Freitas PR, de Araújo ACJ, Barbosa CRS, Muniz DF, Silva ACA, Rocha JE, Tintino CDMO,
Filho JR, Silva LE, Confortin C, Amaral W, Deschamps C, Filho JMB, Lima NTR,
Tintino SR, Coutinho HDM (2020) GC-MS-FID and potentiation of the antibiotic activity of
the essential oil of Baccharis reticulata (ruiz & pav.) pers. and a-pinene. Ind Crops Prod
145:112106. https://doi.org/10.1016/j.indcrop.2020.112106
Fukuda M, Ohkoshi E, Makino M, Fujimoto Y (2006) Studies on the constituents of the leaves of
Baccharis dracunculifolia (Asteraceae) and their cytotoxic activity. Chem Pharm Bull (Tokyo)
54(10):1465–1468
Giuliano DA (2001) Clasificación infragenérica de las especies argentinas de Baccharis
(Asteraceae, Astereae). Darwiniana 39(1–2):131–154
Gwynne PJ, Gallagher MP (2018) Light as a broad-spectrum antimicrobial. Front Microbiol 9:119.
https://doi.org/10.3389/fmicb.2018.00119
Habbal O, Hasson SS, El-Hag AH, Al-Mahrooqi Z, Al-Hashmi N, Al-Bimani Z, Al- Balushi MS,
Al-jabri AA (2011) Antibacterial activity of Lawsonia inermis Linn (henna) against
Pseudomonas aeruginosa. Asian Pac J Trop Biomed 1:173–176. https://doi.org/10.1016/
S2221-1691(11)60021-X
Hayes K, O’Halloran F, Cotter L (2020) A review of antibiotic resistance in group B
Streptococcus: the story so far. Crit Rev Microbiol 49:1–17. https://doi.org/10.1080/
1040841X.2020.175862
Inui T, Wang Y, Deng S, Smith DC, Franzblau SG, Pauli GF (2007) Counter-current
chroma-tography based analysis of synergy in an anti-tuberculosis ethnobotanical.
J Chromatogr A 1151:211–215
Khameneh B, Iranshahy M, Soheili V, Bazzaz BSF (2019) Review on plant antimicrobials: a
mechanistic viewpoint. Antimicrob Resist Infect Control 8:118. https://doi.org/10.1186/
s13756-019-0559-6
Khameneh B, Diab R, Ghazvini K (2016) Fazly Bazzaz BS (2016) Breakthroughs in bacterial
resistance mechanisms and the potential ways to combat them. Microb Pathog 95:32–42
Kirubakari B, Sangeetha T, Vijayarathna S, Chen Y, Kanwar JR, Leow CH, Shin LN,
Swamy MK, Subramaniam S, Sasidharan S (2019) Antibacterial and Antifungal Agents of
Higher Plants. Natural Bio-active Compounds. Springer, Singapore, pp 493–508
Lautié E, Russo O, Ducrot P, Boutin JA (2020) Unraveling plant natural chemical diversity for
drug discovery purposes. Front Pharmacol 11:397. https://doi.org/10.3389/fphar.2020.00397
Levy SB (1992) Active efflux mechanisms for antimicrobial resistance. Antimicrob Agents
Chemother 36(4):695–703
Liu Q, Meng X, Li Y, Zhao CN, Tang GY, Li HB (2017) Antibacterial and antifungal activities of
spices. Int J Mol Sci 18(6):1283. https://doi.org/10.3390/ijms18061283
Lorenzi, H (1998) Árvores brasileiras: manual de identificação e cultivo de plantas arbóreas do
Brasil. 2 ed. Nova Odessa: Plantarum, 2v. ISBN do v.2 – 8586714070
Maxwell A (1997) DNA gyrase as a drug target. Trends Microbiol 5(3):102–109
McBain AJ, Bartolo RG, Catrenich CE, Charbonneau D, Ledder RG, Gilbert P (2003) Effects of a
chlorhexidine gluconate-containing mouthwash on the vitality and antimicrobial susceptibility
of in vitro oral bacterial ecosystems. Appl Environ Microbiol 69(8):4770–4776
Mgbeahuruike EE, Yrjönen T, Vuorela H, Holm Y (2017) Bioactive compounds from medicinal
plants: focus on piper species. South African J Botany 112:54–69
Michelin DC, Moreschi P, Lima AC, Nascimento GGF, Paganelli MO, Chaud MV (2005)
Avaliação da atividade antimicrobiana de extratos vegetais. Rev Bras Farmacogn 15:316–320
Mohanty SK, Swamy MK, Sinniah UR, Anuradha M (2017) Leptadenia reticulata (Retz.) Wight &
Arn. (Jivanti): Botanical, agronomical, phytochemical, pharmacological, and biotechnological
aspects. Molecules 22:1019. https://doi.org/10.3390/molecules22061019
Munita JM, Arias CA (2016) Mechanisms of antibiotic resistance virulence mechanisms of
bacterial pathogens. Microbiol Spectr 481–511.
Negi BS, Dave BP (2010) In vitro antimicrobial activity of acacia catechu and its phytochemical
analysis. Indian J Microbiol 50(4):369–374. https://doi.org/10.1007/s12088-011-0061-1
7 Antibacterial and Antifungal Plant Metabolites …
283
Filho JR, Silva LE, Confortin C, Amaral W, Deschamps C, Filho JMB, Lima NTR,
Tintino SR, Coutinho HDM (2020) GC-MS-FID and potentiation of the antibiotic activity of
the essential oil of Baccharis reticulata (ruiz & pav.) pers. and a-pinene. Ind Crops Prod
145:112106. https://doi.org/10.1016/j.indcrop.2020.112106
Fukuda M, Ohkoshi E, Makino M, Fujimoto Y (2006) Studies on the constituents of the leaves of
Baccharis dracunculifolia (Asteraceae) and their cytotoxic activity. Chem Pharm Bull (Tokyo)
54(10):1465–1468
Giuliano DA (2001) Clasificación infragenérica de las especies argentinas de Baccharis
(Asteraceae, Astereae). Darwiniana 39(1–2):131–154
Gwynne PJ, Gallagher MP (2018) Light as a broad-spectrum antimicrobial. Front Microbiol 9:119.
https://doi.org/10.3389/fmicb.2018.00119
Habbal O, Hasson SS, El-Hag AH, Al-Mahrooqi Z, Al-Hashmi N, Al-Bimani Z, Al- Balushi MS,
Al-jabri AA (2011) Antibacterial activity of Lawsonia inermis Linn (henna) against
Pseudomonas aeruginosa. Asian Pac J Trop Biomed 1:173–176. https://doi.org/10.1016/
S2221-1691(11)60021-X
Hayes K, O’Halloran F, Cotter L (2020) A review of antibiotic resistance in group B
Streptococcus: the story so far. Crit Rev Microbiol 49:1–17. https://doi.org/10.1080/
1040841X.2020.175862
Inui T, Wang Y, Deng S, Smith DC, Franzblau SG, Pauli GF (2007) Counter-current
chroma-tography based analysis of synergy in an anti-tuberculosis ethnobotanical.
J Chromatogr A 1151:211–215
Khameneh B, Iranshahy M, Soheili V, Bazzaz BSF (2019) Review on plant antimicrobials: a
mechanistic viewpoint. Antimicrob Resist Infect Control 8:118. https://doi.org/10.1186/
s13756-019-0559-6
Khameneh B, Diab R, Ghazvini K (2016) Fazly Bazzaz BS (2016) Breakthroughs in bacterial
resistance mechanisms and the potential ways to combat them. Microb Pathog 95:32–42
Kirubakari B, Sangeetha T, Vijayarathna S, Chen Y, Kanwar JR, Leow CH, Shin LN,
Swamy MK, Subramaniam S, Sasidharan S (2019) Antibacterial and Antifungal Agents of
Higher Plants. Natural Bio-active Compounds. Springer, Singapore, pp 493–508
Lautié E, Russo O, Ducrot P, Boutin JA (2020) Unraveling plant natural chemical diversity for
drug discovery purposes. Front Pharmacol 11:397. https://doi.org/10.3389/fphar.2020.00397
Levy SB (1992) Active efflux mechanisms for antimicrobial resistance. Antimicrob Agents
Chemother 36(4):695–703
Liu Q, Meng X, Li Y, Zhao CN, Tang GY, Li HB (2017) Antibacterial and antifungal activities of
spices. Int J Mol Sci 18(6):1283. https://doi.org/10.3390/ijms18061283
Lorenzi, H (1998) Árvores brasileiras: manual de identificação e cultivo de plantas arbóreas do
Brasil. 2 ed. Nova Odessa: Plantarum, 2v. ISBN do v.2 – 8586714070
Maxwell A (1997) DNA gyrase as a drug target. Trends Microbiol 5(3):102–109
McBain AJ, Bartolo RG, Catrenich CE, Charbonneau D, Ledder RG, Gilbert P (2003) Effects of a
chlorhexidine gluconate-containing mouthwash on the vitality and antimicrobial susceptibility
of in vitro oral bacterial ecosystems. Appl Environ Microbiol 69(8):4770–4776
Mgbeahuruike EE, Yrjönen T, Vuorela H, Holm Y (2017) Bioactive compounds from medicinal
plants: focus on piper species. South African J Botany 112:54–69
Michelin DC, Moreschi P, Lima AC, Nascimento GGF, Paganelli MO, Chaud MV (2005)
Avaliação da atividade antimicrobiana de extratos vegetais. Rev Bras Farmacogn 15:316–320
Mohanty SK, Swamy MK, Sinniah UR, Anuradha M (2017) Leptadenia reticulata (Retz.) Wight &
Arn. (Jivanti): Botanical, agronomical, phytochemical, pharmacological, and biotechnological
aspects. Molecules 22:1019. https://doi.org/10.3390/molecules22061019
Munita JM, Arias CA (2016) Mechanisms of antibiotic resistance virulence mechanisms of
bacterial pathogens. Microbiol Spectr 481–511.
Negi BS, Dave BP (2010) In vitro antimicrobial activity of acacia catechu and its phytochemical
analysis. Indian J Microbiol 50(4):369–374. https://doi.org/10.1007/s12088-011-0061-1
7 Antibacterial and Antifungal Plant Metabolites …
283
