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Published in: BMC Complementary Medicine and Therapies 1/2023

Open Access 01-12-2023 | Albendazole | Research

In vitro and in vivo anthelmintic and chemical studies of Cyperus rotundus L. extracts 

Authors: Eman S. El-Wakil, Shimaa Shaker, Tarek Aboushousha, El-Sayed S. Abdel-Hameed, Ezzat E. A. Osman

Published in: BMC Complementary Medicine and Therapies | Issue 1/2023

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Abstract

Background

Trichinellosis, a zoonosis caused by the genus Trichinella, is a widespread foodborne disease. Albendazole, one of the benzimidazole derivatives, is used for treating human trichinellosis, but with limited efficacy in killing the encysted larvae and numerous adverse effects. Cyperus rotundus L. is a herbal plant with a wide range of medicinal uses, including antiparasitic, and is frequently used in traditional medicine to treat various illnesses.

Methods

LC-ESI-MS was used to identify the active phytoconstituents in the methanol extract (MeOH ext.) of the aerial parts of C. rotundus and its derivate fractions ethyl acetate (EtOAc fr.), petroleum ether (pet-ether fr.), and normal butanol (n-BuOH fr.). The in vivo therapeutic effects of C. rotundus fractions of the extracts were evaluated using the fraction that showed the most promising effect after detecting their in vitro anti-Trichinella spiralis potential.

Results

C. rotundus extracts are rich in different phytochemicals, and the LC-ESI-MS of the 90% methanol extract identified 26 phenolic compounds classified as phenolic acids, flavonoids, and organic acids. The in vitro studies showed that C. rotundus extracts had a lethal effect on T. spiralis adults, and the LC50 were 156.12 µg/ml, 294.67 µg/ml, 82.09 µg/ml, and 73.16 µg/ml in 90% MeOH ext., EtOAc fr., pet-ether fr. and n-BuOH fr., respectively. The n-BuOH fr. was shown to have the most promising effects in the in vitro studies, which was confirmed by scanning electron microscopy. The in vivo effects of n-BuOH fr. alone and in combination with albendazole using a mouse model were evaluated by counting adults in the small intestine and larvae in the muscles, in addition to the histopathological changes in the small intestine and the muscles. In the treated groups, there was a significant decrease in the number of adults and larvae compared to the control group. Histopathologically, treated groups showed a remarkable improvement in the small intestine and muscle changes. Remarkably, maximal therapeutic effects were detected in the combination therapy compared to each monotherapy.

Conclusion

Accordingly, C. rotundus extracts may have anti-T. spiralis potential, particularly when combined with albendazole, and they may be used as synergistic to anti-T. spiralis medication therapy.
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Literature
1.
go back to reference Bai X, Hu X, Liu X, Tang B, Liu M. Current research of trichinellosis in China. Front J Microbiol. 2017;8:1472–147.CrossRef Bai X, Hu X, Liu X, Tang B, Liu M. Current research of trichinellosis in China. Front J Microbiol. 2017;8:1472–147.CrossRef
2.
go back to reference Gottstein B, Pozio E, Nöckler K. Epidemiology, diagnosis, treatment, and control of trichinellosis. Clin Microbiol Rev. 2009;22:127–45.CrossRef Gottstein B, Pozio E, Nöckler K. Epidemiology, diagnosis, treatment, and control of trichinellosis. Clin Microbiol Rev. 2009;22:127–45.CrossRef
3.
go back to reference Pozio E. Trichinella and trichinellosis in Europe. Veterinarski Glasnik. 2019;73:65–84.CrossRef Pozio E. Trichinella and trichinellosis in Europe. Veterinarski Glasnik. 2019;73:65–84.CrossRef
5.
go back to reference Caner A, Döşkaya M, Değirmenci A, Can H, Baykan S, Uner A, et al. Comparison of the effects of Artemisia vulgaris and Artemisia absinthium growing in western Anatolia against trichinellosis (Trichinella spiralis) in rats. Exp Parasitol. 2008;119:173–9.CrossRef Caner A, Döşkaya M, Değirmenci A, Can H, Baykan S, Uner A, et al. Comparison of the effects of Artemisia vulgaris and Artemisia absinthium growing in western Anatolia against trichinellosis (Trichinella spiralis) in rats. Exp Parasitol. 2008;119:173–9.CrossRef
6.
go back to reference Yadav AK, Temjenmongla N. Efficacy of Lasia spinosa leaf extract in treating mice infected with Trichinella spiralis. Parasitol Res. 2012;110:493–8.CrossRef Yadav AK, Temjenmongla N. Efficacy of Lasia spinosa leaf extract in treating mice infected with Trichinella spiralis. Parasitol Res. 2012;110:493–8.CrossRef
9.
go back to reference Zhang LL, Zhang LF, Hu QP, Hao DL, Xu JG. Chemical composition, antibacterial activity of Cyperus rotundus rhizomes essential oil against Staphylococcus aureus via membrane disruption and apoptosis pathway. Food Control. 2017;80:290–6.CrossRef Zhang LL, Zhang LF, Hu QP, Hao DL, Xu JG. Chemical composition, antibacterial activity of Cyperus rotundus rhizomes essential oil against Staphylococcus aureus via membrane disruption and apoptosis pathway. Food Control. 2017;80:290–6.CrossRef
11.
go back to reference Mohamed GA. Iridoids and other constituents from Cyperus rotundus L. rhizomes. Bull Fac Pharm Cairo Univ. 2015;53:5–9. Mohamed GA. Iridoids and other constituents from Cyperus rotundus L. rhizomes. Bull Fac Pharm Cairo Univ. 2015;53:5–9.
16.
go back to reference Jin JH, Lee DU, Kim YS, Kim HP. Anti-allergic activity of sesquiterpenes from the rhizomes of Cyperus rotundus. Arch Pharm Res. 2011;34:223–8.CrossRef Jin JH, Lee DU, Kim YS, Kim HP. Anti-allergic activity of sesquiterpenes from the rhizomes of Cyperus rotundus. Arch Pharm Res. 2011;34:223–8.CrossRef
17.
go back to reference Daswani PG, Brijesh S, Tetali P, Birdi TJ. Studies on the activity of Cyperus rotundus Linn. Tubers against infectious diarrhea. Indian J Pharmacol. 2011;43(3):340.CrossRef Daswani PG, Brijesh S, Tetali P, Birdi TJ. Studies on the activity of Cyperus rotundus Linn. Tubers against infectious diarrhea. Indian J Pharmacol. 2011;43(3):340.CrossRef
18.
go back to reference Kumar SS, Mishra S. Hepatoprotective activity of rhizomes of Cyperus rotundus Linn against carbon tetrachloride-induced hepatotoxicity. Indian J Pharm Sci. 2005;6:84–8. Kumar SS, Mishra S. Hepatoprotective activity of rhizomes of Cyperus rotundus Linn against carbon tetrachloride-induced hepatotoxicity. Indian J Pharm Sci. 2005;6:84–8.
19.
go back to reference Bezerra JJL, Pinheiro AAV. Traditional uses, phytochemistry, and anticancer potential of Cyperus rotundus L. (Cyperaceae): A systematic review. S Afr J Bot. 2022;144:175–86.CrossRef Bezerra JJL, Pinheiro AAV. Traditional uses, phytochemistry, and anticancer potential of Cyperus rotundus L. (Cyperaceae): A systematic review. S Afr J Bot. 2022;144:175–86.CrossRef
21.
go back to reference Sayed HM, Mohamed MH, Farag SF, Mohamed GA, Proksch P. A new steroid glycoside and furochromones from Cyperus rotundus L. Nat Prod Res. 2007;21(4):343–50.CrossRef Sayed HM, Mohamed MH, Farag SF, Mohamed GA, Proksch P. A new steroid glycoside and furochromones from Cyperus rotundus L. Nat Prod Res. 2007;21(4):343–50.CrossRef
22.
go back to reference Kasala S, Ramanjaneyulu K, Himabindhu J, Alluri R, Babu RR. Preliminary phytochemical screening and in vitro anthelmintic activity of Cyperus rotundus (L). J Pharmacogn Phytochem. 2016;5:407. Kasala S, Ramanjaneyulu K, Himabindhu J, Alluri R, Babu RR. Preliminary phytochemical screening and in vitro anthelmintic activity of Cyperus rotundus (L). J Pharmacogn Phytochem. 2016;5:407.
23.
go back to reference Thebtaranonth C, Thebtaranonth Y, Wanauppathamkul S, Yuthavong Y. Antimalarial sesquiterpenes from tubers of Cyperus rotundus: structure of 10, 12-peroxycalamenene, a sesquiterpene endoperoxide. Phytochemistry. 1995;40:125–8.CrossRef Thebtaranonth C, Thebtaranonth Y, Wanauppathamkul S, Yuthavong Y. Antimalarial sesquiterpenes from tubers of Cyperus rotundus: structure of 10, 12-peroxycalamenene, a sesquiterpene endoperoxide. Phytochemistry. 1995;40:125–8.CrossRef
24.
go back to reference Kabbashi AS, Osman EE, Abdrabo AM, Abuzeid N, Garbi MI, Koko WS, et al. Antiamoebic activity and cytotoxicity of ethanolic extract of Cyperus rotundus L. Adv Med Plant Res. 2015;3:155–61. Kabbashi AS, Osman EE, Abdrabo AM, Abuzeid N, Garbi MI, Koko WS, et al. Antiamoebic activity and cytotoxicity of ethanolic extract of Cyperus rotundus L. Adv Med Plant Res. 2015;3:155–61.
25.
go back to reference Fahmy AM, Alshenawy AM, El-Wakil EA, Hegab AM. Efficacy of Cyperus rotundus extract against cryptosporidiosis and toxoplasmosis in murine infections. Egypt Pharm J. 2021;20:242.CrossRef Fahmy AM, Alshenawy AM, El-Wakil EA, Hegab AM. Efficacy of Cyperus rotundus extract against cryptosporidiosis and toxoplasmosis in murine infections. Egypt Pharm J. 2021;20:242.CrossRef
26.
go back to reference Evans WC. Trease and evans’ pharmacognosy E-book. Amsterdam: Elsevier Health Sciences; 2009:135-148.135-148. Evans WC. Trease and evans’ pharmacognosy E-book. Amsterdam: Elsevier Health Sciences; 2009:135-148.135-148.
27.
go back to reference El-Hashash MM, Abdel-Gawad MM, El-Sayed MM, Sabry WA, Abdel-Hameed ES, Abdel-Lateef EE. Antioxidant properties of methanolic extracts of the leaves of seven egyptian Cassia species. Acta Pharm. 2010;60:361–7.CrossRef El-Hashash MM, Abdel-Gawad MM, El-Sayed MM, Sabry WA, Abdel-Hameed ES, Abdel-Lateef EE. Antioxidant properties of methanolic extracts of the leaves of seven egyptian Cassia species. Acta Pharm. 2010;60:361–7.CrossRef
28.
go back to reference Wassom DL, Debra A, Dick TA. Trichinella spiralis infections of inbred mice: immunologically specific responses Induced by different Trichinella isolates. J Parasitol. 1988;74(2):283–7.CrossRef Wassom DL, Debra A, Dick TA. Trichinella spiralis infections of inbred mice: immunologically specific responses Induced by different Trichinella isolates. J Parasitol. 1988;74(2):283–7.CrossRef
32.
go back to reference Dunn IJ, Wright KA. Cell injury caused by Trichinella spiralis in the mucosal epithelium of B10A mice. J Parasitol. 1985;71(6):757–66.CrossRef Dunn IJ, Wright KA. Cell injury caused by Trichinella spiralis in the mucosal epithelium of B10A mice. J Parasitol. 1985;71(6):757–66.CrossRef
35.
go back to reference Keiser J, Tritten L, Adelfio R, Vargas M. Effect of combinations of marketed human anthelmintic drugs against Trichuris muris in vitro and in vivo. Parasit Vectors. 2012;5(1):1–7.CrossRef Keiser J, Tritten L, Adelfio R, Vargas M. Effect of combinations of marketed human anthelmintic drugs against Trichuris muris in vitro and in vivo. Parasit Vectors. 2012;5(1):1–7.CrossRef
36.
go back to reference Tritten L, Nwosu U, Vargas M, Keiser J. In vitro and in vivo efficacy of tribendimidine and its metabolites alone and in combination against the hookworms Heligmosomoides bakeri and Ancylostoma ceylanicum. Acta Trop. 2012;122(1):101–7.CrossRef Tritten L, Nwosu U, Vargas M, Keiser J. In vitro and in vivo efficacy of tribendimidine and its metabolites alone and in combination against the hookworms Heligmosomoides bakeri and Ancylostoma ceylanicum. Acta Trop. 2012;122(1):101–7.CrossRef
37.
go back to reference Huang H, Yao J, Liu K, Yang W, Wang G, Shi C, et al. Sanguinarine has anthelmintic activity against the enteral and parenteral phases of Trichinella infection in experimentally infected mice. Acta Trop. 2020;201:105226.CrossRef Huang H, Yao J, Liu K, Yang W, Wang G, Shi C, et al. Sanguinarine has anthelmintic activity against the enteral and parenteral phases of Trichinella infection in experimentally infected mice. Acta Trop. 2020;201:105226.CrossRef
39.
go back to reference Uddin SJ, Mondal K, Shilpi JA, Rahman MT. Antidiarrhoeal activity of Cyperus rotundus. Fitoterapia. 2006;77(2):134–6.CrossRef Uddin SJ, Mondal K, Shilpi JA, Rahman MT. Antidiarrhoeal activity of Cyperus rotundus. Fitoterapia. 2006;77(2):134–6.CrossRef
41.
go back to reference El-Wakil ES, Abdelmaksoud HF, AbouShousha TS, Ghallab MMI. Evaluation of Annona muricata (Graviola) leaves activity against experimental trichinellosis: in vitro and in vivo studies. J Helminthol. 2021;95:e53.CrossRef El-Wakil ES, Abdelmaksoud HF, AbouShousha TS, Ghallab MMI. Evaluation of Annona muricata (Graviola) leaves activity against experimental trichinellosis: in vitro and in vivo studies. J Helminthol. 2021;95:e53.CrossRef
42.
go back to reference Kim CW, Myron CL. Surface morphology of Trichinella spiralis by scanning electron microscopy. J Parasitol. 1980;66(1):75–81.CrossRef Kim CW, Myron CL. Surface morphology of Trichinella spiralis by scanning electron microscopy. J Parasitol. 1980;66(1):75–81.CrossRef
44.
go back to reference Drury R, Wallington E. Carltonʹs Histological Technique, 5th Edn. Oxford, New York: Oxford University Press,1980. Drury R, Wallington E. Carltonʹs Histological Technique, 5th Edn. Oxford, New York: Oxford University Press,1980.
45.
go back to reference Peat J, Barton B. Medical statistics. A guide to data analysis and critical appraisal. First edition. Wiley-Blackwell. 2005;113–119. Peat J, Barton B. Medical statistics. A guide to data analysis and critical appraisal. First edition. Wiley-Blackwell. 2005;113–119.
46.
go back to reference Pathak K, Das R. Herbal medicine-a rational approach in health care system. Int J Herb Med. 2013;1:86–9. Pathak K, Das R. Herbal medicine-a rational approach in health care system. Int J Herb Med. 2013;1:86–9.
47.
go back to reference El-Wakil ES, El-Shazly MA, El-Ashkar AM, Aboushousha T, Ghareeb MA. Chemical profiling of Verbena officinalis and assessment of its anti-cryptosporidial activity in experimentally infected immunocompromised mice. Arab J Chem. 2022;103945:1–13. El-Wakil ES, El-Shazly MA, El-Ashkar AM, Aboushousha T, Ghareeb MA. Chemical profiling of Verbena officinalis and assessment of its anti-cryptosporidial activity in experimentally infected immunocompromised mice. Arab J Chem. 2022;103945:1–13.
48.
go back to reference Shalaby MA, Moghazy FM, Shalaby HA, Nasr SM. Effect of methanolic extract of Balanites aegyptiaca fruits on enteral and parenteral stages of Trichinella spiralis in rats. Parasitol Res. 2010;107(1):17–25.CrossRef Shalaby MA, Moghazy FM, Shalaby HA, Nasr SM. Effect of methanolic extract of Balanites aegyptiaca fruits on enteral and parenteral stages of Trichinella spiralis in rats. Parasitol Res. 2010;107(1):17–25.CrossRef
49.
go back to reference Djurković-Djaković O, Bobić B, Nikolić A, Klun I, Dupouy-Camet J. Pork as a source of human parasitic infection. Clin Microbiol Infect. 2013;19(7):586–94.CrossRef Djurković-Djaković O, Bobić B, Nikolić A, Klun I, Dupouy-Camet J. Pork as a source of human parasitic infection. Clin Microbiol Infect. 2013;19(7):586–94.CrossRef
51.
go back to reference Lydia J, Sudarsanam D. Docking of a Cyperus rotundus compound ‘15-Hydroxy-4-oxo-10-pentadecynoic acid lactone’with antidiabetic drug targets: a comparative study. Int J Fund Appl Sci. 2014;3(2):17–21. Lydia J, Sudarsanam D. Docking of a Cyperus rotundus compound ‘15-Hydroxy-4-oxo-10-pentadecynoic acid lactone’with antidiabetic drug targets: a comparative study. Int J Fund Appl Sci. 2014;3(2):17–21.
52.
go back to reference Sivapalan SR. Medicinal uses and pharmacological activities of Cyperus rotundus Linn – a review. Int J Sci Res Publ. 2013;3:1–8. Sivapalan SR. Medicinal uses and pharmacological activities of Cyperus rotundus Linn – a review. Int J Sci Res Publ. 2013;3:1–8.
53.
go back to reference Farag RS, Abdel-Latif MS, Abd El Baky HH, Tawfeek LS. Phytochemical screening and antioxidant activity of some medicinal plants’ crude juices. Biotechnol Rep. 2020;28:e00536.CrossRef Farag RS, Abdel-Latif MS, Abd El Baky HH, Tawfeek LS. Phytochemical screening and antioxidant activity of some medicinal plants’ crude juices. Biotechnol Rep. 2020;28:e00536.CrossRef
55.
go back to reference Guo H, Saravanakumar K, Wang M-H. Total phenolic, flavonoid contents and free radical scavenging capacity of extracts from tubers of Stachys affinis. Biocatal Agric Biotechnol. 2018;15:235–9.CrossRef Guo H, Saravanakumar K, Wang M-H. Total phenolic, flavonoid contents and free radical scavenging capacity of extracts from tubers of Stachys affinis. Biocatal Agric Biotechnol. 2018;15:235–9.CrossRef
57.
go back to reference Nagulendran KR, Velavan S, Mahesh R, Hazeena Begum V. In vitro antioxidant activity and total polyphenolic content of Cyperus rotundus Rhizomes. E-J Chem. 2007;4(3):440–9.CrossRef Nagulendran KR, Velavan S, Mahesh R, Hazeena Begum V. In vitro antioxidant activity and total polyphenolic content of Cyperus rotundus Rhizomes. E-J Chem. 2007;4(3):440–9.CrossRef
58.
go back to reference Kamala A, Middha SK, Gopinath C, Sindhura HS, Karigar CS. In vitro antioxidant potentials of Cyperus rotundus L. rhizome extracts and their phytochemical analysis. Pharmacogn Mag. 2018;14:261–7.CrossRef Kamala A, Middha SK, Gopinath C, Sindhura HS, Karigar CS. In vitro antioxidant potentials of Cyperus rotundus L. rhizome extracts and their phytochemical analysis. Pharmacogn Mag. 2018;14:261–7.CrossRef
59.
go back to reference Kumar KH, Razack S, Nallamuthu I, Khanum F. Phytochemical analysis and biological properties of Cyperus rotundus L. Ind Crops Prod. 2014;52:815–26.CrossRef Kumar KH, Razack S, Nallamuthu I, Khanum F. Phytochemical analysis and biological properties of Cyperus rotundus L. Ind Crops Prod. 2014;52:815–26.CrossRef
60.
go back to reference Boyom FF, Madiesse EK, Bankeu JJ, Tsouh VP, Lenta BN, Mbacham WF, et al. Falcipain 2 inhibitors and antiplasmodial compounds from a bio-guided fractionation of the fruits of Sorindeia juglandifolia A. Rich. (Anacardiaceae) growing in Cameroon. Malar J. 2010;9(2):1–2. Boyom FF, Madiesse EK, Bankeu JJ, Tsouh VP, Lenta BN, Mbacham WF, et al. Falcipain 2 inhibitors and antiplasmodial compounds from a bio-guided fractionation of the fruits of Sorindeia juglandifolia A. Rich. (Anacardiaceae) growing in Cameroon. Malar J. 2010;9(2):1–2.
61.
go back to reference Abdul Wahab SM, Jantan I, Haque MA, Arshad L. Exploring the leaves of Annona muricata L. as a source of potential anti-inflammatory and anticancer agents. Front Pharmacol. 2018;9:661.CrossRef Abdul Wahab SM, Jantan I, Haque MA, Arshad L. Exploring the leaves of Annona muricata L. as a source of potential anti-inflammatory and anticancer agents. Front Pharmacol. 2018;9:661.CrossRef
62.
go back to reference Chung MS, Joo KH, Quan FS, Kwon HS, Cho SW. Efficacy of flubendazole and albendazole against Trichinella spiralis in mice. Parasite. 2001;8:195-S198.CrossRef Chung MS, Joo KH, Quan FS, Kwon HS, Cho SW. Efficacy of flubendazole and albendazole against Trichinella spiralis in mice. Parasite. 2001;8:195-S198.CrossRef
63.
go back to reference Siriyasatien P, Yingyourd P, Nuchprayoon S. Efficacy of albendazole against early and late stage of Trichinella spiralis infection in mice. J Med Assoc Thail. 2003;86:257-S262. Siriyasatien P, Yingyourd P, Nuchprayoon S. Efficacy of albendazole against early and late stage of Trichinella spiralis infection in mice. J Med Assoc Thail. 2003;86:257-S262.
64.
go back to reference Aguayo-Ortiz R, Méndez-Lucio O, Medina-Franco JL, Castillo R, Yépez-Mulia L, Hernández-Luis F, et al. Towards the identification of the binding site of benzimidazoles to β-tubulin of Trichinella spiralis: insights from computational and experimental data. J Mol Graph Model. 2013;41:12–9.CrossRef Aguayo-Ortiz R, Méndez-Lucio O, Medina-Franco JL, Castillo R, Yépez-Mulia L, Hernández-Luis F, et al. Towards the identification of the binding site of benzimidazoles to β-tubulin of Trichinella spiralis: insights from computational and experimental data. J Mol Graph Model. 2013;41:12–9.CrossRef
65.
go back to reference McCracken RO. Efficacy of mebendazole and albendazole against Trichinella spiralis in mice. J Parasitol. 1978;64:214–9.CrossRef McCracken RO. Efficacy of mebendazole and albendazole against Trichinella spiralis in mice. J Parasitol. 1978;64:214–9.CrossRef
66.
go back to reference Dyab AK, Ahmed MA, Abdelazeem AG. Prevalence and histopathology of Trichinella spiralis larvae of slaughtered pigs in Cairo governorate, Egypt. J Egypt Soc Parasitol. 2019;49(2):439–42.CrossRef Dyab AK, Ahmed MA, Abdelazeem AG. Prevalence and histopathology of Trichinella spiralis larvae of slaughtered pigs in Cairo governorate, Egypt. J Egypt Soc Parasitol. 2019;49(2):439–42.CrossRef
Metadata
Title
In vitro and in vivo anthelmintic and chemical studies of Cyperus rotundus L. extracts 
Authors
Eman S. El-Wakil
Shimaa Shaker
Tarek Aboushousha
El-Sayed S. Abdel-Hameed
Ezzat E. A. Osman
Publication date
01-12-2023
Publisher
BioMed Central
Published in
BMC Complementary Medicine and Therapies / Issue 1/2023
Electronic ISSN: 2662-7671
DOI
https://doi.org/10.1186/s12906-023-03839-7

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