Pakistan Science Abstracts
Article details & metrics
No Detail Found!!
Unraveling the potential of acc deaminase-producing microbes in various agricultural stresses: current status, limitations, and recommendations
Author(s):
1. SITI HALIMAH LAREKENG: Faculty of forestry, Hasanuddin University,Jl. Perintis Kemerdekaan KM 10, Makassar ,Indonesia
2. NGADIMAN: Departement of Agricultural Microbiology, Universitas Gadjah Mada,Jl. Flora, Bulaksumur, Yogyakarta,Indonesia
3. YENI KHAIRINA: Research Center for Applied Microbiology, National Research and Innovation Agency,Jl. Raya Jakarta-Bogor Km 46, Cibinong 16911,Indonesia
4. RUMELLA SIMARMATA: Research Center for Applied Microbiology, National Research and Innovation Agency,Jl. Raya Jakarta-Bogor Km 46, Cibinong 16911,Indonesia
5. MARGARETTA CHRISTITA: Research Center for Applied Microbiology, National Research and Innovation Agency,Jl. Raya Jakarta-Bogor Km 46, Cibinong 16911,Indonesia
Abstract:
More than 50% of the main crops in the world are lost to agricultural stressors, either biotic or abiotic. It has been demonstrated that using chemical approaches to boost plant yield causes other serious problems, including a decline in soil fertility and significant health problems. While advanced plant biotechnology techniques, like genetic modification, sti ll faces ethical questions, unpredictable environmental risks, challenges in their usability and commercial viability, as well as high labour and costs. Using plant-associated microbes with 1-aminocyclopropane-1-carboxylate deaminase (ACCD) activity can be a solution to speed up plant production upon environmental stresses. They offer stress -protective responses by reducing the production of the plant stress hormone ethylene to a level that is not detrimental to plants. Furthermore, adopting ACCD-producing microbes with additional supporting traits or mixing them with other beneficial microbes in a consortium can be a promising strategy to sustain their effectiveness in practical use. This paper reviews the current research on the role of ACCD-producing microbes in increasing plant productivity under various stresses, along with their limitations and recommendations for field application.
Page(s): 791-805
Published: Journal: Pakistan Journal of Botany, Volume: 56, Issue: 2, Year: 2024
Keywords:
pathogen , drought , salinity , Waterlogging , ACCDproducing microbes
References:
[1] Abbasi S.,Sadeghi A.,Safaie N. .2020 .Streptomyces alleviate drought stress in tomato plants and modulate the expression of transcription factors ERF1 and WRKY70 genes. Sci. Hort, 265 : 109206.
[2] Rahman Abdul,N.S.N. Abdul,Hamid N.W. Abdul,Nadarajah K. .2021 .Effects of abiotic stress on soil microbiome. Int. J. Mol. Sci, 22(16) : 9036.
[3] Ali S.,Glick B.R.,C.J. Microbes: B.R. .2021 .The Foundation Stone of the Biosphere. , : 365-390.
[4] Ali S.,Kim W.C. .2018 .Plant growth promotion under water: Decrease of waterlogging-induced ACC and ethylene levels by ACC deaminase-producing bacteria. Front. Microbiol., : 1096.
[5] Ali S.,Khan M.A.,Kim W.C. .2018 .Pseudomonas veronii KJ mitigates flood stress-associated damage in Sesamum indicum L. Appl. Biol. Chem, 61(5) : 575-585.
[6] Arshad M.,Shaharoona B.,Mahmood T. .2008 .Inoculation with Pseudomonas spp., containing ACC-Deaminase partially eliminates the effects of drought stress on growth, yield, and ripening of pea (Pisum sativum L.). , 18(5) : 611-620.
[7] Babiye B.,Adamu M. .2020 .Major achievements of plant biotechnology in crop improvements. Amer. J. Life Sci., 8(5) : 102-106.
[8] Backer R.,Rokem J.S.,Lamont J.,Praslickova D.,Ricci E. .2018 .Plant growth-promoting rhizobacteria: Context, mechanisms of action, and roadmap to commercialization of biostimulants for sustainable agriculture. Front, 1473 : .
[9] Barnawal D.,Bharti N.,Maji D.,Chanotiya C.S.,Kalra A. .2014 .ACC deaminase-containing Arthrobacter protophormiae induces NaCl stress tolerance through reduced ACC oxidase activity and ethylene production resulting in improved nodulation and mycorrhization in Pisum sativum. J. Plant, 171(11) : 884-894.
[10] Batool M.,El-Badri A.M.,Hassan M.U.,Haiyun Y.,Chunyun W.,Zhenkun Y. .2022 .Drought stress in Brassica napus: Effects, tolerance mechanisms, and management strategies. J. Plant Growth Regul., 42 : 21-45.
[11] Bello V.H.,Silva F.B.,Watanabe L.F.M.,Vicentin E.,Muller C.,R.C.O. de Freitas Bueno J.C.,Santos B.R.,De Marchi B.R.,Nogueira V.A.,Yuki J.M.,Marubayashi J.M.,M.M.P. Sartori M.A.,Pavan M.,Ghanim R.,KrauseKakate R. .2021 .Detection of Bemisia tabaci Mediterranean cryptic species on soybean in São Paulo and Paraná States (Brazil) and interaction of cowpea mild mottle virus with whiteflies. Plant, 70(6) : 1508-1520.
[12] Bomle D.V.,Kiran A.,Kumar J.K.,Nagaraj L.S.,Pradeep C.K.,Ansari M.A.,Alghamdi S.,Kabrah A.,Assaggaf H.,Dablol A.S.,Murali M.,Amruthes K.N.,Udayashankar A.C.,Nirajana S.R. .2021 .Plants saline environment in perception with rhizosphere bacteria containing 1-Aminocyclopropane1-Carboxylate Deaminase. Int. J. Mol. Sci, 22(21) : 11461.
[13] Brazel A.J. and E.,Graciet A.J. and E. .2023 .Complexity of abiotic stress stimuli: Mimicking hypoxic conditions experimentally on the basis of naturally occurring environments. Methods Mol. Biol, 2642 : 23-48.
[14] Camaille M.,Fabre N.,Clément C.,Barka E.A. .2021 .Advances in wheat physiology in response to drought and the role of plant growth promoting rhizobacteria to trigger drought tolerance. Microorganisms, 9(4) : 687.
[15] Chandra D.,Srivastava R.,Sharma A.K. .2018 .Influence of IAA and ACC deaminase producing fluorescent Pseudomonads in alleviating drought stress in wheat (Triticum aestivum). Agric. Res., 7(3) : 290-299.
[16] Chandra D.,Srivastava R.,Gupta V.V.S.R.,C.M.M. Franco A.K.,Sharma A.K. .2019 .Evaluation of acc-deaminaseproducing rhizobacteria to alleviate water-stress impacts in wheat (Triticum aestivum L.) plants. , 65(5) : 387-403.
[17] Chaudhary P.,M. Xu L.,Ahamad A.,Chaudhary G.,Kumar B.S.,Adeleke B.S. .2023 .Application of synthetic consortia for improvement of soil fertility, pollution remediation, and agricultural productivity: a review. Agronomy, 13(3) : 643.
[18] Chinnaswamy A.,de la Peña A.,Stoll J.,Bravo A.,Rincón A. .2018 .A nodule endophytic Bacillus megaterium strain isolated from Medicago polymorpha enhances growth, promotes nodulation by Ensifer medicae and alleviates salt stress in alfalfa plants. , 172(3) : 295-308.
[19] Dagar J.C.,Yadav R.K.,Awtar S.,Singh N.T.,J.C. N.T.,Yadav R.K.,Sharma P.C. .2019 .Historical perspectives and dynamics of nature, extent, classification and management of salt-affected soils and waters. , : 3-52.
[20] Damodaran T.,Mishra V.K.,Jha S.K.,Gupta G.,Gopal R. .2019 .Identification of rhizosphere bacterial diversity with promising salt tolerance, PGP traits and their exploitation for seed germination enhancement in sodic soil. Agric. Res., 8(1) : 36-43.
[21] Danish S.,Zafar-Ul-Hye M.,Mohsin F.,Hussain M. .2020 .ACC-deaminase producing plant growth promoting rhizobacteria and biochar mitigate adverse effects of drought stress on maize growth. PloS One, 15(4) : 100241.
[22] Dif G.,Belaouni H.A.,Goudjal Y.,Yekkour A.,Djemouai N.,Zitouni A. .2021 .Potential for plant growth promotion of Kocuria arsenatis Strain ST19 on tomato under salt stress conditions. S. Afr. J. Bot., 138 : 94-104.
[23] Donate-Correa J.,Domínguez-Pimentel V.,Méndez-Pérez M.L.,Muros-De-Fuentes M.,Mora-Fernández C.,Navarro-González J.F. .2014 .Selective vitamin D receptor activation as anti-inflammatory target in chronic kidney disease. Mediators Inflamm, : 670475.
[24] Dubois M.,Inzé D. .2018 .The pivotal role of ethylene in plant growth. Trends Plant Sci., 23(4) : 311-323.
[25] Duca D.R.,Glick B.R. .2020 .Indole-3-Acetic acid biosynthesis and its regulation in plant-associated bacteria. Appl, 104 : 8607-8619.
[26] Egamberdieva D.,Alimov J.,Shurigin V.,Alaylar B.,Wirth S.,Bellingrath-Kimura S.D. .2022 .Diversity and plant growth-promoting ability of endophytic, halotolerant bacteria associated with Tetragonia tetragonioides (Pall.) kuntze. , 11(1) : 49.
[27] Etesami F.,Noori F.,M. F.,Etesami H.,Kumar V. .2019 .Soil Salinity as a challenge for sustainable agriculture and bacterial-mediated alleviation of salinity stress in crop plants. Saline Soil-based Agriculture by Halotolerant Microorganisms, : 1-22.
[28] Fadiji A.E.,Santoyo G.,Yadav A.N.,Babalola O.O. .2022 .Efforts towards overcoming drought stress in crops: Revisiting the mechanisms employed by plant growthpromoting bacteria. Front, 13 : 962427.
[29] FAO ,IFAD .2022 .Repurposing food and agricultural policies to make healthy diets more affordable. , : .
[30] Farwell A,Vesely S.,Nero V.,Rodriguez H.,McCormack K.,Shah S.,Dixon D.G.,Glick B.R. .2007 .Tolerance of transgenic canola plants (Brassica napus) amended with plant growth-promoting bacteria to flooding stress at a metalcontaminated field site. Environ, 147(3) : 540-545.
[31] Ferreira ,C.M.H. C.A.,Sousa I.,Sanchis-Pérez S.,López-Rayo M.T.,Barros H.M.V.M.,Soares J.J.,Lucena J.J. .2019 .Calcareous soil interactions of the iron (III) chelates of DPH and Azotochelin and its application on amending iron chlorosis in soybean (Glycine max). Sci. Total, 647 : 1586-1593.
[32] Forni C.,Duca D.,Glick B.R. .2017 .Mechanisms of plant response to salt and drought stress and their alteration by rhizobacteria. Plant Soil, 410(1-2) : 335-356.
[33] Gamalero E.,Glick B.R. .2022 .Recent advances in bacterial amelioration of plant drought and salt stress. Biology, 11(3) : 437.
[34] Gao X.,Li T.,Liu W.,Zhang Y.,Shang D.,Gao Y.,Qi Y.,Qiu L. .2020 .Enhancing the 1-Aminocyclopropane-1- Carboxylate metabolic rate of Pseudomonas sp. UW4 Intensifies Chemotactic Rhizocompetence. Microorganisms, 8(1) : 71.
[35] Glick B.R. .2004 .Bacterial ACC deaminase and the alleviation of plant stress. Adv. Appl, 56 : 291-312.
[36] Glick B.R. .2014 .Bacteria with ACC deaminase can promote plant growth and help to feed the world. Microbiol. Res., 169(1) : 30-39.
[37] Glick B.R.,Nascimento F.X. .2021 .Pseudomonas 1- Aminocyclopropane-1-Carboxylate (ACC) Deaminase and its role in beneficial plant-microbe interactions. Microorganisms, 9 : 2467.
[38] Glick B.R.,Duan J. .2007 .Promotion of plant growth by ACC deaminase-producing soil bacteria. Eur. J. Plant Pathol, 119(3) : 329-339.
[39] Gontia-Mishra S.,Sasidharan S.,Tiwari S. .2014 .Recent developments in use of 1-aminocyclopropane-1-carboxylate (ACC) deaminase for conferring tolerance to biotic and abiotic stress. , 36(5) : 889-898.
[40] Gowtham S.B.,Singh N.,Shilpa M.,Aiyaz K.,Nataraj A.C.,Udayashankar K.N.,Amruthesh M.,Murali P.,Poczai A.,Gafur A. .2022 .Insight into recent progress and perspectives in improvement of antioxidant machinery upon PGPR augmentation in plants under drought stress: A review. Antioxidants, 11(9) : 1763.
[41] Grichko V.P.,Glick B.R. .2001 .Amelioration of flooding stress by ACC deaminase-containing plant growthpromoting bacteria. Plant, 39(1) : 11-17.
[42] Gupta A,Rai S.,Bano A.,Sharma S.,Kumar M.,Binsuwaidan R. .2022 .ACC deaminase produced by PGPR mitigates the adverse effect of osmotic and salinity stresses in Pisum sativum through modulating the antioxidants activities. Plants, 11(24) : 3419.
[43] Gupta S.,Pandey S. .2019 .ACC deaminase producing bacteria with multifarious plant growth promoting traits alleviates salinity stress in french bean (Phaseolus vulgaris) Plants. , 10 : 1506.
[44] Gupta S.,Pandey S. .2020 .Enhanced salinity tolerance in the common bean (Phaseolus vulgaris) plants using twin ACC deaminase producing rhizobacterial inoculation. Rhizosphere, 16 : 100241.
[45] Ha B.,Choi B.C.,In B.C. .2021 .Nature and Regulation of Botrytis cinerea in Rosa hybrida. Flower Res. J., 29(3) : 129-137.
[46] Hemida K.A.,A.M.M. Reyad K.A. .2019 .Improvement salt tolerance of safflower plants by endophytic bacteria. J. Hort. Plant Res., 5 : 38-56.
[47] Honma M.,Shimomura T.,Shiraishi K.,Ichihara A.,Sakamura S. .1979 .Enzymatic deamination of d-Coronamic acid: stereoselectivity of 1-Aminocyclopropane-1 -carboxylate Deaminase. Agric. Biol. Chem, 43(8) : 1677-1679.
[48] Hussein K.A.,Tohamy T.A.,El-Maraghy S.S. .2022 .Aminocyclopropane-1-carboxylate deaminase (ACCD) producing yeasts improved salinity tolerance of Triticum aestivum L. , 23 : 100548.
[49] Illescas M.,Pedrero-Méndez A.,Pitorini-Bovolini M.,Hermosa R.,Monte E. .2021 .Phytohormone production profiles in Trichoderma species and their relationship to wheat plant responses to water stress. Pathogens, 10(8) : 991.
[50] Iqbal S.,Hussain M.A.,Qayyaum M.,Ashraf M.,Hossain A. .2020 .The response of maize physiology under salinity stress and its coping strategies. In: Plant Stress Physiology, : 1-25.
[51] Ishaku G.A.,Tizhe D.T.,Bamanga R.A.,Afolabi E.T. .2020 .Biotechnology and drought stress tolerance in plants. Asian Plant Res. J., (2), : 34-46.
[52] Jaemsaeng C.,Jantasuriyarat A.,Thamchaipenet A. .2018 .Positive role of 1-aminocyclopropane-1-carboxylate deaminase-producing endophytic Streptomyces sp. GMKU 336 on flooding resistance of mung bean. Agric. Nat. Resour, 52(4) : 330-334.
[53] Jaiswal L.K.,Singh P.,Singh R.K.,Nayak T.,Tripathi Y.N.,Upadhyay R.S.,Gupta A.,Mechanism Tolerance,Singh P.,Singh M.,Singh R.K,Prasad S.M. .2021 .Effects of salt stress on nutrient cycle and uptake of crop plants. In: Physiology of Salt Stress in Plants: Perception, : 129-153.
[54] Khan M.,Asaf S.,Khan A.L.,Ali S.,Kang S.M.,Lee I.J. .2019 .Alleviation of salt stress response in soybean plants with the endophytic bacterial isolate Curtobacterium sp. SAK1, 69(8) : 797-808.
[55] Khan S.,Umar N.,Iqbal N. .2023 .Palliating salt stress in mustard through plant-Growth-Promoting rhizobacteria: Regulation of secondary metabolites, osmolytes, antioxidative enzymes and stress ethylene. Plants, 12(4) : 705.
[56] Kiani M.Z.,Sultan T.,Ali A.,Rizvi Z.F. .2016 .Application of ACC-deaminase containing PGPR improves sunflower yield under natural salinity stress. Pak. J. Bot., 48(1) : 53-56.
[57] Kirova K.,Kocheva K. .2021 .Physiological effects of salinity on nitrogen fixation in legumes-a review. J. Plant Nutr, 44(17) : 2653-2662.
[58] Kruasuwan W.,Thamchaipenet A. .2018 .-carboxylate (ACC) Deaminaseproducing endophytic diazotrophic Enterobacter sp. EN21 modulates salt-stress response in sugarcane. J. Plant Growth Regul., 37(3) : 849-858.
[59] Kumar A,Singh S.,Gaurav A.K.,Srivastava S.,Verma J.P. .2020 .Plant growth-promoting bacteria: Biological tools for the mitigation of salinity stress in plants. , 11 : 1216.
[60] Kumar G.,Prajapati G.K.,Mishra A.N.,Pandey D.M.,R. D.M.,Singh A. .2018 .Eco-friendly Agro-biological Techniques for Enhancing Crop Productivity. , : 25-45.
[61] Li B.,Zhang C.,Qi M.,Zheng X.,Mustafad N.S.,Ahmed N.,Anees M.,Ahanger M.A.,Lixin Z. .2022 .Effects of plant growth-promoting rhizobacteria on uptake and utilization of phosphorus and root architecture in apple seedlings under water limited regimes. Intl. J. Appl. Exp. Biol, 1(1) : 1-8.
[62] Lobo C.B.,M.S. Juárez Tomás M.A.,Ferrero M.E.,Lucca M.E. .2019 .Development of low-cost formulations of plant growth-promoting bacteria to be used as inoculants in beneficial agricultural technologies. Microbiol. Res., 219 : 12-25.
[63] Ma B.,Hu C.,Chu C. .2023 .Interplay between ethylene and nitrogen nutrition: How ethylene orchestrates nitrogen responses in plants. J. Integr. Plant Biol, 65(2) : 399-407.
[64] Macedo-Raygoza G.M.,Valdez-Salas B.,Prado F.M.,Prieto K.R.,Yamaguchi L.F.,Kato M.J.,Canto-Canché B.B.,Carrillo-Beltrán M.,Di Mascio P.,White and M.J. BeltránGarcía J.F. .2019 .Enterobacter cloacae, an endophyte that establishes a nutrient-transfer symbiosis with banana plants and protects against the black sigatoka pathogen. Front, 10 : 804.
[65] Marcos J.F.,González-Candelas L.,Zacarías L. .2005 .Involvement of ethylene biosynthesis and perception in the susceptibility of citrus fruits to Penicillium digitatum infection and the accumulation of defence-related mRNAs. J. Exp. Bot., 56(418) : 2183-2193.
[66] Maxton A.,Singh P.,Masih S.A. .2018 .ACC deaminaseproducing bacteria mediated drought and salt tolerance in Capsicum annuum. J. Plant. Nutr, 4(5) : 574-583.
[67] Moeller S.,Bonete M.J.,Gates A.J.,Richardson D.J.,Esclapez J.,Rowley G. .2021 .Microbial small RNAs-The missing link in the nitrogen cycle?. Front. Environ. Sci., 9 : 660055.
[68] Munaweera T.I.K.,Jayawardana N.U.,Rajaratnam R.,Dissanayake N. .2022 .Modern plant biotechnology as a strategy in addressing climate change and attaining food security. Agric, 11(1) : 1-28.
[69] Nadeem S.M.,Ahmad M.,Tufail M.A.,Asghar H.N.,Nazli F.,Zahir Z.A. .2021 .Appraising the potential of EPSproducing rhizobacteria with ACC-deaminase activity to improve growth and physiology of maize under drought stress. Physiol. Plant, 172(2) : 463-476.
[70] Nadeem S.M.,Zahir Z.A.,Naveed M.,Arshad M. .2009 .Rhizobacteria containing ACC-deaminase confer salt tolerance in maize grown on salt-affected fields. Can. J. Microbiol., 55(11) : 1302-1309.
[71] Naseem H.,Ahsan M.,Shahid M.A.,Khan N. .2018 .Exopolysaccharides producing rhizobacteria and their role in plant growth and drought tolerance. J. Basic Microbiol, 58(12) : 1009-1022.
[72] Navrátilová B. .2018 .Protoplast cultures and protoplast fusion focused on Brassicaceae: review. , 31(4) : 140.
[73] Oshunsanya S.O.,Nwosu N.J.,Li Y.,M. Y.,Banerjee A.,Meena R.,Yadav D.,Management Environmental .2019 .Abiotic stress in agricultural crops under climatic conditions. , : 71-100.
[74] Pahalvi H.N.,Rafiya L.,Rashid S.,Nisar B.,Kamili A.N.,G.H. A.N.,Bhat R.A.,Mehmood M.A.,Hakeem K.R. .2021 .Chemical fertilizers and their impact on soil health. Microbiota and biofertilizers. Microbiota and Biofertilizers, : 1-20.
[75] Pandey S.,Gupta S. . .Diversity analysis of ACC deaminase producing bacteria associated with rhizosphere of coconut tree (Cocos nucifera L.) grown in Lakshadweep islands of India and their ability to promote plant growth under saline conditions. J. Biotechnol, 324 : 183-197.
[76] Pandey S.,Gupta S. . .Evaluation of Pseudomonas sp. for its multifarious plant growth promoting potential and its ability to alleviate biotic and abiotic stress in tomato (Solanum lycopersicum) plants. Sci. Rep, 10(1) : 1-15.
[77] Pandey V.V.,Bhattacharya A.,Pandey A.,M. Meena P.,Marwal A.,Vijayalakshmi S.,Zehra. PlantMicrobe A. .2023 .Plant growthpromoting microbiomes: History and their role in agricultural crop improvement. Advances in Molecular and Biochemical Approaches, : 1-44.
[78] Patel M.,Vurukonda S.S.K.P.,Patel A. .2023 .Multi-trait halotolerant plant growth-promoting bacteria mitigate induced salt stress and enhance growth of Amaranthus viridis. J. Soil Sci. Plant, : 1-24.
[79] Patil S.V.,Patil C.D.,Mohite B.V.,N. B.V.,Patel P.,Amin D. .2022 .Isolation and screening of ACC deaminase-producing microbes for drought stress management in crops. Practical Handbook on Agricultural Microbiology, : 361-367.
[80] Paul H.,Lade H. .2014 .Plant-growth-promoting rhizobacteria to improve crop growth in saline soils: A review. Agron. Sustain. Dev., 34(4) : 737-752.
[81] Prusky D.,Romanazzi G. .2023 .Induced resistance in fruit and vegetables: A host physiological response limiting postharvest disease development. Annu. Rev. Phytopathol., 61 : .
[82] Rasche F.,Marco-Noales E.,Velvis H.,M.M. López L.S. van Overbeek,J.D. van Elsas L.S. van Overbeek,Sessitsch A. .2006 .Structural characteristics and plant-beneficial effects of bacteria colonizing the shoots of field grown conventional and genetically modified T4-lysozyme producing potatoes. Plant Soil, 289 : 123-140.
[83] Rivas R.,Falcão H.M.,Ribeiro R.V.,Machado E.C.,Pimentel C.,Santos M.G. .2016 .Drought tolerance in cowpea species is driven by less sensitivity of leaf gas exchange to water deficit and rapid recovery of photosynthesis after rehydration. S. Afr. J. Bot., 103 : 101-107.
[84] Rodríguez A.V.,Rodríguez-Oramas C.,Velázquez E.S.,A.H. de la Torre C.R.,Armendáriz C.C.,Iruzubieta C.C. .2022 .Myths and Realities about Genetically Modified Food: A RiskBenefit Analysis. Appl. Sci., 12(6) : 2861.
[85] Choudhury Roy,Roy S.K.,Trivedi P.,Choi J.,Cho K.,Yun S.H.,Walitang D.I.,Park J.,Kim K.,Sa T. .2022 .Labelfree proteomics approach reveals candidate proteins in rice (Oryza sativa L.) important for ACC deaminase producing bacteria-mediated tolerance against salt stress. Environ, 24 : 3612-3624.
[86] Saghafi D.,Ghorbanpour M.,Ajirloo H.S.,Lajayer B.A. .2019 .Enhancement of growth and salt tolerance in Brassica napus L. seedlings by halotolerant Rhizobium strains containing ACC-deaminase activity. Plant Physiol. Rep, 24(2) : 225-235.
[87] Saikia J.,Kotoky R.,Debnath R.,Kumar N.,Gogoi P.,Yadav A.,Saikia R. .2023 .De novo genomic analysis of Enterobacter asburiae EBRJ12, a plant growth-promoting rhizobacteria isolated from the rhizosphere of Phaseolus vulgaris L. , 134(2) : lxac090.
[88] Saikia J.,Sarma R.K.,Dhandia R.,Yadav A.,Bharali R.,Gupta V.K.,Saikia R. .2018 .Alleviation of drought stress in pulse crops with ACC deaminase producing rhizobacteria isolated from acidic soil of Northeast India. Sci. Rep, 8(1) : 1-16.
[89] Saleem A.R.,Brunetti C.,Khalid A.,Rocca A.,Raio G.,Emiliani G.,A. De Carlo T.,Mahmood M.,Centritto M. .2018 .Drought response of Mucuna pruriens (L.) DC. inoculated with ACC deaminase and IAA producing rhizobacteria. PLoS One, 13(2) : e0191218.
[90] Saraf M.,Jha C.K.,Patel D.,Growth D. Plant .2010 .The role of ACC deaminase producing PGPR in sustainable agriculture. , : 365-385.
[91] Sarkar A.,Ghosh P.K.,Pramanik K.,Mitra S.,Soren T.,Pandey S.,Mondal M.H.,Maiti T.K. .2018 .A halotolerant Enterobacter sp. displaying ACC deaminase activity promotes rice seedling growth under salt stress. Res. Microbiol., 169(1) : 20-32.
[92] Sati D.,Pande V.,Pandey S.C.,Samant M. .2022 .Recent advances in PGPR and molecular mechanisms involved in drought stress resistance. J. Soil Sci. Plant, : 1-19.
[93] Shabbir R.,Singhal R.K.,Mishra U.N.,Chauhan J.,Javed T.,Hussain S.,Kumar S.,Anuragi H.,Lal D.,Chen P. .2022 .Combined abiotic stresses: Challenges and potential for crop improvement. Agronomy, 12(11) : 2795.
[94] Shahid M.,Singh U.B.,Khan M.S.,Singh P.,Kumar R.,Singh R.N.,Kumar A.,Singh H.V. .2023 .Bacterial ACC deaminase: insights into enzymology, biochemistry, genetics, and potential role in amelioration of environmental stress in crop plants. Front, 14 : 1132770.
[95] Sharma A. .2017 .A review on the effect of organic and chemical fertilizers on plants. Int. J. Res. Appl. Sci. Eng, 5 : 677-680.
[96] Simarmata U.,Salamah S.,Rohman P.,Simanjuntak P.,Science Environmental,Singh R.P. and P.N.,Jha R.P. and P.N. .2016 .The multifarious PGPR Serratia marcescens CDP-13 augments induced systemic resistance and enhanced salinity tolerance of wheat (Triticum aestivum L.). PLoS One, 11(6) : e0155026.
[97] Singh R.P.,D.M. Pandey P.N.,Jha Y.,Ma Y. . .ACC deaminase producing rhizobacterium enterobacter cloacae ZNP-4 enhance abiotic stress tolerance in wheat plant. PLoS One, 17(5) : e0267127.
[98] Singh R.P.,G.M. Shelke A.,Kumar P.N.,Jha P.N. .2015 .Biochemistry and genetics of ACC deaminase: A weapon to "Stress Ethylene" produced in plants. , : 937.
[99] Singh R.P.,Ma Y.,Shadan A. . .Perspective of ACCdeaminase producing bacteria in stress agriculture. J. Biotechnol, 352 : 36-46.
[100] Tadiello A.,Busatto N.,Farneti B.,Delledonne M.,Velasco R.,Trainotti L.,Costa F. .2018 .The interference of the ethylene perception machinery leads to a re-programming of the fruit quality-related transcriptome and induces a crosstalk circuit with auxin in apple. Acta Hortic., 1206 : 69-74.
[101] Tahir M.,I. Ahmad M.,Shahid M.,Shah G.M.,Farooq A.B.U.,Akram M.,Tabassum S.A.,Naeem M.A.,Khalid U.,Ahmad S.,Zakir A. .2019 .Regulation of antioxidant production, ion uptake and productivity in potato (Solanum tuberosum L.) plant inoculated with growth promoting salt tolerant Bacillus strains. Ecotoxicol. Environ. Saf., 178 : 33-42.
[102] Tyśkiewicz R.,Nowak A.,Ozimek E.,J. E. .2022 .Trichoderma: The current status of its application in agriculture for the biocontrol of fungal phytopathogens and stimulation of plant growth. Int. J. Mol. Sci, 23(4) : 2329.
[103] Vejan P.,Khadiran T.,Ismail S.,Boyce A.N. .2016 .Role of plant growth promoting rhizobacteria in agricultural sustainability-A review. Molecules, 21(5) : 573.
[104] Venugopalan V.,Challabathula D.,Bakka K.,P. K.,Kapoor R.,Roy S. .2023 .Microbial Symbionts and Plant Health: Trends and Applications for Changing Climate. , : 397-437.
[105] Viterbo A.,Landau U.,Kim S.,Chernin L.,Chet I. .2010 .Characterization of ACC deaminase from the biocontrol and plant growth-promoting agent Trichoderma asperellum T203. , 305(4) : 945-963.
[106] Wang C.,Knill E.,Glick B.R.,Defago G. .2000 .Effect of transferring 1-aminocyclopropane-1-carboxylic acid (ACC) deaminase genes into Pseudomonas fluorescens strain CHA0 and its gacA derivative CHA96 on their growthpromoting and disease-suppressive capacities. Can. J. Microbiol., 46(10) : 898-907.
[107] Wang G.,Li B.,Peng D.,Zhao H.,Lu M.,Zhang L.,Guan C. .2022 .Combined application of H2S and a plant growth promoting strain JIL321 regulates photosynthetic efficacy, soil enzyme activity and growth-promotion in rice under salt stress. Microbiol. Res., 256 : 126943.
[108] Win T.,Fukuyo O.,Keiki Y.,Ohwaki Y. .2018 .The ACC deaminase expressing endophyte Pseudomonas spp. enhances NaCl stress tolerance by reducing stress-related ethylene production, resulting in improved growth, photosynthetic performance, and ionic balance in tomato plants. Plant, 127 : 599-607.
[109] Xynias I.N.,Mylonas I.,Korpetis E.G.,Ninou E.,Tsaballa A.,Avdikos I.D.,Mavromatis A.G. .2020 .Durum wheat breeding in the Mediterranean region: Current status and future prospects. Agronomy, 10(3) : 432.
[110] Yim W.J.,Chauhan P.S.,Madhaiyan M.,Tipayno S.C.,Sa T.M. .2010 .Plant growth promontory attributes by 1-Amino Cyclopropane-1-Carboxylate (ACC) deaminase producing Methylobacterium oryzae strains isolated from rice. In: 19th World Congress of Soil Science, Soil Solutions for a Changing World. International Union of Soil Sciences, Australia., : .
[111] Zboralski A.,Filion M.,M. M. .2020 .Genetic factors involved in rhizosphere colonization by phytobeneficial Pseudomonas spp. Comput. Struct. Biotechnol. J., 18 : 3539-3554.
[112] Zhang M.,Yang L.,Hao R.,Bai X.,Wang Y.,Yu X. .2020 .Drought-tolerant plant growth-promoting rhizobacteria isolated from jujube (Ziziphus jujuba) and their potential to enhance drought tolerance. Plant Soil, 452(1-2) : 2580.
[113] Zhang H.,Zhang H. .2022 .Microbial consortia are needed to degrade soil pollutants. Microorganisms, 10(2) : 261.
Citations
Citations are not available for this document.
0

Citations

0

Downloads

12

Views