The Antimicrobial and Antioxidant Activity of Endophytic Fungi Extract Associated with Chlorantus officinalis Blume and Staurogyne elongata Kuntze

Listiana Oktavia, Evana Evana, Muhammad Ilyas, Andria Agusta

Abstract

An endophytic fungi has been widely known for a source of bioactive compounds attributed as antimicrobial and antioxidant.  In this report, we investigated the antimicrobial and antioxidant activity of extract of endophytic fungi associated with two indigenous Indonesian medicinal plants, i.e., Chloranthus officinalis (CO) and Staurogyne elongata (SE). Ten endophytic fungi isolates were collected from barks, roots, and leaves of CO and SE host plants and were cultured into potato dextrose broth (PDB) media. After 14 days of incubation, the whole culture was extracted by ethyl acetate. The qualitative antimicrobial analysis that was conducted by dot blot and TLC-bioautography showed all of the extracts show antimicrobial activity against Staphylococcus aureus. At the same time, they were observed less active against Escherichia coli. The minimum inhibitory concentration (MIC) analysis showed that endophytic fungi extract of CO2 and SE3 are classified as strong antibacterial activity against S. aureus with MIC value <8 µg/ml.  The TLC bioautography of antioxidant displayed the appearance of radical inhibition area from SE4 and SE5 extract. Quantitative antioxidant activity, which was conducted by the radical DPPH scavenging, showed that SE5 has the lowest IC50 value, i.e., 56.3679 µg/ml (AAI value 0.5455) and was classified as moderate antioxidant activity. Meanwhile, the remaining extracts are classified as weak antioxidant activity.

Keywords

Antibacterial; antioxidant; Chloranthus officinalis; endophytic fungi; Staurogyne elongata

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References

A. Alvin, K. I. Miller, and B. A. Neilan, “Exploring the potential of endophytes from medicinal plants as sources of antimycobacterial compounds,” Microbiol. Res., vol. 169, no. 7–8, pp. 483–495, 2014,

DOI:10.1016/j.micres.2013.12.009

G. A. Strobel, “Endophytes as sources of bioactive products,” Microbes Infect., vol. 5, no. 6, pp. 535–544, 2003,

DOI:10.1016/S1286-4579(03)00073-X.

S. Mandal, M. Moudgil, and S. K. Mandal, “Rational drug design,” Eur. J. Pharmacol., vol. 625, no. 1–3, pp. 90–100, 2009,

DOI:10.1016/j.ejphar.2009.06.065.

F. Chassagne, G. Cabanac, G. Hubert, B. David, and G. Marti, “The landscape of natural product diversity and their pharmacological relevance from a focus on the Dictionary of Natural Products ®,” Phytochem. Rev., vol. 18, no. 3, pp. 601–622, 2019,

DOI:10.1007/s11101-019-09606-2.

D. J. Newman and G. M. Cragg, “Natural Products as Sources of New Drugs over the Nearly Four Decades from 01/1981 to 09/2019.,” J. Nat. Prod., 2020,

DOI:10.1021/acs.jnatprod.9b01285.

J. K. Stone, C. W. Bacon, and J. F. White, “An overview of endophytic microbes: endophytism defined,” Microb. Endophytes, vol. 10, no. January 2000, pp. 3–29, 2000,

DOI:10.1163/_q3_SIM_00374.

S. K. Deshmukh, S. A. Verekar, and S. V. Bhave, “Endophytic fungi: A reservoir of antibacterials,” Front. Microbiol., vol. 5, no. DEC, pp. 1–43, 2014,

DOI:10.3389/fmicb.2014.00715.

R. Nicoletti and A. Fiorentino, “Plant Bioactive Metabolites and Drugs Produced by Endophytic Fungi of Spermatophyta,” Agriculture, vol. 5, no. 4, pp. 918–970, 2015,

DOI:10.3390/agriculture5040918.

M. I. Maulani, L. Purwanti, and U. A. Dasuki, “Uji Aktivitas Antibakteri Ekstrak Daun Reundeu [Staurogyne elongata (Bl.) O.K] terhadap Staphylococcus aureus dan Eschericia coli,” Pros. Farm., vol. 3, no. 2, pp. 565–569, 2017, ISSN: 2460-6472.

Google Scholar

M. Ilyas and M. Rahmansyah, Seri Panduan : Teknik Isolasi Fungi. Jakarta: LIPI Press, 2006.

Google Scholar

M. Ilyas, A. Kanti, and M. Rahmansyah, Ilyas. Seri Panduan Teknik Preservasi Fungi. Jakarta: LIPI Press, 2007.

Google Scholar

M. Ilyas, Praptiwi, D. Wulansari, A. Fathoni, and A. Agusta, “An assemblages of fungal endophytes isolated from medicinal plants collected from Toba and Samosir, North Sumatra,” IOP Conf. Ser. Earth Environ. Sci., vol. 308, no. 1, pp. 1–10, 2019,

DOI:10.1088/1755-1315/308/1/012070.

M. Raunsai, D. Wulansari, A. Fathoni, and A. Agusta, “Antibacterial and antioxidant activities of endophytic fungi extracts of medicinal plants from Central Sulawesi,” vol. 8, no. 08, pp. 69–74, 2018,

DOI:10.7324/JAPS.2018.8811.

G. L. Passini, B. P. D. Filho, C. V. Nakamura, and D. A. G. Cortez, “Antibacterial Activity of Extracts and Neolignans from Piper regnellii (Miq.) C. DC. var. pallescens (C.DC.) Yunck,” Mem Inst Oswaldo Cruz, vol. 98, no. 8, pp. 1115–1120, 2003,

DOI:10.1590/s0074-02762003000800025.

R. Scherer and H. T. Godoy, “Antioxidant activity index (AAI) by the 2,2-diphenyl-1-picrylhydrazyl method,” Food Chem., vol. 112, pp. 654–658, 2009,

DOI: 10.1016/j.foodchem.2008.06.026.

M. Tanaka, H. Sukiman, M. Takebayashi, K. Saito, M. Suto, T. K. Prana, M. S. Prana, et al., “Isolation, Screening and Phylogenetic Identification of Endophytes from Plants in Hokkaido Japan and Java Indonesia,” Microbes Environ., vol. 14, no. 4, pp. 237–241, 1999,

DOI: 10.1264/jsme2.14.237.

B. Paulus, P. Gadek, and K. D. Hyde, “Estimation of microfungal diversity in tropical rainforest leaf litter using particle filtration: The effects of leaf storage and surface treatment,” Mycol. Res., vol. 107, no. 6, pp. 748–756, 2003,

DOI: 10.1017/S0953756203007913.

Evana, Pratiwi, A. Fathoni, O. Efendi, and A. Agusta, “Antioxidant, Antibacterial Activity and GC-MS Analysis of Extract of Giant Forest Ant Dinomyrmex Gigas (Latreille, 1802),” J. Biodjati, vol. 4, no. 2, pp. 263–277, 2019,

DOI: 10.15575/biodjati.v4i2.5440.

M. T. G. Silva, S. M. Simas, T. G. F. M. Batista, P. Cardarelli, and T. C. B. Tomassini, “Studies on antimicrobial activity, in vitro, of Physalis angulata L. (Solanaceae) fraction and physalin B bringing out the importance of assay determination,” Mem Inst Oswaldo Cruz, vol. 100, no. 7, pp. 779–782, 2005, DOI: 10.1590/s0074-02762005000700018.

A. Adetutu, W. A. Morgan, and O. Corcoran, “Antibacterial, antioxidant and fibroblast growth stimulation activity of crude extracts of Bridelia ferruginea leaf, a wound-healing plant of Nigeria,” J. Ethnopharmacol., vol. 133, pp. 116–119, 2011,

DOI: 10.1016/j.jep.2010.09.011.

R. M. Epand, C. Walker, R. F. Epand, and N. A. Magarvey, “Molecular mechanisms of membrane-targeting antibiotics,” BBA - Biomembr., vol. 1858, no. 5, pp. 980–987, 2016,

DOI: 10.1016/j.bbamem.2015.10.018.

J. Wang, Y.-D. Yue, F. Tang, and J. Sun, “TLC Screening for Antioxidant Activity of Extracts from Fifteen Bamboo Species and Identification of Antioxidant Flavone Glycosides from Leaves of Bambusa. textilis McClure,” Molecules, vol. 17, pp. 12297–12311, Oct. 2012,

DOI: 10.3390/molecules171012297.

M. Brits and F. Bucar, “Antioxidant activity of Nigella sativa essential oil,” Phytother. Res., vol. 14, no. 5, pp. 323–328, 2000,

DOI:10.1002/1099-1573(200008)14:5<323::AID-PTR621>3.0.CO;2-Q.

P. Molyneux, “The use of the stable free radical diphenylpicryl-hydrazine (DPPH) for estimating antioxidant activity,” Songklanakarin J. Sci. Technol., vol. 26, no. 2, pp. 211–219, 2004.

Google Scholar

S. Dhankhar, S. Kumar, S. Dhankhar, and J. P. Yadav, “Antioxidant Activity of Fungal Endophytes Isolated From Salvadora oleoides Decne,” Int J Pharm Pharm Sci., vol. 4, no. 2, pp. 380–385, 2012, ISSN: 0975-1491.

Google Scholar

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