The vasodilatory effect of Apium graveolens L (celery) seed in isolated rat aorta: The roles of endothelium, calcium and potassium channels | ||
Avicenna Journal of Phytomedicine | ||
مقاله 5، دوره 11، شماره 1، فروردین و اردیبهشت 2021، صفحه 44-53 اصل مقاله (872.48 K) | ||
نوع مقاله: Original Research Article | ||
شناسه دیجیتال (DOI): 10.22038/ajp.2020.15697 | ||
نویسندگان | ||
Farzaneh Sohrabi1؛ Saeed Niazmand* 2؛ Maryam Mahmoudabady3؛ Mohammad Javad Niazmand4 | ||
1Department of Physiology, Faculty of Medicine, Mashhad University of Medical Sciences, Mashhad, Iran | ||
2Department of Physiology and Cardiovascular Research Center, School of Medicine Mashhad University of Medical Sciences Mashhad, I. R. Iran Neurogenic Inflammation Research Center, Mashhad University of Medical Sciences, Mashhad, Iran | ||
3Department of Physiology and Applied Physiology Research Centre, School of Medicine | ||
4Department of Health Sciences, McMaster University, Hamilton, Canada | ||
چکیده | ||
Abstract Objective: Apium graveolens L. (celery) seed has been used for hypertension treatment. To provide a pharmacological basis, the vasorelaxant effect of celery seed extract was investigated in isolated rat aorta. Materials and Methods: Wistar male rats (200-250 g) were divided into 15 groups (n=7 for each group). The vasorelaxant response of different concentrations of celery seed extract (0.05, 0.1, 0.25, 0.5, 1, and 2 mg/ml) on isolated aorta precontracted with phenylephrine (PE) or KCl was evaluated by organ bath technique. The role of endothelium, extracellular calcium influx, intracellular sources of calcium, and potassium channels in vasorelaxant effect of celery seed extract was investigated. Results: The extract showed a concentration-dependent relaxation in the isolated aorta contracted with PE and KCl that was endothelium-dependent at lower concentrations. Pretreatment of aortic rings with indomethacin or L-NAME, did not affect the vasorelaxation induced by celery seed extract. The extract inhibited KCl and PE-induced contractions in cumulative calcium concentrations as well as after incubation with diltiazem in denuded aortic rings of endothelium. The relaxation induced by celery seed extract was inhibited by 4-aminopyridine. Conclusion: This relaxation was mediated by inhibiting calcium influx into vascular smooth muscle cells. Also, voltage-dependent potassium channels were involved in inducing the vasorelaxant effect of celery seed extract. | ||
کلیدواژهها | ||
Apium graveolens؛ isolated aorta؛ vasorelaxation؛ calcium channels؛ potassium channels | ||
مراجع | ||
Anjos PJ, Lima AO, Cunha PS, De Sousa DP, Onofre AS, Ribeiro TP, Medeiros IA, Antoniolli AR, Quintans-Júnior LJ, Santos MR. 2013. Cardiovascular effects induced by linalool in normotensive and hypertensive rats. Z Naturforsch C J Biosci, 68: 181-190. Baananou S, Bouftira I, Mahmoud A, Boukef K, Marongiu B, Boughattas Na. 2013. Antiulcerogenic and antibacterial activities of Apium graveolens essential oil and extract. Nat Prod Res, 27: 1075-1083. Cardoso Lima T, Mota MM, Barbosa-Filho JM, Viana Dos Santos MR, De Sousa DP. 2012. Structural relationships and vasorelaxant activity of monoterpenes. Daru, 20: 23. Chan Q, Stamler J, Brown IJ, Daviglus ML, Van Horn L, Dyer AR, Oude Griep LM, Miura K, Ueshima H, Zhao L, Nicholson JK, Holmes E, Elliott P. 2014. Relation of raw and cooked vegetable consumption to blood pressure: the Intermap Sohrabi et al. AJP, Vol. 11, No. 1, Jan-Feb 2021 52 Study. J Hum Hypertens, 28: 353-359. Côrtes SF, Rezende BA, Corriu C, Medeiros IA, Teixeira MM, Lopes MJ, Lemos VS. 2001. Pharmacological evidence for the activation of potassium channels as the mechanism involved in the hypotensive and vasorelaxant effect of dioclein in rat small resistance arteries. Br J Pharmacol, 133: 849-858. Craig WJ. 1999. Health-promoting properties of common herbs. Am J Clin Nutr, 70: 491S499S. Duarte J, Pérez Vizcaíno F, Utrilla P, Jiménez J, Tamargo J, Zarzuelo A. 1993. Vasodilatory effects of flavonoids in rat aortic smooth muscle. Structure-activity relationships. Gen Pharmacol, 24: 857-862. Iyer D, Patil UK. 2011. Effect of chloroform and aqueous basic fraction of ethanolic extract from Apium graveolens L. in experimentally-induced hyperlipidemia in rats. J Complement Integr Med, 8. Jiang H, Xia Q, Wang X, Song J, Bruce IC. 2005. Luteolin induces vasorelaxion in rat thoracic aorta via calcium and potassium channels. Pharmazie, 60: 444-447. Jorge VG, Ángel JR, Adrián TS, Francisco AC, Anuar SG, Samuel ES, Ángel SO, Emmanuel HN. 2013. Vasorelaxant activity of extracts obtained from Apium graveolens: possible source for vasorelaxant molecules isolation with potential antihypertensive effect. Asian Pac J Trop Biomed, 3: 776-779. Kitajima J, Ishikawa T, Satoh M. 2003. Polar constituents of celery seed. Phytochemistry, 64: 1003-1011. Ko EA, Han J, Jung ID, Park WS. 2008. Physiological roles of K+ channels in vascular smooth muscle cells. J Smooth Muscle Res, 44: 65-81. Li L, Zhang B, Tao Y, Wang Y, Wei H, Zhao J, Huang R, Pei Z. 2009. DL-3-nbutylphthalide protects endothelial cells against oxidative/nitrosative stress, mitochondrial damage and subsequent cell death after oxygen glucose deprivation in vitro. Brain Res, 1290: 91-101. Maggi CA, Patacchini R, Perretti F, Tramontana M, Manzini S, Geppetti P, Santicioli P.1990. Sensory nerves, vascular endothelium and neurogenic relaxation of the guinea-pig isolated pulmonary artery. Naunyn Schmiedebergs Arch Pharmacol, 342: 78-84. Martinsen A, Dessy C, Morel N. 2014. Regulation of calcium channels in smooth muscle: new insights into the role of myosin light chain kinase. Channels (Austin), 8: 402-413. Menezes IA, Barreto CM, Antoniolli AR, Santos MR, de Sousa DP. 2010. Hypotensive activity of terpenes found in essential oils. Z Naturforsch C J Biosci, 65: 562-566. Moghadam MH, Imenshahidi M, Mohajeri SA. 2013. Antihypertensive effect of celery seed on rat blood pressure in chronic administration. J Med Food, 16: 558-563. Mohanty MJ, Li X.2002. Stretch-induced Ca2+ release via an IP3-insensitive Ca2+ channel. Am J Physiol Cell Physiol, 283: C456-462. Nelson MT, Quayle JM. 1995. Physiological roles and properties of potassium channels in arterial smooth muscle. Am J Physiol, 268: C799-822. Niazmand S, Fereidouni E, Mahmoudabady M, Mousavi SM. 2014. EndotheliumIndependent Vasorelaxant Effects of Hydroalcoholic Extract from Nigella sativa Seed in Rat Aorta: The Roles of Ca2+ . Biomed Res Int, 2014:247054. Perez-Vizcaino F, Duarte J. 2010. Flavonols and cardiovascular disease. Mol Aspects Med, 31: 478-494. Powanda MC, Whitehouse MW, Rainsford KD. 2015. Celery seed and related extracts with antiarthritic, antiulcer, and antimicrobial activities. Prog Drug Res, 70:133-153. Ratz PH, Berg KM, Urban NH, Miner AS. 2005. Regulation of smooth muscle calcium sensitivity: KCl as a calcium-sensitizing stimulus. Am J Physiol Cell Physiol, 288: C769-783. Ribeiro TP, Porto DL, Menezes CP, Antunes AA, Silva DF, De Sousa DP, Nakao LS, Braga VA, Medeiros IA. 2010. Unravelling the cardiovascular effects induced by α‐terpineol: A role for the nitric oxide–cGMP pathway. Clin Exp Pharmacol Physiol, 37: 811-816. Santos MRV, Moreira FV, Fraga BP, De Souza DP, Bonjardim LR, Quintans-Junior LJ. 2011. Cardiovascular effects of monoterpenes: a review. Rev Bras Farmacogn, 21: 764-771. Si H, Wyeth RP, Liu D. 2014. The flavonoid luteolin induces nitric oxide production and arterial relaxation. Eur J Nutr, 53: 269-275. Sowbhagya HB.2014. Chemistry, technology, Vasodilatory effects of Apium graveolens L AJP, Vol. 11, No. 1, Jan-Feb 2021 53 and nutraceutical functions of celery (Apium graveolens L.): an overview. Crit Rev Food Sci Nutr, 54: 389-398. Tashakori-Sabzevara F, Razavib BM, Imenshahidic M, Daneshmandia MR, Fatehia HR, Entezari Sarkarizia Y, Mohajeri SA. 2016. Evaluation of mechanism for antihypertensive and vasorelaxant effects of hexanic and hydroalcoholic extracts of celery seed in normotensive and hypertensive rats. Revista Brasileira de Farmacognosia, 26: 619–626 Thorneloe KS, Nelson MT. 2005. Ion channels in smooth muscle: regulators of intracellular calcium and contractility. Can J Physiol Pharmacol, 83: 215-242. Tsi D,Tan BKH. 1997. Cardiovascular pharmacology of 3‐n‐butylphthalide in spontaneously hypertensive rats. Phytother Res, 11: 576-582. Wei A, Shibamoto T. 2007. Antioxidant activities and volatile constituents of various essential oils. J Agric Food Chem, 55:1737- 1742. Yang L, Liu B, Lu Y, Lu F, Wu X, You W, Huang B. 2019. Bioavailability of cadmium to celery (Apium graveolens L.) grown in acidic and Cd-contaminated greenhouse soil as affected by the application of hydroxyapatite with different particle sizes. Chemosphere, 240:124916. Zhang YH, Park YS, Kim TJ, Fang LH, Ahn HY, Hong JT, Kim Y, Lee CK, Yun YP. 2000. Endothelium-dependent vasorelaxant and antiproliferative effects of apigenin. Gen Pharmacol, 35: 341-347. Zhu J, Zhang Y, Yang C. 2015. Protective effect of 3-n-butylphthalide against hypertensive nephropathy in spontaneously hypertensive rats. Mol Med Rep, 11: 1448- 1454. | ||
آمار تعداد مشاهده مقاله: 15,388 تعداد دریافت فایل اصل مقاله: 4,126 |