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Complete Genome Sequence of Priestia megaterium Hyangyak-01 Isolated from Rhizosphere Soil of Centella asiatica

  • Received : 2023.08.01
  • Accepted : 2023.09.07
  • Published : 2023.09.28

Abstract

In this study, we report the complete genome sequence of Priestia megaterium strain HyangYak-01, which was isolated from the rhizosphere soil of Centella asiatica. The genome consists of 5,086,279 bp of sequences with 38.2 percent GC content and 5,111 coding genes. The genome contains several important genes related to plant growth-promoting activities, which were also confirmed with in vitro media assays.

Keywords

Acknowledgement

This work was carried out with the support of COSMAX BTI, "Cooperative Research Program for Agriculture Science & Technology Development (Project No. PJ015697)" Rural Development Administration, Republic of Korea, Korea Basic Science Institute (National research Facilities and Equipment center) grant funded by the Ministry of Education (2021R1A6C101A416) and a project to train professional personnel in biological materials by the Ministry of Environment.

References

  1. Chandrika UG, Kumara PA P. 2015. Gotu Kola (Centella asiatica): nutritional properties and plausible health benefits. Adv. Food Nutr. Res. 76: 125-157. 
  2. Sun B, Wu L, Wu Y, Zhang C, Qin L, Hayashi M, Liu T. 2020. Therapeutic potential of Centella asiatica and its triterpenes: A review. Front. Pharmacol. 11: 568032. 
  3. Bach E, Rangel CP, Ribeiro IDA, Passaglia LMP. 2022. Pangenome analyses of Bacillus pumilus, Bacillussafensis, and Priestia megaterium exploring the plant-associated features of bacilli strains isolated from canola. Mol. Genet. Genomics 297: 1063-1079. 
  4. Idris EE, Iglesias DJ, Talon M, Borriss R. 2007. Tryptophan-dependent production of indole-3-acetic acid (IAA) affects the level of plant growth promotion by Bacillus amyloliquefaciens FZB42. Mol. Plant-Microbe. Interact. 20: 619-626. 
  5. Masepohl B, Kaiser B, Isakovic N, Richard CL, Kranz RG, Klipp W. 2001. Urea utilization in the phototrophic bacterium Rhodobacter capsulatus is regulated by the transcriptional activator NtrC. J. Hosp. Infect. 81: 149-155. 
  6. Farrugia MA, Macomber L, Hausinger RP. 2013. Biosynthesis of the urease metallocenter. J. Biol. Chem. 288: 13178-13185. 
  7. Liang JL, Liu J, Jia P, Yang TT, Zeng QW, Zhang SC, et al. 2020. Novel phosphate-solubilizing bacteria enhance soil phosphorus cycling following ecological restoration of land degraded by mining. ISME J. 14: 1600-1613. 
  8. Zangelmi E, Stankovic T, Malatesta M, Acquotti D, Pallitsch K, Peracchi A. 2021. Discovery of a new, recurrent enzyme in bacterial phosphonate degradation: (R)-1-hydroxy-2-aminoethylphosphonate ammonia-lyase. Biochemistry 60: 1214-1225.