (02): : 177 - 188
  • [9] Plant methyl salicylate induces defense responses in the rhizobacterium Bacillus subtilis
    Kobayashi, Kazuo
    [J]. ENVIRONMENTAL MICROBIOLOGY, 2015, 17 (04) : 1365 - 1376
  • [10] Induction of drought tolerance in tomato upon the application of ACC deaminase producing plant growth promoting rhizobacterium Bacillus subtilis Rhizo SF 48
    Gowtham, H. G.
    Singh, Brijesh S.
    Murali, M.
    Shilpa, N.
    Prasad, Melvin
    Aiyaz, Mohammed
    Amruthesh, K. N.
    Niranjana, S. R.
    [J]. MICROBIOLOGICAL RESEARCH, 2020, 234 (234)