Antimicrobial properties of tomato leaves, stems, and fruit and their relationship to chemical composition
We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and Tritrichomonas foetus-like strain C1 that cause disease in humans and farm and domesticated animals. The increasing prevalence of antibiotic res...
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Published in: | BMC complementary and alternative medicine Vol. 21; no. 1; p. 229 |
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Abstract | We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and Tritrichomonas foetus-like strain C1 that cause disease in humans and farm and domesticated animals. The increasing prevalence of antibiotic resistance requires development of new tools to enhance or replace medicinal antibiotics.
Wild tomato plants were harvested and divided into leaves, stems, and fruit of different colors: green, yellow, and red. Samples were freeze dried and ground with a handheld mill. The resulting powders were evaluated for their potential anti-microbial effects on protozoan parasites, bacteria, and fungi. A concentration of 0.02% (w/v) was used for the inhibition of protozoan parasites. A high concentration of 10% (w/v) solution was tested for bacteria and fungi as an initial screen to evaluate potential anti-microbial activity and results using this high concentration limits its clinical relevance.
Natural powders derived from various parts of tomato plants were all effective in inhibiting the growth of the three trichomonads to varying degrees. Test samples from leaves, stems, and immature 'green' tomato peels and fruit, all containing tomatine, were more effective as an inhibitor of the D1 strain than those prepared from yellow and red tomato peels which lack tomatine. Chlorogenic acid and quercetin glycosides were present in all parts of the plant and fruit, while caffeic acid was only found in the fruit peels. Any correlation between plant components and inhibition of the G3 and C1 strains was not apparent, although all the powders were variably effective. Tomato leaf was the most effective powder in all strains, and was also the highest in tomatine. S. enterica showed a minor susceptibility while B. cereus and C. albicans fungi both showed a significant growth inhibition with some of the test powders. The powders inhibited growth of the pathogens without affecting beneficial lactobacilli found in the normal flora of the vagina.
The results suggest that powders prepared from tomato leaves, stems, and green tomato peels and to a lesser extent from peels from yellow and red tomatoes offer potential multiple health benefits against infections caused by pathogenic protozoa, bacteria, and fungi, without affecting beneficial lactobacilli that also reside in the normal flora of the vagina. |
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AbstractList | Background We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and Tritrichomonas foetus-like strain C1 that cause disease in humans and farm and domesticated animals. The increasing prevalence of antibiotic resistance requires development of new tools to enhance or replace medicinal antibiotics. Methods Wild tomato plants were harvested and divided into leaves, stems, and fruit of different colors: green, yellow, and red. Samples were freeze dried and ground with a handheld mill. The resulting powders were evaluated for their potential anti-microbial effects on protozoan parasites, bacteria, and fungi. A concentration of 0.02% (w/v) was used for the inhibition of protozoan parasites. A high concentration of 10% (w/v) solution was tested for bacteria and fungi as an initial screen to evaluate potential anti-microbial activity and results using this high concentration limits its clinical relevance. Results Natural powders derived from various parts of tomato plants were all effective in inhibiting the growth of the three trichomonads to varying degrees. Test samples from leaves, stems, and immature 'green' tomato peels and fruit, all containing tomatine, were more effective as an inhibitor of the D1 strain than those prepared from yellow and red tomato peels which lack tomatine. Chlorogenic acid and quercetin glycosides were present in all parts of the plant and fruit, while caffeic acid was only found in the fruit peels. Any correlation between plant components and inhibition of the G3 and C1 strains was not apparent, although all the powders were variably effective. Tomato leaf was the most effective powder in all strains, and was also the highest in tomatine. S. enterica showed a minor susceptibility while B. cereus and C. albicans fungi both showed a significant growth inhibition with some of the test powders. The powders inhibited growth of the pathogens without affecting beneficial lactobacilli found in the normal flora of the vagina. Conclusions The results suggest that powders prepared from tomato leaves, stems, and green tomato peels and to a lesser extent from peels from yellow and red tomatoes offer potential multiple health benefits against infections caused by pathogenic protozoa, bacteria, and fungi, without affecting beneficial lactobacilli that also reside in the normal flora of the vagina. Keywords: Trichomonas vaginalis, Tritrichomonas foetus, Lactobacilli, bacteria, fungi, Infection, Trichomoniasis, Inhibition, Leaves, Stems, Tomato, Tomatine, Phenolic, Flavonoid Background We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and Tritrichomonas foetus-like strain C1 that cause disease in humans and farm and domesticated animals. The increasing prevalence of antibiotic resistance requires development of new tools to enhance or replace medicinal antibiotics. Methods Wild tomato plants were harvested and divided into leaves, stems, and fruit of different colors: green, yellow, and red. Samples were freeze dried and ground with a handheld mill. The resulting powders were evaluated for their potential anti-microbial effects on protozoan parasites, bacteria, and fungi. A concentration of 0.02% (w/v) was used for the inhibition of protozoan parasites. A high concentration of 10% (w/v) solution was tested for bacteria and fungi as an initial screen to evaluate potential anti-microbial activity and results using this high concentration limits its clinical relevance. Results Natural powders derived from various parts of tomato plants were all effective in inhibiting the growth of the three trichomonads to varying degrees. Test samples from leaves, stems, and immature ‘green’ tomato peels and fruit, all containing tomatine, were more effective as an inhibitor of the D1 strain than those prepared from yellow and red tomato peels which lack tomatine. Chlorogenic acid and quercetin glycosides were present in all parts of the plant and fruit, while caffeic acid was only found in the fruit peels. Any correlation between plant components and inhibition of the G3 and C1 strains was not apparent, although all the powders were variably effective. Tomato leaf was the most effective powder in all strains, and was also the highest in tomatine. S. enterica showed a minor susceptibility while B. cereus and C. albicans fungi both showed a significant growth inhibition with some of the test powders. The powders inhibited growth of the pathogens without affecting beneficial lactobacilli found in the normal flora of the vagina. Conclusions The results suggest that powders prepared from tomato leaves, stems, and green tomato peels and to a lesser extent from peels from yellow and red tomatoes offer potential multiple health benefits against infections caused by pathogenic protozoa, bacteria, and fungi, without affecting beneficial lactobacilli that also reside in the normal flora of the vagina. Abstract Background We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and Tritrichomonas foetus-like strain C1 that cause disease in humans and farm and domesticated animals. The increasing prevalence of antibiotic resistance requires development of new tools to enhance or replace medicinal antibiotics. Methods Wild tomato plants were harvested and divided into leaves, stems, and fruit of different colors: green, yellow, and red. Samples were freeze dried and ground with a handheld mill. The resulting powders were evaluated for their potential anti-microbial effects on protozoan parasites, bacteria, and fungi. A concentration of 0.02% (w/v) was used for the inhibition of protozoan parasites. A high concentration of 10% (w/v) solution was tested for bacteria and fungi as an initial screen to evaluate potential anti-microbial activity and results using this high concentration limits its clinical relevance. Results Natural powders derived from various parts of tomato plants were all effective in inhibiting the growth of the three trichomonads to varying degrees. Test samples from leaves, stems, and immature ‘green’ tomato peels and fruit, all containing tomatine, were more effective as an inhibitor of the D1 strain than those prepared from yellow and red tomato peels which lack tomatine. Chlorogenic acid and quercetin glycosides were present in all parts of the plant and fruit, while caffeic acid was only found in the fruit peels. Any correlation between plant components and inhibition of the G3 and C1 strains was not apparent, although all the powders were variably effective. Tomato leaf was the most effective powder in all strains, and was also the highest in tomatine. S. enterica showed a minor susceptibility while B. cereus and C. albicans fungi both showed a significant growth inhibition with some of the test powders. The powders inhibited growth of the pathogens without affecting beneficial lactobacilli found in the normal flora of the vagina. Conclusions The results suggest that powders prepared from tomato leaves, stems, and green tomato peels and to a lesser extent from peels from yellow and red tomatoes offer potential multiple health benefits against infections caused by pathogenic protozoa, bacteria, and fungi, without affecting beneficial lactobacilli that also reside in the normal flora of the vagina. We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and Tritrichomonas foetus-like strain C1 that cause disease in humans and farm and domesticated animals. The increasing prevalence of antibiotic resistance requires development of new tools to enhance or replace medicinal antibiotics. Wild tomato plants were harvested and divided into leaves, stems, and fruit of different colors: green, yellow, and red. Samples were freeze dried and ground with a handheld mill. The resulting powders were evaluated for their potential anti-microbial effects on protozoan parasites, bacteria, and fungi. A concentration of 0.02% (w/v) was used for the inhibition of protozoan parasites. A high concentration of 10% (w/v) solution was tested for bacteria and fungi as an initial screen to evaluate potential anti-microbial activity and results using this high concentration limits its clinical relevance. Natural powders derived from various parts of tomato plants were all effective in inhibiting the growth of the three trichomonads to varying degrees. Test samples from leaves, stems, and immature 'green' tomato peels and fruit, all containing tomatine, were more effective as an inhibitor of the D1 strain than those prepared from yellow and red tomato peels which lack tomatine. Chlorogenic acid and quercetin glycosides were present in all parts of the plant and fruit, while caffeic acid was only found in the fruit peels. Any correlation between plant components and inhibition of the G3 and C1 strains was not apparent, although all the powders were variably effective. Tomato leaf was the most effective powder in all strains, and was also the highest in tomatine. S. enterica showed a minor susceptibility while B. cereus and C. albicans fungi both showed a significant growth inhibition with some of the test powders. The powders inhibited growth of the pathogens without affecting beneficial lactobacilli found in the normal flora of the vagina. The results suggest that powders prepared from tomato leaves, stems, and green tomato peels and to a lesser extent from peels from yellow and red tomatoes offer potential multiple health benefits against infections caused by pathogenic protozoa, bacteria, and fungi, without affecting beneficial lactobacilli that also reside in the normal flora of the vagina. We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and Tritrichomonas foetus-like strain C1 that cause disease in humans and farm and domesticated animals. The increasing prevalence of antibiotic resistance requires development of new tools to enhance or replace medicinal antibiotics. Wild tomato plants were harvested and divided into leaves, stems, and fruit of different colors: green, yellow, and red. Samples were freeze dried and ground with a handheld mill. The resulting powders were evaluated for their potential anti-microbial effects on protozoan parasites, bacteria, and fungi. A concentration of 0.02% (w/v) was used for the inhibition of protozoan parasites. A high concentration of 10% (w/v) solution was tested for bacteria and fungi as an initial screen to evaluate potential anti-microbial activity and results using this high concentration limits its clinical relevance. Natural powders derived from various parts of tomato plants were all effective in inhibiting the growth of the three trichomonads to varying degrees. Test samples from leaves, stems, and immature 'green' tomato peels and fruit, all containing tomatine, were more effective as an inhibitor of the D1 strain than those prepared from yellow and red tomato peels which lack tomatine. Chlorogenic acid and quercetin glycosides were present in all parts of the plant and fruit, while caffeic acid was only found in the fruit peels. Any correlation between plant components and inhibition of the G3 and C1 strains was not apparent, although all the powders were variably effective. Tomato leaf was the most effective powder in all strains, and was also the highest in tomatine. S. enterica showed a minor susceptibility while B. cereus and C. albicans fungi both showed a significant growth inhibition with some of the test powders. The powders inhibited growth of the pathogens without affecting beneficial lactobacilli found in the normal flora of the vagina. The results suggest that powders prepared from tomato leaves, stems, and green tomato peels and to a lesser extent from peels from yellow and red tomatoes offer potential multiple health benefits against infections caused by pathogenic protozoa, bacteria, and fungi, without affecting beneficial lactobacilli that also reside in the normal flora of the vagina. BACKGROUNDWe previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and Tritrichomonas foetus-like strain C1 that cause disease in humans and farm and domesticated animals. The increasing prevalence of antibiotic resistance requires development of new tools to enhance or replace medicinal antibiotics.METHODSWild tomato plants were harvested and divided into leaves, stems, and fruit of different colors: green, yellow, and red. Samples were freeze dried and ground with a handheld mill. The resulting powders were evaluated for their potential anti-microbial effects on protozoan parasites, bacteria, and fungi. A concentration of 0.02% (w/v) was used for the inhibition of protozoan parasites. A high concentration of 10% (w/v) solution was tested for bacteria and fungi as an initial screen to evaluate potential anti-microbial activity and results using this high concentration limits its clinical relevance.RESULTSNatural powders derived from various parts of tomato plants were all effective in inhibiting the growth of the three trichomonads to varying degrees. Test samples from leaves, stems, and immature 'green' tomato peels and fruit, all containing tomatine, were more effective as an inhibitor of the D1 strain than those prepared from yellow and red tomato peels which lack tomatine. Chlorogenic acid and quercetin glycosides were present in all parts of the plant and fruit, while caffeic acid was only found in the fruit peels. Any correlation between plant components and inhibition of the G3 and C1 strains was not apparent, although all the powders were variably effective. Tomato leaf was the most effective powder in all strains, and was also the highest in tomatine. S. enterica showed a minor susceptibility while B. cereus and C. albicans fungi both showed a significant growth inhibition with some of the test powders. The powders inhibited growth of the pathogens without affecting beneficial lactobacilli found in the normal flora of the vagina.CONCLUSIONSThe results suggest that powders prepared from tomato leaves, stems, and green tomato peels and to a lesser extent from peels from yellow and red tomatoes offer potential multiple health benefits against infections caused by pathogenic protozoa, bacteria, and fungi, without affecting beneficial lactobacilli that also reside in the normal flora of the vagina. |
ArticleNumber | 229 |
Audience | Academic |
Author | Kuang, Irene Kim, Jihwan Friedman, Mendel Gong, Steven Tam, Christina C Nguyen, Kevin Hou, Tiffany Kwon, Okhun Cheng, Luisa W Tam, Justin Hamada, Sabrina Liu, Max Land, Kirkwood M Escobar, Sydney Nguyen, Daniel Kim, Jong H |
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Cites_doi | 10.1155/2015/683640 10.3390/toxins5040743 10.3390/foods10020230 10.1021/jf0306845 10.3109/1040841X.2013.813904 10.1016/j.vetpar.2017.06.024 10.1177/1098612X17693499 10.1111/j.1365-2621.2000.tb13608.x 10.1021/jf970253k 10.1021/acs.jafc.6b04030 10.1016/0166-3542(85)90003-8 10.1038/s41598-020-63397-7 10.1016/j.vetpar.2015.08.012 10.1021/jf5040288 10.1016/j.antiviral.2018.11.011 10.1631/jzus.B1700594 10.2471/BLT.18.228486 10.1007/s00404-012-2251-4 10.1021/acs.jafc.5b00818 10.1021/acs.jafc.8b01726 10.1017/S1751731118000708 10.3390/molecules25133101 10.1093/infdis/jiz442 10.1016/S0278-6915(00)00050-8 10.1016/j.foodchem.2016.04.042 10.1038/nrmicro.2017.90 10.1021/jf100162j 10.1128/IAI.00907-17 10.1186/s12906-017-1967-x 10.3390/antibiotics9110812 10.1111/avj.12867 10.1021/jf802631t 10.3109/13880200903440211 10.1186/s12906-020-03061-9 10.1021/jf9804589 10.1021/jf981124m 10.1128/AAC.00905-16 |
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Keywords | Trichomonas vaginalis bacteria Lactobacilli Tomato Flavonoid Stems Tritrichomonas foetus Infection Leaves Trichomoniasis fungi Tomatine Phenolic Inhibition |
Language | English |
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References | 3391_CR14 M Friedman (3391_CR16) 1998; 46 H Ono (3391_CR18) 1997; 45 J Liu (3391_CR8) 2016; 64 Y Chen (3391_CR38) 2010; 48 J Rowley (3391_CR2) 2019; 97 D Poulain (3391_CR23) 2015; 41 N Kozukue (3391_CR32) 2008; 56 M Friedman (3391_CR13) 2019; 15 M Friedman (3391_CR11) 2020; 25 3391_CR12 M Diosa-Toro (3391_CR30) 2019; 161 FL van de Veerdonk (3391_CR15) 2017; 15 M Friedman (3391_CR10) 2018; 66 S-H Choi (3391_CR19) 2010; 58 RW Eisinger (3391_CR1) 2020; 222 N Phukan (3391_CR21) 2018; 86 MS Brown (3391_CR41) 1999; 47 MEA Moraes (3391_CR26) 2012; 286 S Yamashoji (3391_CR37) 2016; 209 SM Noritake (3391_CR9) 2017; 17 CC Okafor (3391_CR4) 2017; 243 JL Gookin (3391_CR6) 2017; 19 3391_CR24 N Kozukue (3391_CR17) 2004; 52 3391_CR27 B Troost (3391_CR31) 2020; 10 Z Valadkhani (3391_CR20) 2016; 1 J-Z Xu (3391_CR40) 2018; 19 A Paul (3391_CR7) 2019; 97 M Friedman (3391_CR28) 2013; 5 M Friedman (3391_CR33) 2015; 63 HV Thorne (3391_CR29) 1985; 5 3391_CR22 S Katalin (3391_CR39) 2017; 17 V Morin-Adeline (3391_CR3) 2015; 212 M Friedman (3391_CR36) 2000; 38 M Friedman (3391_CR35) 2000; 65 MD Givens (3391_CR5) 2018; 12 F Leonardelli (3391_CR25) 2016; 60 SP Kim (3391_CR34) 2015; 63 |
References_xml | – ident: 3391_CR27 doi: 10.1155/2015/683640 – volume: 5 start-page: 743 issue: 4 year: 2013 ident: 3391_CR28 publication-title: Toxins. doi: 10.3390/toxins5040743 contributor: fullname: M Friedman – ident: 3391_CR14 doi: 10.3390/foods10020230 – volume: 52 start-page: 2079 issue: 7 year: 2004 ident: 3391_CR17 publication-title: J Agric Food Chem doi: 10.1021/jf0306845 contributor: fullname: N Kozukue – volume: 41 start-page: 208 issue: 2 year: 2015 ident: 3391_CR23 publication-title: Crit Rev Microbiol doi: 10.3109/1040841X.2013.813904 contributor: fullname: D Poulain – volume: 243 start-page: 169 year: 2017 ident: 3391_CR4 publication-title: Vet Parasitol doi: 10.1016/j.vetpar.2017.06.024 contributor: fullname: CC Okafor – volume: 19 start-page: 261 issue: 3 year: 2017 ident: 3391_CR6 publication-title: J Feline Med Surg doi: 10.1177/1098612X17693499 contributor: fullname: JL Gookin – volume: 65 start-page: 897 issue: 5 year: 2000 ident: 3391_CR35 publication-title: J Food Sci doi: 10.1111/j.1365-2621.2000.tb13608.x contributor: fullname: M Friedman – volume: 45 start-page: 3743 issue: 10 year: 1997 ident: 3391_CR18 publication-title: J Agric Food Chem doi: 10.1021/jf970253k contributor: fullname: H Ono – volume: 64 start-page: 8806 issue: 46 year: 2016 ident: 3391_CR8 publication-title: J Agric Food Chem doi: 10.1021/acs.jafc.6b04030 contributor: fullname: J Liu – volume: 5 start-page: 335 issue: 6 year: 1985 ident: 3391_CR29 publication-title: Antivir Res doi: 10.1016/0166-3542(85)90003-8 contributor: fullname: HV Thorne – volume: 10 start-page: 6364 issue: 1 year: 2020 ident: 3391_CR31 publication-title: Sci Rep doi: 10.1038/s41598-020-63397-7 contributor: fullname: B Troost – volume: 212 start-page: 111 issue: 3–4 year: 2015 ident: 3391_CR3 publication-title: Vet Parasitol doi: 10.1016/j.vetpar.2015.08.012 contributor: fullname: V Morin-Adeline – volume: 63 start-page: 1142 issue: 4 year: 2015 ident: 3391_CR34 publication-title: J Agric Food Chem doi: 10.1021/jf5040288 contributor: fullname: SP Kim – volume: 161 start-page: 90 year: 2019 ident: 3391_CR30 publication-title: Antivir Res doi: 10.1016/j.antiviral.2018.11.011 contributor: fullname: M Diosa-Toro – volume: 19 start-page: 739 issue: 10 year: 2018 ident: 3391_CR40 publication-title: J Zhejiang Univ Sci B doi: 10.1631/jzus.B1700594 contributor: fullname: J-Z Xu – volume: 97 start-page: 548 issue: 8 year: 2019 ident: 3391_CR2 publication-title: Bull World Health Organ doi: 10.2471/BLT.18.228486 contributor: fullname: J Rowley – volume: 286 start-page: 125 issue: 1 year: 2012 ident: 3391_CR26 publication-title: Arch Gynecol Obstet doi: 10.1007/s00404-012-2251-4 contributor: fullname: MEA Moraes – volume: 15 start-page: 43 year: 2019 ident: 3391_CR13 publication-title: Currt Top Phytochem contributor: fullname: M Friedman – volume: 63 start-page: 3323 issue: 13 year: 2015 ident: 3391_CR33 publication-title: J Agric Food Chem doi: 10.1021/acs.jafc.5b00818 contributor: fullname: M Friedman – volume: 66 start-page: 7942 issue: 30 year: 2018 ident: 3391_CR10 publication-title: J Agric Food Chem doi: 10.1021/acs.jafc.8b01726 contributor: fullname: M Friedman – volume: 12 start-page: s165 issue: s1 year: 2018 ident: 3391_CR5 publication-title: Animal Int J of Animal Bioscie doi: 10.1017/S1751731118000708 contributor: fullname: MD Givens – volume: 25 issue: 13 year: 2020 ident: 3391_CR11 publication-title: Molecules. doi: 10.3390/molecules25133101 contributor: fullname: M Friedman – volume: 222 start-page: 1432 issue: 9 year: 2020 ident: 3391_CR1 publication-title: J Infect Dis doi: 10.1093/infdis/jiz442 contributor: fullname: RW Eisinger – ident: 3391_CR22 – volume: 38 start-page: 549 issue: 7 year: 2000 ident: 3391_CR36 publication-title: Food Chem Toxicol doi: 10.1016/S0278-6915(00)00050-8 contributor: fullname: M Friedman – volume: 209 start-page: 171 year: 2016 ident: 3391_CR37 publication-title: Food Chem doi: 10.1016/j.foodchem.2016.04.042 contributor: fullname: S Yamashoji – volume: 15 start-page: 661 issue: 11 year: 2017 ident: 3391_CR15 publication-title: Nat Rev Microbiol doi: 10.1038/nrmicro.2017.90 contributor: fullname: FL van de Veerdonk – volume: 58 start-page: 7547 issue: 13 year: 2010 ident: 3391_CR19 publication-title: J Agric Food Chem doi: 10.1021/jf100162j contributor: fullname: S-H Choi – volume: 86 start-page: e00907 issue: 8 year: 2018 ident: 3391_CR21 publication-title: Infect Immun doi: 10.1128/IAI.00907-17 contributor: fullname: N Phukan – volume: 17 start-page: No. 461 issue: 1 year: 2017 ident: 3391_CR9 publication-title: BMC Complement Altern Med doi: 10.1186/s12906-017-1967-x contributor: fullname: SM Noritake – volume: 17 start-page: 1194 issue: 13 year: 2017 ident: 3391_CR39 publication-title: Mini Rev Med Chem contributor: fullname: S Katalin – ident: 3391_CR24 doi: 10.3390/antibiotics9110812 – volume: 97 start-page: 418 issue: 10 year: 2019 ident: 3391_CR7 publication-title: Western Australia Aust Vet J doi: 10.1111/avj.12867 contributor: fullname: A Paul – volume: 56 start-page: 11920 issue: 24 year: 2008 ident: 3391_CR32 publication-title: J Agric Food Chem doi: 10.1021/jf802631t contributor: fullname: N Kozukue – volume: 48 start-page: 1018 issue: 9 year: 2010 ident: 3391_CR38 publication-title: Pharm Biol doi: 10.3109/13880200903440211 contributor: fullname: Y Chen – ident: 3391_CR12 doi: 10.1186/s12906-020-03061-9 – volume: 46 start-page: 4571 issue: 11 year: 1998 ident: 3391_CR16 publication-title: J Agric Food Chem doi: 10.1021/jf9804589 contributor: fullname: M Friedman – volume: 47 start-page: 2331 issue: 6 year: 1999 ident: 3391_CR41 publication-title: J Agric Food Chem doi: 10.1021/jf981124m contributor: fullname: MS Brown – volume: 60 start-page: 5420 issue: 9 year: 2016 ident: 3391_CR25 publication-title: Antimicrob Agents Chemother doi: 10.1128/AAC.00905-16 contributor: fullname: F Leonardelli – volume: 1 start-page: 50 year: 2016 ident: 3391_CR20 publication-title: Mediterr J Biosci contributor: fullname: Z Valadkhani |
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Snippet | We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain D1, and... Background We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain... BACKGROUNDWe previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas foetus strain... Abstract Background We previously reported that the tomato glycoalkaloid tomatine inhibited the growth of Trichomonas vaginalis strain G3, Tritrichomonas... |
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SubjectTerms | Analysis Animal behavior Animals Antibiotic resistance Antibiotics Antiinfectives and antibacterials Antimicrobial agents Antitrichomonal Agents - pharmacology Antitrichomonal Agents - therapeutic use Bacteria Bioflavonoids Biological activity Caffeic acid California Cats - parasitology Cattle - parasitology Chemical composition Chlorogenic acid Chromatography Domestic animals Drug resistance in microorganisms E coli Female Fetuses Flavones Flavonoids Flora Fruit - chemistry Fruits Fungi Glycoalkaloids Glycosides Humans Infection Lactobacilli Leaves Lycopersicon esculentum - chemistry Lycopersicon esculentum - parasitology Male Medicinal plants Medicine, Botanic Medicine, Herbal Metronidazole Microbial activity Microorganisms Parasites Parasitic diseases Plant Extracts - pharmacology Plant Extracts - therapeutic use Plant Leaves - chemistry Plant Stems - chemistry Powders Protozoa Quercetin Sexually transmitted diseases STD Stems Strains (organisms) Tomatine Tomatoes Trichomonas - drug effects Trichomonas Infections - drug therapy Trichomonas vaginalis Tritrichomonas foetus Vagina |
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Title | Antimicrobial properties of tomato leaves, stems, and fruit and their relationship to chemical composition |
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