[5]
Centres for Disease Control and Prevention, US Department of Health and Human Services. Antibiotic resistance threats in the United States; CDC: Atlanta, 2013.
[9]
Forssten, S. Genetic basis and diagnostics of extended-spectrum β-
lactamases among Enterobacteriaceae in Finland. 2009.
[22]
Miller, E. L. C. N. M. The penicillins: a review and update Jounrnal of midwidery and women’s health., 2002. 47(6), 426-434.
[28]
Laxminarayan, R.; Chaudhury, R.R. Antibiotic Resistance in India:
Drivers and Opportunities for Action. PLoS Med.,2016, 13(3)e,
1001974.
[http://dx.doi.org/10.1371/journal.pmed.1001974] [PMID:
26934098]
[41]
Gajera, H.P.; Patel, S.V.; Golakiya, B.A. Antioxidant properties of some therapeutically active medicinal plants- an overview. J. Maps, 2005, 27, 91-100.
[43]
Kurup, P.N.V. Ayurveda- A potential Global Medical system.
Scientific Basis for Ayurvedic Therapies; Mishra, L.C., Ed.;
CRC Press: New York, 2004, pp. 1-15.
[44]
Ravishankar., and Shukla., “Indian systems of medicine: a brief profile. Afr. J. Trad., 2007, 4(3), 319-337.
[45]
Goswami, A.; Barooah, P.K.; Sandhu, J.S. Prospect of herbal drugs in the age of globalization- Indian scenario. J. Sci. Ind. Res. (India), 2002, 61, 423-431.
[46]
Tambekar, D. H.; Dahikar, S. B. Antibacterial activity of some Indian ayurvedic preparations against enteric bacterial pathogens. 2011. 2(1), 24-29. [http://dx.doi.org/10.4103/2231-4040.79801]
[47]
Ahmad, T.; Mateen, A.; Waheed, M.A.; Rasheed, M.A.N.; Ahmad, S.G.; Alam, M.I.; Saher, N.; Ahmed, M.W.; Yadav, P.K.; Siddiqui, Z.A.; Ali, S. Antimicrobial activity of some herbal drugs used in unani system of medicine. Int. J. Herbal. Med., 2015, 2(5), 27-30.
[49]
Krishnaraju, A.V.; Rao, T.V.N.; Sundararaju, D. Assessment of bioactivity of Indian medicinal plants using Brine shrimp (Artemiasalina) lethality assay. Int. J. ApplSci. Eng., 2005, 2, 125-134.
[52]
Limaa, B.; Sanchez, M.; Agüeroa, M.B.; Tapiaa, A.; Palermo, J.A.; Feresin, G.E. Antibacterial activity of extracts and compounds isolated from the Andean medicinal plant Azorella cryptantha (Clos) Reiche, Apiaceae. Ind. Crops Prod., 2015, 64, 152-157.
[63]
Sivaperumal, R.; Ramya, S.; Ravi, A.V.; Rajasekaran, C.; Jayakumararaj, R. Ethnopharmacological studies on the medicinal plants used by tribal inhabitants of Kottur hills, Dharmapuri, Tamilnadu, India. Environ. We Int. J. Sci. Tech., 2010, 5, 57-64.
[66]
Kamel, A. Abd-Elsalam, Prasad R, Nanobiotechnology Applications in Plant Protection; Springer, 2018.
[74]
Fessenden, R.J.; Fessenden, J.S. Organic chemistry, 2nd ed; Willard Grant Press: Boston, Mass., 1982.
[80]
Davidson, P.M.; Taylor, M.T. Chemical preservatives and natural antimicrobial compounds.Food Microbiology: Fundamentals and Frontiers; American Society for Microbiology Press: Washington, DC, 2007, pp. 713-734.
[83]
Mohamed, F.G.; Abdel-Mageed, M.H.; Hafez, M.A.; Soltan, H.H.; Rashid, I.A.; Abdel-Rahman, F.A. Effect of some organic acids on anatomical, physiological changes and post-harvest diseases of snap bean pods. J. Biol. Chem. Environ. Sci., 2015, 10(3), 287-311.
[87]
Brackman, G; Defoirdt, T; Miyamoto, C Cinnamaldehyde and
cinnamaldehyde derivatives reduce virulence in Vibrio spp. by decreasing
the DNA-binding activity of the quorum sensing response
regulator LuxR. BMC Microbiology,2008, 8(1, article 149)
[121]
Natasha, M L.; de Mariana, B; de Leandro, O L.; Silvia, C A.; dos Marcelo, S H.; Fabio, P A. Synergism of plant compound with traditional
antimicrobials against streptococcus spp. isolated from bovine
mastitis. 2018, 9, 1203.
[127]
Linciano, P.; Cendron, L.; Gianquinto, E.; Spyrakis, F.; Tondi, D. Ten Years with New Delhi Metallo-β-lactamase-1 (NDM-1): From
Structural Insights to Inhibitor Design. ACS Infect. Dis., 2019, 5(1),
9-34, 9-34.
[137]
Embelin Restores Carbapenem Efficacy against NDM-1-Positive Pathogens. Front. Microbiol., 2018, 9, 71.