Skip to main content
Top
Published in: BMC Complementary Medicine and Therapies 1/2020

Open Access 01-12-2020 | Research article

Antimicrobial activities and mechanism of action of Cymbopogon khasianus (Munro ex Hackel) Bor essential oil

Authors: Gurpreet Singh, Meenu Katoch

Published in: BMC Complementary Medicine and Therapies | Issue 1/2020

Login to get access

Abstract

Background

Due to concerns regarding the safety of the chemical control measures, the trend is shifting globally towards the use of natural compounds as antimicrobial agent especially, plant essential oils.

Results

This study presented the antibacterial potential of Cymbopogon khasianus essential oil (CKEO) against human pathogens: Pseudomonas aeruginosa, Salmonella typhimurium, Escherichia coli, Klebsiella pneumoniae, Bacillus subtilis, Staphylococcus aureus and Candida albicans with MIC ranging from 20 to 100 μg/mL. CKEO, in comparison to its major constituent, geraniol, showed better MICs against tested pathogens. In combination studies, the effective concentrations of CKEO and streptomycin were reduced from 20 to 5 μg/mL and 11 to 0.7 ng/mL against E. coli. This suggests their synergistic action. However, CKEO showed partial synergy with ciprofloxacin. To understand the efficacy of CKEO, time-kill kinetics was performed. CKEO took the half time to show the bactericidal effect in comparison to streptomycin at their 2x MICs (double the MIC), while their combination took only 30 min for this. Fluorescence and surface electron microscopic and protein estimation studies suggested the multi-target action of CKEO-streptomycin combination against E. coli. Further, CKEO alone/in combination exhibited less than 10% haemolytic activity at its MIC.

Conclusion

These results indicate that CKEO is a potentially safe alternative for the treatment of various pathogenic bacterial strains. It could be used for a variety of applications including human health, food storage, aquaculture, etc.
Appendix
Available only for authorised users
Literature
1.
go back to reference Langeveld WT, Veldhuizen EJ, Burt SA. Synergy between essential oil components and antibiotics: a review. Crit Rev Microbiol. 2014;40:76–94.CrossRef Langeveld WT, Veldhuizen EJ, Burt SA. Synergy between essential oil components and antibiotics: a review. Crit Rev Microbiol. 2014;40:76–94.CrossRef
2.
go back to reference Santos L, Ramos F. Antimicrobial resistance in aquacultur: current knowledge and alternatives to tackle the problem. Int J Antimicrob Agents. 2018;52:135–43.CrossRef Santos L, Ramos F. Antimicrobial resistance in aquacultur: current knowledge and alternatives to tackle the problem. Int J Antimicrob Agents. 2018;52:135–43.CrossRef
3.
go back to reference Ballester-Costa C, Sendra E, Fernández-López J, Pérez-Álvarez JA, Viuda-Martos M. Chemical composition and in vitro antibacterial properties of essential oils of four Thymus species from organic growth. Ind Crop Prod. 2013;50:304–11.CrossRef Ballester-Costa C, Sendra E, Fernández-López J, Pérez-Álvarez JA, Viuda-Martos M. Chemical composition and in vitro antibacterial properties of essential oils of four Thymus species from organic growth. Ind Crop Prod. 2013;50:304–11.CrossRef
4.
go back to reference Saeed F, Afzaal M, Tufail T, Ahmad A. Use of natural antimicrobial agents: a safe preservation approach. In: Var I, Uzunlu S, editors. Active antimirobial food packaging. Intech open; 2019. p. 7–24. Saeed F, Afzaal M, Tufail T, Ahmad A. Use of natural antimicrobial agents: a safe preservation approach. In: Var I, Uzunlu S, editors. Active antimirobial food packaging. Intech open; 2019. p. 7–24.
5.
go back to reference Sultanbawa Y. Plant antimicrobials in food applications: Minireview. In: Méndez-Vilas A, editor. Science against microbial pathogens: communicating current research and technological advances; 2011. p. 1084–93. Sultanbawa Y. Plant antimicrobials in food applications: Minireview. In: Méndez-Vilas A, editor. Science against microbial pathogens: communicating current research and technological advances; 2011. p. 1084–93.
6.
go back to reference Molyneux RJ, Lee ST, Gardner DR, Panter KE, James LF. Phytochemicals: the good, the bad and the ugly? Phytochemistry. 2007;68:2973–85.CrossRef Molyneux RJ, Lee ST, Gardner DR, Panter KE, James LF. Phytochemicals: the good, the bad and the ugly? Phytochemistry. 2007;68:2973–85.CrossRef
7.
go back to reference Alves-Silva JM, dos Santos SMD, Pintado ME, Pérez-Álvarez JA, Fernández-López J, Viuda-Martos M. Chemical composition and in vitro antimicrobial, antifungal and antioxidant properties of essential oils obtained from some herbs widely used in Portugal. Food Control. 2013;32:371–8.CrossRef Alves-Silva JM, dos Santos SMD, Pintado ME, Pérez-Álvarez JA, Fernández-López J, Viuda-Martos M. Chemical composition and in vitro antimicrobial, antifungal and antioxidant properties of essential oils obtained from some herbs widely used in Portugal. Food Control. 2013;32:371–8.CrossRef
8.
go back to reference Shah G, Shri R, Panchal V, Sharma N, Singh B, Mann A. Scientific basis for the therapeutic use of Cymbopogon citratus, stapf (lemon grass). J Adv Pharm Technol Res. 2011;2:3–8.CrossRef Shah G, Shri R, Panchal V, Sharma N, Singh B, Mann A. Scientific basis for the therapeutic use of Cymbopogon citratus, stapf (lemon grass). J Adv Pharm Technol Res. 2011;2:3–8.CrossRef
9.
go back to reference Zargari A. Medicinal plants, vol. 4. Tehran: Tehran University Publications; 1991. Zargari A. Medicinal plants, vol. 4. Tehran: Tehran University Publications; 1991.
10.
go back to reference Bassolé IHN, Lamien-Meda A, Bayala BOLC, Obame LC, Ilboudo AJ, Franz C, et al. Chemical composition and antimicrobial activity of Cymbopogon citratus and Cymbopogon giganteus essential oils alone and in combination. Phytomedicine. 2011;18:1070–4.CrossRef Bassolé IHN, Lamien-Meda A, Bayala BOLC, Obame LC, Ilboudo AJ, Franz C, et al. Chemical composition and antimicrobial activity of Cymbopogon citratus and Cymbopogon giganteus essential oils alone and in combination. Phytomedicine. 2011;18:1070–4.CrossRef
11.
go back to reference Tyagi B, Shahi A, Kaul B. Evaluation of repellent activities of Cymbopogon essential oils against mosquito vectors of malaria, filariasis and dengue fever in India. Phytomedicine. 1998;5:324–9.CrossRef Tyagi B, Shahi A, Kaul B. Evaluation of repellent activities of Cymbopogon essential oils against mosquito vectors of malaria, filariasis and dengue fever in India. Phytomedicine. 1998;5:324–9.CrossRef
12.
go back to reference Dutta S, Munda S, Devi N, Lal M. Compositional variability in leaves and inflorescence essential oils of C. khasianus (hack.) Stapf ex Bor collected from Meghalaya: a biodiversity hotspot. J Essent Oil Bear Pl. 2018;21:640–57.CrossRef Dutta S, Munda S, Devi N, Lal M. Compositional variability in leaves and inflorescence essential oils of C. khasianus (hack.) Stapf ex Bor collected from Meghalaya: a biodiversity hotspot. J Essent Oil Bear Pl. 2018;21:640–57.CrossRef
13.
go back to reference Memarzadeh SM, Pirbalouti AG, AdibNejad M. Chemical composition and yield of essential oils from Bakhtiari savory (Satureja bachtiarica Bunge.) under different extraction methods. Ind Crop Prod. 2015;76:809–16.CrossRef Memarzadeh SM, Pirbalouti AG, AdibNejad M. Chemical composition and yield of essential oils from Bakhtiari savory (Satureja bachtiarica Bunge.) under different extraction methods. Ind Crop Prod. 2015;76:809–16.CrossRef
14.
go back to reference Singh G, Katoch A, Razak M, Kitchlu S, Goswami A, Katoch M. Bioactive and biocontrol potential of endophytic fungi associated with Brugmansia aurea Lagerh. FEMS Microbiol Lett. 2017;364:fnx194. Singh G, Katoch A, Razak M, Kitchlu S, Goswami A, Katoch M. Bioactive and biocontrol potential of endophytic fungi associated with Brugmansia aurea Lagerh. FEMS Microbiol Lett. 2017;364:fnx194.
15.
go back to reference Wani NA, Singh G, Shankar S, Sharma A, Katoch M, Rai R. Short hybrid peptides incorporating β-and γ-amino acids as antimicrobial agents. Peptides. 2017;97:46–53.CrossRef Wani NA, Singh G, Shankar S, Sharma A, Katoch M, Rai R. Short hybrid peptides incorporating β-and γ-amino acids as antimicrobial agents. Peptides. 2017;97:46–53.CrossRef
16.
go back to reference Rončević T, Vukičević D, Ilić N, Krce L, Gajski G, Tonkić M, et al. Antibacterial activity affected by the conformational flexibility in glycine–lysine based α-helical antimicrobial peptides. J Med Chem. 2018;61:2924–36.CrossRef Rončević T, Vukičević D, Ilić N, Krce L, Gajski G, Tonkić M, et al. Antibacterial activity affected by the conformational flexibility in glycine–lysine based α-helical antimicrobial peptides. J Med Chem. 2018;61:2924–36.CrossRef
17.
go back to reference Dra LA, Brahim MAS, Boualy B, Aghraz A, Barakate M, Oubaassine S, et al. Chemical composition, antioxidant and evidence antimicrobial synergistic effects of Periploca laevigata essential oil with conventional antibiotics. Ind Crop Prod. 2017;109:746–52.CrossRef Dra LA, Brahim MAS, Boualy B, Aghraz A, Barakate M, Oubaassine S, et al. Chemical composition, antioxidant and evidence antimicrobial synergistic effects of Periploca laevigata essential oil with conventional antibiotics. Ind Crop Prod. 2017;109:746–52.CrossRef
18.
go back to reference Odds FC. Synergy, antagonism, and what the chequer board puts between them. J Antimicrob Chemother. 2003;52:1.CrossRef Odds FC. Synergy, antagonism, and what the chequer board puts between them. J Antimicrob Chemother. 2003;52:1.CrossRef
19.
go back to reference Lv F, Liang H, Yuan Q, Li C. In vitro antimicrobial effects and mechanism of action of selected plant essential oil combinations against four food-related microorganisms. Food Res Int. 2011;44:3057–64.CrossRef Lv F, Liang H, Yuan Q, Li C. In vitro antimicrobial effects and mechanism of action of selected plant essential oil combinations against four food-related microorganisms. Food Res Int. 2011;44:3057–64.CrossRef
20.
go back to reference Conlon JM, Sonnevend A, Patel M, Camasamudram V, Nowotny N, Zilahi E, et al. A melittin-related peptide from the skin of the Japanese frog, Rana tagoi, with antimicrobial and cytolytic properties. Biochem Biophys Res Commun. 2003;306:496–500.CrossRef Conlon JM, Sonnevend A, Patel M, Camasamudram V, Nowotny N, Zilahi E, et al. A melittin-related peptide from the skin of the Japanese frog, Rana tagoi, with antimicrobial and cytolytic properties. Biochem Biophys Res Commun. 2003;306:496–500.CrossRef
21.
go back to reference Choudhury S, Leclercq PA. Essential oil of Cymbopogon khasianus (Munro ex hack.) Bor from northeastern India. J Essent Oil Res. 1995;7:555–6.CrossRef Choudhury S, Leclercq PA. Essential oil of Cymbopogon khasianus (Munro ex hack.) Bor from northeastern India. J Essent Oil Res. 1995;7:555–6.CrossRef
22.
go back to reference Rabha LC, Hazarika AK, Bordoloi DN. Cymbopogon khasianus a new rich source of methyl eugenol. Indian Perfum. 1986;30:339–44. Rabha LC, Hazarika AK, Bordoloi DN. Cymbopogon khasianus a new rich source of methyl eugenol. Indian Perfum. 1986;30:339–44.
23.
go back to reference Lal M, Dutta S, Munda S, Pandey SK. Novel high value elemicin-rich germplasm of lemon grass Cymbopogon khasianus (hack) Stapf (ex Bor) from north East India. Ind Crop Prod. 2018;115:98–103.CrossRef Lal M, Dutta S, Munda S, Pandey SK. Novel high value elemicin-rich germplasm of lemon grass Cymbopogon khasianus (hack) Stapf (ex Bor) from north East India. Ind Crop Prod. 2018;115:98–103.CrossRef
24.
go back to reference Lal M, Borah A, Pandey SK. Identification of a new high Geraniol rich variety “jor lab L-15” of lemongrass [Cymbopogon khasianus (hack) Stapf (ex Bor)]. J Essent Oil Bearing Plants. 2019;22:972–8.CrossRef Lal M, Borah A, Pandey SK. Identification of a new high Geraniol rich variety “jor lab L-15” of lemongrass [Cymbopogon khasianus (hack) Stapf (ex Bor)]. J Essent Oil Bearing Plants. 2019;22:972–8.CrossRef
25.
go back to reference Simic A, Rancic A, Sokovic M, Ristic M, Grujic-Jovanovic S, Vukojevic J, et al. Essential oil composition of Cymbopogon winterianus and Carum carvi and their antimicrobial activities. Pharm Biol. 2008;46:437–41.CrossRef Simic A, Rancic A, Sokovic M, Ristic M, Grujic-Jovanovic S, Vukojevic J, et al. Essential oil composition of Cymbopogon winterianus and Carum carvi and their antimicrobial activities. Pharm Biol. 2008;46:437–41.CrossRef
26.
go back to reference Oliveira WAD, Pereira FO, Luna GC, Lima IO, Wanderley PA, Lima RB, et al. Antifungal activity of Cymbopogon winterianus Jowitt ex Bor against Candida albicans. Braz J Microbiol. 2011;42:433–41.CrossRef Oliveira WAD, Pereira FO, Luna GC, Lima IO, Wanderley PA, Lima RB, et al. Antifungal activity of Cymbopogon winterianus Jowitt ex Bor against Candida albicans. Braz J Microbiol. 2011;42:433–41.CrossRef
27.
go back to reference Nakahara K, Alzoreky NS, Yoshihashi T, Nguyen HT, Trakoontivakorn G. Chemical composition and antifungal activity of essential oil from Cymbopogon nardus (citronella grass). Jpn Agric Res Q. 2013;37:249–52.CrossRef Nakahara K, Alzoreky NS, Yoshihashi T, Nguyen HT, Trakoontivakorn G. Chemical composition and antifungal activity of essential oil from Cymbopogon nardus (citronella grass). Jpn Agric Res Q. 2013;37:249–52.CrossRef
28.
go back to reference Wei LS, Wee W. Chemical composition and antimicrobial activity of Cymbopogon nardus citronella essential oil against systemic bacteria of aquatic animals. Iran J Microbiol. 2013;5:147–52. Wei LS, Wee W. Chemical composition and antimicrobial activity of Cymbopogon nardus citronella essential oil against systemic bacteria of aquatic animals. Iran J Microbiol. 2013;5:147–52.
29.
go back to reference Lal M. Stability for oil yield and variety recommendations using AMMI (additive main effects and multiplicative interactions) model in lemongrass (Cymbopogon species). Ind Crop Prod. 2012;40:296–301.CrossRef Lal M. Stability for oil yield and variety recommendations using AMMI (additive main effects and multiplicative interactions) model in lemongrass (Cymbopogon species). Ind Crop Prod. 2012;40:296–301.CrossRef
30.
go back to reference Adinarayana G, Rahul G, Kiran RS, Syamsundar KV, Rajeswara BR. Evaluation of antimicrobial potential of field distilled and water-soluble essential oils of Cymbopogon flexuosus. J Pharmacogn. 2012;3:142–6. Adinarayana G, Rahul G, Kiran RS, Syamsundar KV, Rajeswara BR. Evaluation of antimicrobial potential of field distilled and water-soluble essential oils of Cymbopogon flexuosus. J Pharmacogn. 2012;3:142–6.
31.
go back to reference Sonboli A, Mirjalili MH, Yousefzadi M. Antimicrobial activity and composition of the essential oil of Cymbopogon Olivieri (Boiss.). Bor from Iran Iran J Pharm Res. 2010;1:65–8. Sonboli A, Mirjalili MH, Yousefzadi M. Antimicrobial activity and composition of the essential oil of Cymbopogon Olivieri (Boiss.). Bor from Iran Iran J Pharm Res. 2010;1:65–8.
32.
go back to reference Kalemba D, Kunicka A. Antibacterial and antifungal properties of essential oils. Curr Med Chem. 2003;10:813–29.CrossRef Kalemba D, Kunicka A. Antibacterial and antifungal properties of essential oils. Curr Med Chem. 2003;10:813–29.CrossRef
33.
go back to reference Tampieri MP, Galuppi R, Macchioni F, Carelle M, Falcioni L, Cioni P, et al. The inhibition of Candida albicans by selected essential oils and their major components. Mycopathologia. 2005;159:339–45.CrossRef Tampieri MP, Galuppi R, Macchioni F, Carelle M, Falcioni L, Cioni P, et al. The inhibition of Candida albicans by selected essential oils and their major components. Mycopathologia. 2005;159:339–45.CrossRef
34.
go back to reference Si W, Gong J, Tsao R, Zhou T, Yu H, Poppe C, et al. Antimicrobial activity of essential oils and structurally related synthetic food additives towards selected pathogenic and beneficial gut bacteria. J Appl Microbiol. 2006;100:296–305.CrossRef Si W, Gong J, Tsao R, Zhou T, Yu H, Poppe C, et al. Antimicrobial activity of essential oils and structurally related synthetic food additives towards selected pathogenic and beneficial gut bacteria. J Appl Microbiol. 2006;100:296–305.CrossRef
35.
go back to reference Van Zyl RL, Seatlholo ST, Van Vuuren SF. The biological activities of 20 nature identical essential oil constituents. J Essent Oil Res. 2006;18:129–33. Van Zyl RL, Seatlholo ST, Van Vuuren SF. The biological activities of 20 nature identical essential oil constituents. J Essent Oil Res. 2006;18:129–33.
36.
go back to reference Rosato A, Vitali C, Laurentis N, Armenise D, Antonietta MM. Antibacterial effect of some essential oils administered alone or in combination with Norfloxacin. Phytomedicine. 2007;14:727–32.CrossRef Rosato A, Vitali C, Laurentis N, Armenise D, Antonietta MM. Antibacterial effect of some essential oils administered alone or in combination with Norfloxacin. Phytomedicine. 2007;14:727–32.CrossRef
37.
go back to reference Gochev V, Wlcek K, Buchbauer G, Stoyanova A, Dobreva A, Schmidt E, Jirovetz L. Comparative evaluation of antimicrobial activity and composition of rose oils from various geographic origins, in particular Bulgarian rose oil. Nat Prod Commun. 2008;3:1063–8. Gochev V, Wlcek K, Buchbauer G, Stoyanova A, Dobreva A, Schmidt E, Jirovetz L. Comparative evaluation of antimicrobial activity and composition of rose oils from various geographic origins, in particular Bulgarian rose oil. Nat Prod Commun. 2008;3:1063–8.
38.
go back to reference Kamatou GPP, Viljoen AM. Linalool—a review of a biologically active compound of commercial importance. Nat Prod Commun. 2008;3:1183–92. Kamatou GPP, Viljoen AM. Linalool—a review of a biologically active compound of commercial importance. Nat Prod Commun. 2008;3:1183–92.
39.
go back to reference Mahdian F, Mahboubi M, Rahimi E, Shad MM. Chemical composition, antimicrobial and antioxidant activities of Echinophora platyloba essential oil. Infectio. 2017;21:176–81.CrossRef Mahdian F, Mahboubi M, Rahimi E, Shad MM. Chemical composition, antimicrobial and antioxidant activities of Echinophora platyloba essential oil. Infectio. 2017;21:176–81.CrossRef
41.
go back to reference Van Vuuren S, Suliman S, Viljoen A. The antimicrobial activity of four commercial essential oils in combination with conventional antimicrobials. Lett Appl Microbiol. 2009;48:440–6.CrossRef Van Vuuren S, Suliman S, Viljoen A. The antimicrobial activity of four commercial essential oils in combination with conventional antimicrobials. Lett Appl Microbiol. 2009;48:440–6.CrossRef
42.
go back to reference Granata G, Stracquadanio S, Leonardi M, Napoli E, Consoli GML, Cafiso V, et al. Essential oils encapsulated in polymer-based nanocapsules as potential candidates for application in food preservation. Food Chem. 2018;269:286–92.CrossRef Granata G, Stracquadanio S, Leonardi M, Napoli E, Consoli GML, Cafiso V, et al. Essential oils encapsulated in polymer-based nanocapsules as potential candidates for application in food preservation. Food Chem. 2018;269:286–92.CrossRef
43.
go back to reference Pranchevicius MCS, Vieira TR. Production of recombinant immunotherapeutics for anticancer treatment: the role of bioengineering. Bioengineered. 2013;4:305–12.CrossRef Pranchevicius MCS, Vieira TR. Production of recombinant immunotherapeutics for anticancer treatment: the role of bioengineering. Bioengineered. 2013;4:305–12.CrossRef
44.
go back to reference Zhang Y, Liu X, Wang Y, Jiang P, Quek SY. Antibacterial activity and mechanism of cinnamon essential oil against E. coli and S. aureus. Food Control. 2016;59:282–9.CrossRef Zhang Y, Liu X, Wang Y, Jiang P, Quek SY. Antibacterial activity and mechanism of cinnamon essential oil against E. coli and S. aureus. Food Control. 2016;59:282–9.CrossRef
45.
go back to reference Heydari M, Zanfardino A, Taleei A, Shahnejat Bushehri A, Hadian J, Maresca V, et al. Effect of heat stress on yield, Monoterpene content and antibacterial activity of essential oils of Mentha x piperita var. Mitcham and Mentha arvensis var. piperascens. Molecules. 2018;23:1903.CrossRef Heydari M, Zanfardino A, Taleei A, Shahnejat Bushehri A, Hadian J, Maresca V, et al. Effect of heat stress on yield, Monoterpene content and antibacterial activity of essential oils of Mentha x piperita var. Mitcham and Mentha arvensis var. piperascens. Molecules. 2018;23:1903.CrossRef
46.
go back to reference Dalbey RE, Kuhn A. Protein traffic in gram-negative bacteria – how exported and secreted proteins find their way. FEMS Microbiol Rev. 2012;36:1023–45.CrossRef Dalbey RE, Kuhn A. Protein traffic in gram-negative bacteria – how exported and secreted proteins find their way. FEMS Microbiol Rev. 2012;36:1023–45.CrossRef
47.
go back to reference Arrigo D. M, Ginestra G, Mandalari G, Furneri P, Bisignano G. synergism and postantibiotic effect of tobramycin and Melaleuca alternifolia (tea tree) oil against S. aureus and E. coli. Phytomedicine. 2010;17:317–22.CrossRef Arrigo D. M, Ginestra G, Mandalari G, Furneri P, Bisignano G. synergism and postantibiotic effect of tobramycin and Melaleuca alternifolia (tea tree) oil against S. aureus and E. coli. Phytomedicine. 2010;17:317–22.CrossRef
Metadata
Title
Antimicrobial activities and mechanism of action of Cymbopogon khasianus (Munro ex Hackel) Bor essential oil
Authors
Gurpreet Singh
Meenu Katoch
Publication date
01-12-2020
Publisher
BioMed Central
Published in
BMC Complementary Medicine and Therapies / Issue 1/2020
Electronic ISSN: 2662-7671
DOI
https://doi.org/10.1186/s12906-020-03112-1

Other articles of this Issue 1/2020

BMC Complementary Medicine and Therapies 1/2020 Go to the issue