Isolation of bacteria displaying potent antagonistic activity against fungi causes anthracnose disease in chili

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TRAN THI NGOC TRAM
HOANG TAN QUANG
NGUYEN QUANG HOANG VU
PHAN THI THAO NGUYEN
TON NU MINH THI
TRUONG THI BICH PHUONG
PHAM THI DIEM THI

Abstract

Abstract. Tram TTN, Quang HT, Vu NQH, Nguyen PTT, Thi TNM, Phuong TTB, Thi PTD. 2023. Isolation of bacteria displaying potent antagonistic activity against fungi causes anthracnose disease in chili. Biodiversitas 24: 4919-4926. Anthracnose is a common disease on many crops caused by Colletotrichum species, and it leaves serious consequences, especially on chili. Beta-1,3 glucanase is a semi-constitutive hydrolytic enzyme that is involved in the biological regulation of plant pathogens. Its main function is the breakdown of ?-1,3-glucan, a major constituent of the fungal cell wall. In a study conducted in Vietnam's Quang Tri and Thua Thien Hue Provinces, researchers isolated five bacterial strains from soil where chili plants were grown. To induce the production of beta-1,3 glucanase, these isolates were cultivated in a nutrient-rich medium supplemented with 1% laminarin. The activity of beta-1,3-glucanase in the bacterial strains ranged from 0.31 to 1.72 U mL-1, and antagonistic activity against Colletotrichum spp. causes of anthracnose reached from 50.68 to 69.04%. Strain AT4 had strong antagonistic activity against C. scovillei HUCL1, C. siamensis PV6, and CL3 of 76.44, 62.65, and 68.04%, respectively. Molecular identification based on 16S-rRNA sequences showed that the strains were Paenibacillus polymyxa AT4, B. siamensis ML3, B. tequilensis ML4 and ML6, and B. velezensis GL7. AT4 and ML6 are potential strains for the control of anthracnose diseases caused by Colletotrichum spp. on chili peppers.

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References
Bowman SM, Free SJ (2006) The structure and synthesis of the fungal cell wall BioEssays 28:799-808 doi:https://doi.org/10.1002/bies.20441
Carrazco-Palafox J, Rivera-Chavira BE, Ramírez-Baca N, Manzanares-Papayanopoulos LI, Nevárez-Moorillón GV (2018) Improved method for qualitative screening of lipolytic bacterial strains MethodsX 5:68-74
Chang WT, Chen YC, Jao CL (2007) Antifungal activity and enhancement of plant growth by Bacillus cereus grown on shellfish chitin wastes Bioresource Technology 98:1224–1230
Choub V et al. (2021) Antifungal Activity of Bacillus velezensis CE 100 against Anthracnose Disease (Colletotrichum gloeosporioides) and Growth Promotion of Walnut (Juglans regia L.) Trees International journal of molecular sciences 22:10438
Dewi RTK, Mubarik NR, Suhartono MT (2016) Medium optimization of beta-glucanase production by Bacillus subtilis SAHA 32.6 used as biological control of oil palm pathogen Emirates Journal of Food and Agriculture 28 doi:10.9755/ejfa.2015-05-195
Edison LK, Pradeep NS (2020) Functional screening of ?-Glucanase Producing Actinomycetes Strains from Western Ghats ecosystems of Kerala, India BioRxiv
El-Shora HM, El-Sharkawy RM, Khateb AM, Darwish DB (2021) Production and immobilization of ?-glucanase from Aspergillus niger with its applications in bioethanol production and biocontrol of phytopathogenic fungi Scientific reports 11:21000
Fesel PH, Zuccaro A (2016) ?-glucan: Crucial component of the fungal cell wall and elusive MAMP in plants Fungal Genetics and Biology 90:53-60 doi:https://doi.org/10.1016/j.fgb.2015.12.004
Fokkema NJ (1973) The rôle of saprophytic fungi in antagonism against Drechslera sorokiniana (Helminthosporium sativum) on agar plates and on rye leaves with pollen Physiological Plant Pathology 3:195-202
Gadallah EE, El?Borai AM, El?Aassar SA, Beltagy EA (2023) Purification, characterization, immobilization and applications of an enzybiotic beta-1,3-1,4-glucanase produced from halotolerant marine Halomonas meridiana ES021 World Journal of Microbiology and Biotechnology 39:89 doi:10.1007/s11274-023-03527-1
Gomaa EZ (2012) Chitinase production by Bacillus thuringiensis and Bacillus licheniformis: their potential in antifungal biocontrol The Journal of Microbiology 50:103-111 doi:10.1007/s12275-012-1343-y
Guerrero-Barajas C, Constantino-Salinas EA, Amora-Lazcano E, Tlalapango-Ángeles D, Mendoza-Figueroa JS, Cruz-Maya JA, Jan-Roblero J (2020) Bacillus mycoides A1 and Bacillus tequilensis A3 inhibit the growth of a member of the phytopathogen Colletotrichum gloeosporioides species complex in avocado Journal of the Science of Food and Agriculture 100:4049-4056 doi:https://doi.org/10.1002/jsfa.10450
Jeong H, Choi SK, Ryu CM, Park SH (2019) Chronicle of a soil bacterium: Paenibacillus polymyxa E681 as a tiny guardian of plant and human health Frontiers in microbiology 10:467
Kim YS, Balaraju K, Jeon Y (2016) Biological Control of Apple Anthracnose by Paenibacillus polymyxa APEC128, an Antagonistic Rhizobacterium The plant pathology journal 32:251-259 doi:10.5423/ppj.Oa.01.2016.0015
Kim YS et al. (2021) Characterization of Bacillus velezensis AK-0 as a biocontrol agent against apple bitter rot caused by Colletotrichum gloeosporioides Scientific reports 11:626 doi:10.1038/s41598-020-80231-2
Kwon H-T, Lee Y, Kim J, Balaraju K, Kim HT, Jeon Y (2022) Identification and Characterization of Bacillus tequilensis GYUN-300: An Antagonistic Bacterium Against Red Pepper Anthracnose Caused by Colletotrichum acutatum in Korea Frontiers in microbiology 13 doi:10.3389/fmicb.2022.826827
Lee YH et al. (2018) Enhanced tolerance of Chinese cabbage seedlings mediated by Bacillus aryabhattai H26-2 and B. siamensis H30-3 against high temperature stress and fungal Infections The plant pathology journal 34:555–566
Li J et al. (2015) Expression of Paenibacillus polymyxa ?-1,3-1,4-glucanase in Streptomyces lydicus A01 improves its biocontrol effect against Botrytis cinerea Biological Control 90:141-147 doi:https://doi.org/10.1016/j.biocontrol.2015.06.008
Masrukhin M, Putri AL, Sulistiyani TR, Ilyas M, Purnaningsih I, Saskiawan I, Niam MY (2021) Antifungal Activity of Bacterial Isolates from Straw Mushroom Cultivation Medium against Phytopathogenic Fungi 2021 6 doi:10.22146/jtbb.59235
Quang HT et al. (2020) Genetic diversity and toxic genes analysis of Vibrio spp. isolated from white leg shrimp and marine fishes cultured in Tam Giang lagoon in Thua Thien Hue province, Vietnam Indian Journal of Science and Technology 13:1412-1422
Ruiz-Herrera J, Ortiz-Castellanos L (2019) Cell wall glucans of fungi. A review The Cell Surface 5:100022 doi:https://doi.org/10.1016/j.tcsw.2019.100022
Shih SY, Chou KR, Wu H, Tsai HY (2023) Isolation and whole genome characterization of antagonistic Paenibacillus polymyxa 188 and its biocontrol potential against several fungi BioRxiv
Suprapta DN (2022) Biocontrol of anthracnose disease on chili pepper using a formulation containing Paenibacillus polymyxa C1 Frontiers in Sustainable Food Systems 5 doi:10.3389/fsufs.2021.782425
Tamura K, Stecher G, Kumar S (2021) MEGA11: Molecular Evolutionary Genetics Analysis version 11 Molecular Biology and Evolution 38:3022-3027
Ueki A, Takehara T, Ishioka G, Kaku N, Ueki K (2020) ?-1,3-Glucanase production as an anti-fungal enzyme by phylogenetically different strains of the genus Clostridium isolated from anoxic soil that underwent biological disinfestation Applied Microbiology and Biotechnology 104:5563–5578
Wei L, Yang C, Cui L, Jin M, Osei R (2023) Bacillus spp. isolated from pepper leaves and their function and inhibition of the fungal plant pathogen Colletotrichum scovillei Egyptian Journal of Biological Pest Control 33:46 doi:10.1186/s41938-023-00686-z
Wu Q, Dou X, Wang Q, Guan Z, Cai Y, Liao X (2018) Isolation of ?-1,3-glucanase-producing microorganisms from Poria cocos cultivation soil via molecular biology Molecules 23:1555
Zhai Y et al. (2021) Isolation and characterization of antagonistic Paenibacillus polymyxa HX-140 and its biocontrol potential against Fusarium wilt of cucumber seedlings BMC Microbiol 21:75 doi:10.1186/s12866-021-02131-3

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