Received: 24-06-2022
Accepted: 22-11-2022
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Effects of Culture Conditons on IAA Synthetic Ability of Endophytic Bacterial Strains HY9 and TT3
Keywords
Lonicera japonica, Endophytes, IAA, Klebsiella spp
Abstract
Endophytic bacteria living in the plant tissues support plant growth by synthesizing IAA and siderophore, inorganic soluble phosphate, and increasing disease resistance of the host plants. This study aimed to evaluate the effects of carbon and nitrogen sources, pH, temperature, and time of incubation on the concentration of IAA synthesized by two endophytic bacterial strains, HY9 and TT3, isolated from Lonicera japonica. Under various suitable culture conditions, maximum IAA of HY9 and TT3 strains was produced at pH=7 (42.9 µg/ml and 49.07 µg/ml, respectively), 35C (53.49 µg/ml and 56.73 µg/ml), and 4 days of incubation (51.47 µg/ml and 53.76 µg/ml). The suitable carbon and nitrogen sources were saccharose and NH4Cl. Comparing the nucleotide sequence of 16S rRNA of TT3 strain with nucleotide sequences of 16S rRNA of other bacterial strains on GenBank revealedthat TT3 strain had a very closed relationship with Klebsiella variicola strain 1, thus,strain TT3 was named Klebsiella variicola TT3.
References
Apine O.A. & Jadhav J.P. (2011). Optimization of medium for indole-3-acetic acid production using Pantoea agglomeransstrain PVM. Journal of Applied Microbiology. 110(5): 1235-1244.
Bộ Khoa học và Công nghệ (2015). TCVN 10784:2015. Vi sinh vật - Xác định khả năng sinh tổng hợp axit 3-indol-acetic (IAA).
Chandra S., Askari K. & Kumari M. (2018). Optimization of indole acetic acid production by isolated bacteria from Stevia rebaudianarhizosphere and its effects on plant growth. Journal of Genetic Engineering and Biotechnology. 16(2): 581-586.
Duca D., Lorv J., Patten C.L., Rose D. & Glick B.R. (2014). Indole-3-acetic acid in plant-microbe interactions. Antonie Van Leeuwenhoek.106(1): 85-125.
Đỗ Tất Lợi (2001). Những cây thuốc và vị thuốc Việt Nam. Nhà xuất bản Y học.
Emami E., Alikhani H.A., Pourbabaei A.A., Etesami H., Sarmadian F. & Motessharezadeh B. (2019) Assessment of the Potential of Indole3Acetic Acid Producing Bacteria to manage Chemical Fertilizers Application. International Journal of Environmental Research. 13: 603-611.
Fouda A., Eid A.M., Elsaied A., El-Belely E.F., Barghoth M.G., Azab E., Gobouri A.A. & Hassan S.E.D. (2021). Plant Growth-Promoting Endophytic Bacterial Community Inhabiting the Leaves of Pulicaria incisa (Lam.) DC Inherent to Arid Regions. Plants. 10(1): 76.
Glickmann E. & Dessaux Y. (1995). A critical examination of the e specificity of the Salkowski reagent for indolic compounds produced by phytopathogenic bacteria. Applied and Environmental Microbiology. 61(2): 793-796.
Karthik M., Pushpakanth P., Krishnamoorthy R. & Senthilkumar M. (2017). Endophytic bacteria associated with banana cultivars and their inoculation effect on plant growth. Journal of Horticultural Science and Biotechnology. 92(6): 1-9.
Khamna S., Yokota A., Peberdy J.F. & Lumyong S. (2010). Indole-3-acetic acid production by Streptomycessp. Isolated from some Thai medicinal plant rhizosphere soils. Eurasian Journal of Biosciences. 4(4): 23-32.
Kumari S., Prabha C., Singh A., Kumari S. & Kiran S. (2018). Optimizationof Indole-3-Acetic Acid Production by Diazotrophic B. subtilis DR2 (KP455653), Isolated from Rhizosphere of Eragrostis cynosuroides. Int. J. Pharm. Med. Biol. Sci. 7(2): 20-27.
Lin L., Wei C., Chen M., Wang H., Li Y., Li Y., Yang L. & An Q. (2015). Complete genome sequence of endophytic nitrogen-fixingKlebsiella variicolastrain DX120E. Standards in Genomic Sciences. pp. 10-22.
Longfei Z., Yajun X., Xin-He L., Changjuan S., Zhenshan D. & Yuliang J. (2015). Screening and characterization of endophytic Bacillus and Paenibacillusstrains from medicinal plant Lonicera japonicafor use as potential plant growth promoters. Brazilian Journal of Microbiology. 46(4): 977-989.
Marag P.S. & Suman A. (2018). Growth stage and tissue specific colonization of endophytic bacteria having plant growth promoting traits in hybrid and composite maize (Zea maysL.). Microbiological Research. 214: 101-113.
Mohite B. (2013). Isolation and characterization of indole acetic acid (IAA) producing bacteria from rhizospheric soil and its effect on plant growth. Journal of Soil Science and Plant Nutrition. 13(3): 638-649.
Monita V.P. & Rajesh K.P. (2014). Indole-3-acetic acid (IAA) production by endophytic bacteria isolated from saline dessert, the little runn of kutch. CIBTech Journal of Microbiology. 3(2): 17-28.
Nguyễn Văn Giang, Trần Thị Đào & Trịnh Thị Thúy An (2016). Phân lập và đánh giá đặc điểm sinh học của một số chủng vi khuẩn nội sinh rễ cây nha đam (Aloe vera). Tạp chí Khoa học Nông nghiệp Việt Nam. 14(5): 772-778.
Nguyễn Văn Giang, Trần Thị Đào, Trần Thị Thúy Hà & Nguyễn Thu Trang (2018). Ảnh hưởng của điều kiện nuôi cấy tới khả năng sinh tổng hợp indole-3-acetic acid của vi khuẩn Bacillus sonorensisLĐ18. Tạp chí Khoa học Công nghệ Nông nghiệp Việt Nam. 11(96): 90-95.
Nguyễn Hải Vân & Nguyễn Thị Minh (2017). Nghiên cứu sử dụng vi khuẩn nội sinh phân lập từ các vùng sinh thái khác nhau. Tạp chí Khoa học Nông nghiệp Việt Nam. 15(5): 605-618.
Panigrahi S.,Mohanty S.&Chandi C.R. (2020). Characterization of endophytic bacteria Enterobacter cloacae MG00145 isolated from Ocimum sanctum with Indole Acetic Acid (IAA) production and plant growth promoting capabilities against selected crops. South African Journal of Botany. 134: 17-26.
Patil N.B., Gajbhiye M., Ahiwale S.S., Gunjal A.B. & Kapadnis B.P. (2011). Optimization of Indole 3-acetic acid (IAA) production by Acetobacter diazotrophicusL1 isolated from Sugarcane. Int.J.of Environmental Sciences. 2(1): 295-302.
Schulz B.J. & Boyle C. (2006). Soil Biology. Springer-Verlag Berlin Heidelberg. (9): 1-13.
Sessitsch A., Howieson J.G., Perret X., Antoun H. & Martínez-Romero E. (2002). Advances in Rhizobium research. Critical Reviews in Plant Sciences. 21(4): 323-378.
Sridevi M., Yadav N.C.S. and Mallaiah K.V. (2008). Production of Indole-acetic-acid by Rhizobium Isolates from Crotalaria Species. Research Journal of Microbiology. 3: 276-281.
Sudha M., Shyamala Gowri R., Prbhavati P., Astapritya P., Yamuna Devi Y. & Saranya A. (2012). Production and optimization of Indole acetic acid by indigenous microflora using agro waste as substrate. Pakistan Journal of Biological Sciences. 15: 39-43.
Tahsina Jainab, Sharmin Sultana (2021). Effects of Cultural Conditions on the Production of Extracellular Protease by Bacillus circulans Isolated from Dried Fish. Journal of Microbiology Research. 11(2): 33-39.
Trần Trọng Hiếu& Nguyễn Hữu Hiệp(2016). Phân lập và khảo sát đặc tính của vi khuẩn nội sinh ở cây trinh nữ (Mimosa pudicaL.) tại tỉnh Trà Vinh. Tạp chí Khoa học Trường Đại học Cần Thơ. 46: 23.
Trần Thị Tuyết & Nguyễn Văn Giang (2017). Phân lập và đánh giá một số đặc điểm sinh học của chủng vi khuẩn nội sinh từ rễ cây nghệ (Curcuma longaL.). Tạp chí Khoa học Công nghệ Nông nghiệp Việt Nam. 9(82): 76-81.
Xiaofei S.,HuP., MaoxingL., XiaolouM. &Hong D. (2011). Lonicera japonica Thunb: Ethnopharmacology, phytochemistry and pharmacology of an important traditional Chinese medicine. Journal of ethnopharmacology. 138(1): 1-21.