Antibacterial Activity of Lupinifolin from Derris reticulata and Its Effect on Cytoplasmic Membrane of Methicillin Resistant

Authors

  • Kamol YUSOOK Program of Public Health, Phetchabun Rajabhat University, Phetchabun 67000, Thailand
  • Pettaya PANVONGSA Program of Public Health, Phetchabun Rajabhat University, Phetchabun 67000, Thailand

DOI:

https://doi.org/10.48048/wjst.2020.10727

Keywords:

MRSA, Lupinifolin, Cytoplasmic membrane, Derris reticulata

Abstract

Lupinifolin from Derris reticulata Craib. was extracted with hexane by Soxhlet extractor and purified by crystallization. The yellow needle-shaped lupinifolin crystals were identified and confirmed by nuclear magnetic resonance (NMR) spectra and Liquid chromatography mass spectrometry (LC/MS). The lupinifolin showed minimum inhibitory concentration (MIC) and minimum bactericidal concentration (MBC) of 8 and 16 µg/ml against Methicillin resistant S. aureus (MRSA), respectively. The flow cytometry (FCM) was performed to determine the alteration of cytoplasmic membrane (CM) permeability of MRSA by using Propidium iodide (PI) 5 µg/ml as an indicator for bacterial membrane integrity. It was found that the bacterial CM permeability was effected by lupinifolin with the MIC of 8 µg/ml comparable to the control when investigated by Propidium iodide intensity. Additionally, DNA laddering assay was carried out to evaluate apoptosis in bacterial cells. It was shown that the lupinifolin has no effect on DNA fragmentation.

Downloads

Download data is not yet available.

Metrics

Metrics Loading ...

References

FD Lowy. Staphylococcus aureus infections. New Engl. J. Med.1998; 339, 520-32.

ML Fernandez-Guerrero, C Verdejo, J Azofra and MD Gorgolas. Hospital-acquired infectious endocarditis not associated with cardiac surgery: An emerging problem. Clin. Infect. Dis. 1995; 20, 16-23.

R Ruimy, C Angebault, F Djossou, C Dupont, L Epelboin, S Jarraud and A Andremont. Are host genetics the predominant determinant of persistent nasal Staphylococcus aureus carriage in humans? Int. J. Infect. Dis. 2010; 202, 924-34.

FD Lowy. Staphylococcus aureus infections. N. Engl. J. Med. 1998; 339, 520-32.

R Colgan and JH Powers. Appropriate antimicrobial prescribing: approaches that limit antibiotic resistance. Am. Fam. Phys. 2001; 64, 999-1004.

JM Blair, MA Webber, AJ Baylay, DO Ogbolu and LJ Piddock. Molecular mechanisms of antibiotic resistance. Nat. Rev. Microbiol. 2015; 13, 42-51.

WJH Liu. Traditional Herbal Medicine Research Methods. John Wiley and Sons, Canada, 2011, p. 85-91.

TP Cushnie and AJ Lamb. Antimicrobial activity of flavonoids. Int. J. Antimicrob. Agents 2005; 26, 343-56.

P Kumkrai, S Kamonwannasit and N Chudapongse. Cytoprotective and anti-diabetic effects of Derris reticulata aqueous extract. J. Physiol. Biochem. 2014; 70, 675-84.

C Mahidol, H Prawat, S Ruchirawat, K Lihkitwitayawuid, LZ Lin and GA Cordell. Prenylated flavanones from Derris reticulata. Phytochemistry 1997; 45, 825-29.

S Chivapat, P Chavalittumrong, A Attiwist and N Soonthornchareonnon. Toxicity study of lupinifolin from stem of Derris reticulata Craib. J. Thai. Trad. Alternat. Med. 2009; 7, 146-55.

N Joycharat, S Thammavong, S Limsuwan, S Homlaead, SP Voravuthikunchai, BE Yingyongnarongkul, S Dej-Adisai and S Subhadhirasakul. Antibacterial substances from Albizia myriophylla wood against cariogenic Streptococcus mutans. Arch. Pharm. Res. 2013; 36, 723-30.

C Mahidol, H Prawat, S Ruchirawat, K Lihkitwitayawuid, LZ Lin and GA Cordell. Prenylated flavanones from Derris reticulata. Phytochemistry 1997; 45, 825-29.

S Ruckhachati. Derris Reticulata Craib. Available at: http://www.pharmacy.mahidol.ac.th/sili, accessed January 2010.

TP Cushnie and AJ Lamb. Recent advances in understanding the antibacterial properties of flavonoids. Int. J. Antimicrob. Agents 2011; 38, 99-107.

SK Prasad, D Laloo, M Kumar and S Hemalatha. Antidiarrhoeal evaluation of root extract, its bioactive fraction, and lupinifolin isolated from Eriosema chinense. Planta Med. 2013; 79, 1620-27.

N Humeera, AN Kamili, SA Bandh, SU Amin, BA Lone and N Gousia. Antimicrobial and antioxidant activities of alcoholic extracts of Rumex dentatus L. Microb. Pathog. 2013; 57, 17-20.

Clinical and Laboratory Standards Institute. Methods for Dilution Antimicrobial Susceptibility Tests for Bacteria that Grow Aerobically, Approved Standard. Clinical and Laboratory Standards Institute Document M07-A8. 2012, p. 16-8.

V Ambriz-Avina, JA Contreras-Garduno and M Pedraza-Reyes. Applications of flow cytometry to characterize bacterial physiological responses. Biomed. Res. Int. 2014; 2014, 461941.

S Ghosh, K Indukuri, S Bondalapati, AK Saikia and L Rangan. Unveiling the mode of action of antibacterial labdane diterpenes from Alpinia nigra (Gaertn.) B. L. Burtt seeds. Eur. J. Med. Chem. 2013; 66, 101-5.

DJ Dwyer, DM Camacho, MA Kohanski, JM Callura and JJ Collins. Antibiotic-induced bacterial cell death exhibits physiological and biochemical hallmarks of apoptosis. Mol. Cell. 2012; 46, 561-72.

C Mahidol, H Prawat, V Prachyawarakorn and S Ruchirawat. Investigation of some bioactive Thai medicinal plants. Phytochem. Rev. 2002; 1, 287-97.

P Tyagi, M Singh, H Kumari, A Kumari and Mukhopadhyay. Bactericidal activity of Curcumin I is associated with damaging of bacterial membrane. PLoS One 2015; 10, e0121313.

YJ Eun, MH Foss, D Kiekebusch, DA Pauw, WM Westler, M Thanbichler and DB Weibel. DCAP: A broad-spectrum antibiotic that targets the cytoplasmic membrane of bacteria. J. Am. Chem. Soc. 2012; 134, 11322-25.

K Yusook, O Weeranantanapan, Y Hua, P Kumkrai and N Chudapongse. Lupinifolin from Derris reticulata possesses bactericidal activity on Staphylococcus aureus by disrupting bacterial cell membrane. J. Nat. Med. 2017; 71, 357-66.

Downloads

Published

2020-10-17

How to Cite

YUSOOK, K. ., & PANVONGSA, P. . (2020). Antibacterial Activity of Lupinifolin from Derris reticulata and Its Effect on Cytoplasmic Membrane of Methicillin Resistant . Walailak Journal of Science and Technology (WJST), 17(10), 1104–1112. https://doi.org/10.48048/wjst.2020.10727