Bioprospecting For Bacterial Endophytes Associated With Zingiberaceae Family Rhizomes In Sibolangit Forest, North Sumatera
Abstract
The present study was conducted aiming to isolate and characterize endophytic bacterial isolates with antibacterial ability, phosphate solubilization, and proteolytic activity from rhizomes of the Zingiberaceae family (Etlingera sp., Globba patens, Globba pendula, and Zingiber multibracteata). Nineteen bacterial isolates were obtained from Zingiberaceae rhizomes with isolate codes of EZS27, EZS18, EZS19, EZS25, EZS16, EZS08, EZS09, EZS13, EZS20, EZS14, EZS10, EZS11, EZS03, EZS05, EZS06, EZS43, EZS45, EZS47, and EZS28. The screening of the endophytes for antibacterial activity was done through the paper disc method. Four bacterial isolates presented antibacterial activities. EZS06 isolate inhibited the growth of EPEC (11 mm), P. vulgaris ATCC 13315 (10 mm), and L. monocytogenes BTCC B693 (9 mm). Also, EZS20 isolate inhibited the growth of S. aureus ATCC 29213 (17 mm), EZS28 isolate inhibited MRSA ATCC 43300 (8.6 mm), and EZS45 isolate inhibited S. Epidermidis ATCC 12228 (9 mm). The EZS19, EZS03, and EZS16 isolates dissolved the phosphate most effectively. Eight isolates (EZS19, EZS47, EZS27, EZS25, EZS09, EZS20, EZS45, and EZS06) showed the best protease activity. In general, our results showed that the endophytic bacterial strains can be used as a new and useful antibacterial agent since it showed antibacterial activity and chemical diversity. Furthermore, it also has the potential for exploitation in a wide variety of medical, agricultural, and industrial areas.
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D.K. Maheshwari, S. Dheeman, K. Annapurna, Endophytes as Contender of Plant Productivity and Protection:
An Introduction. Springer International Publishing, 2017.
H. Muzzamal, R.O. Sarwar, I. Sajid, S. Hasnain, Isolation, identification and screening of endophytic bacteria
Antagonistic to Biofilm formers. Pakistan Journal of Zoology, 44, 2012, pp. 249-257.
I. Loaces, L. Ferrando, A.F. Scavino, Dynamics, diversity and function of endophytic siderophore-producing
bacteria in rice. Microbial Ecology, 61, 2011, pp. 606-618
A. Ali, H. Rante, Screening Of Endophytic Bacteria Producing Antifungal Isolated From Indonesia Medicinal
Plant, Java ginseng (Talinum triangulare) (Jacq.) Willd. International Journal of Pharmacy and
Pharmaceutical Sciences,10, 2018, pp. 152-158.
P.Q. Hung, K. Annapurna, Isolation and characterization of endophytic bacteria in soybean (Glycine sp.).
Omonrice, 12, 2004, pp. 92-101.
M. Jooste, F. Roets, G.F. Midgley, K.C. Oberlander, L.L. Dreyer, Nitrogen-fixing bacteria and Oxalis –
evidence for a vertically inherited bacterial symbiosis. BMC Plant Biology, 19, 2019, pp. 441.
Y.Y. Tan, M.J. Spiering, V. Scott, G.A. Lane, M.J. Christensen, In planta regulation of extension of an
endophytic fungus and maintenance of high metabolic rates in its mycelium in the absence of apical extension.
Applied and Environmental Microbiology, 67, 2001, pp. 5377–5383.
A.A.L. Gunatilaka, Natural products from plant-associated microorganisms: distribution, structural diversity,
bioactivity, and implications of their occurrence. Journal of Natural Products, 69, 2006, pp. 509-526.
D.N. Nair, S. Padmavathy,Impact of endophytic microorganisms on plants, environment and humans. The
Scientific World Journal, 2014, 250693.
Radu and Kqueen, Preliminary Screening of Endophytic Fungi From Medicinal Plants In Malaysia for
Antimicrobial and Antitumor Activity. Malaysian Journal of Medical Sciences, 9, 2002, pp. 23-33.
J.G. Hallmann, B. Schulz,Isolation procedures for endophytic microorganisms. Microbial root endophytes,
Springer, 2006, pp. 299-319.
R. Cruickshank, J.P. Duguid, B.P. Marmion, R.H.A. Swain,Medical Microbiology, vol. 2, The Practice of
Medical Microbiology. Edinburgh, London and New York: Churchill Livingst one, 1975
C.S. Nautiyal,An efficient microbiological growth medium for screening phosphorus solubilizing
microorganisms. FEMS Microbiology Letters, 170, 1999, pp. 2017-2021.International Journal Of Science, Technology & Management
H. Mano, F. Tanaka, C. Nakamura, H. Kaba, H. Morisaki,Culturable Endophytic Bacteria Flora Of The
Maturing Leaves And Roots Of Rice Plants (Oriza Sativa) Cultivated In A Paddy Field. Microbes
Enviromental, 22, 2007, pp. 175- 185.
W.T. Seo, W.J. Lim, H.D. Yun, Y.H. Lee, K.M. Cho, Endophytic Bacterial Diversity In The Young Radish And
Their Antimicrobial Activity Against Pathogens. Journal Of The Korean Society For Applied Biological
Chemistry, 53, 2010, pp. 493-503.
P. Pareira, F. Ibanez, M. Rosenblueth, M. Etcheverry, E. Martinez-Romero, Analysis Of Bacterial Diversity
Associated With The Roots Of Maize (Zea Mays L.) Through Culture-Dependent And Culture–Independent
Methods. International Scholarly Research Network, 2011, Article ID 938546.
T. Taechowisan, A. Wanbanjob,P. Tuntiwachwuttikul, W.C. Taylor, Identification of Streptomyces sp. Tc022,
an endophyte in Alpinia galanga, and the isolation of actinomycin D. Annals of Microbiology, 56, 2006, pp.
-117.
T. Taechowisan, N. Chuaychot , S. Chanaphat, A. Wanbanjob, Y. Shen, Biological activity of chemical
constituents isolated from Streptomyces sp. Tc052, and endophyte in Alpinia galanga. International Journal of
Pharmaceutics,4, 2008, pp. 95-101.
T. Thongchai, C. Srisakul, R. Wanwikar, S.P. Waya, Antifungal activity of 3- methylcarbazoles from
Streptomyces sp. LJK109; an endophyte in Alpinia galanga. Journal of Applied Pharmaceutical Science, 2,
, pp. 124-128.
N. Niemhom, C. Chutrakul, C. Suriyachadkun, C. Thawai, Nonomuraea stahlianthi sp. nov., an endophytic
Actinomycete isolated from the stem of Stahlianthus campanulatus. International Journal of Systematic and
Evolutionary Microbiology,67, 2017, pp. 2879-2884.
F.M. Nongkhlaw, S.R. Joshi, Investigation on the bioactivity of culturable endophytic and epiphytic bacteria
associated with ethnomedicinal plants. The Journal of Infection in Developing Countries, 9, 2015, 9, pp.
-961.
A.G. Deshmukh, V.B. Patil, S.K. Kale, M.S. Dudhare, Isolation, characterization and identification of
endophytes from Curcuma longa. International Journal of Current Microbiology and Applied Sciences,6,
,pp. 1040-1050.
G.B. Barbosa, N.S. Jayasinghe, S.H.A. Natera, From common to rare Zingiberaceae plants - A metabolomics
study using GC-MS. Phytochemistry, 140, 2017, pp. 141-150.
H.Y. Li, D.Q. Wei, M. Shen, Z.P. Zhou, Endophytes and their role in phytoremediation. Fungal Diversity, 54,
, pp. 11-18
G.C. Tao,S.J. Tian, M.Y. Cai, G.H. Xie, Phosphate-solubilizing and -mineralizing abilities of bacteria isolated
from soils. Pedosphere, 18, 2008, pp. 515-523
L.M. Marra, C.R.F.S. Soares, S.M.D. Oliveira, P.A.A. Ferreira, B.L. Soares, R.D.F. Carvalho, J.M.D. Lima,
F.M.D.S. Moreira, Biological nitrogen fixation and phosphate solubilization by bacteria isolated from tropical
soils. Plant Soil, 357, 2012, pp. 289-307