PHARMACOGNOSTIC STUDIES ON FLOWERS OF DREGEA VOLUBILIS: EVALUATION FOR AUTHENTICATION AND STANDARDIZATION

Authors

  • BHASKAR DAS Department of Pharmaceutical Technology, Jadavpur University, Kolkata, West Bengal, India. http://orcid.org/0000-0003-1589-0299
  • ARNAB DE Department of Pharmaceutical Technology, Jadavpur University, Kolkata, West Bengal, India. http://orcid.org/0000-0001-9483-9533
  • PIU DAS Department of Pharmaceutical Technology, Jadavpur University, Kolkata, West Bengal, India.
  • AMALESH NANDA Department of Biotechnology, National Institute of Technology, Arunachal Pradesh, India.
  • AMALESH SAMANTA Department of Pharmaceutical Technology, Jadavpur University, Kolkata, West Bengal, India.

DOI:

https://doi.org/10.22159/ajpcr.2019.v12i5.32368

Keywords:

Dregea volubilis, Organoleptic, Phytochemistry, High-performance liquid chromatography, Fourier transform infrared

Abstract

Objective: The various parts of Dregea volubilis (Family: Apocynaceae), locally known as Jukti (Bengali), are commonly used in Indian system of medicine to treat various ailments such as inflammation, piles, leukoderma, asthma, and tumors. Literature review suggested that there has been no detailed work on systemic pharmacognostic and phytochemical studies done on the flowers of the plant. The present study is aimed to lay down quality control parameters for D. volubilis flowers to confirm its identity, quality, and purity.

Methods: The present work was designed to study detailed organoleptic, histological, quantitative standards, physicochemical, spectroscopic, and chromatographic characteristics of the flowers of D. volubilis.

Results: The total ash, acid insoluble ash, water soluble ash, loss on drying, water, and alcohol soluble extractive values were found to be 11.767±0.130% (w/w), 1.287±0.106% (w/w), 9.140±0.344% (w/w), 14.110±0.061% (w/w), 21.600±0.133% (w/v), and 9.603±0.104% (w/v), respectively. Phytochemical screening of different extracts showed the presence of carbohydrates, proteins, amino acids, steroids, glycosides, alkaloids, flavonoids, tannins, and phenolics. The chromatographic study revealed the presence of rhamnose (103.229±4.994 μg/g), fructose (738.670±25.714 μg/g), glucose (285.532±24.465 μg/g), and maltose (49.082±5.206 μg/g).

Conclusion: The characterization parameters of the present study may serve as a reference standard for proper authentication, identification and for distinguishing the plant from its adulterants.

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Author Biographies

BHASKAR DAS, Department of Pharmaceutical Technology, Jadavpur University, Kolkata, West Bengal, India.

Division of Microbiology & Biotechnology, Department of Pharmaceutical Technology, Jadavpur University, Kolkata-700032, India

ARNAB DE, Department of Pharmaceutical Technology, Jadavpur University, Kolkata, West Bengal, India.

Division of Microbiology & Biotechnology, Department of Pharmaceutical Technology, Jadavpur University, Kolkata-700032, India

PIU DAS, Department of Pharmaceutical Technology, Jadavpur University, Kolkata, West Bengal, India.

Division of Microbiology & Biotechnology, Department of Pharmaceutical Technology, Jadavpur University, Kolkata-700032, India

AMALESH NANDA, Department of Biotechnology, National Institute of Technology, Arunachal Pradesh, India.

National Institute of Technology, Arunachal Pradesh, 791112, India

References

Sharma C, Irshad S, Khatoon S, Arya KR. Pharmacognostical evaluation of Indian folk-traditional plants Coelogyne cristata and Pholidotaarticulata used for healing fractures. Indian J Exp Biol 2017;55:622-7.

Sanyacharernkul S, Itghiarbha A, Kongtawelert P, Meepowpan P, Nuntasaen N, Pompimon W. A new polyoxypregnane glycoside from the roots of Dregea volubilis (L.f) Benth. Ex Hook. F and its chondroprotective effect. Am J Biochem Biotechnol 2009;5:202-9.

Karthika KS, Sanjaya KS, Hari KR, Jyothi T. A pharmacognostic evaluation on moorva bheda (Dregea volubilis (L.f) Benth. Ex Hook.f). Int Res J Pharm 2012;3:127-30.

Biswas M, Haldar PK, Ghosh AK. Antioxidant and free-radical-scavenging effects of fruits of Dregea volubilis. J Nat Sci Biol Med 2010;1:29-34.

Nandi D, Besra SE, Vedasiromoni JR, Giri VS, Rana P, Jaisankar P. Anti-leukemic activity of Wattakaka volubilis leaf extract against human myeloid leukemia cell lines. J Ethnopharmacol 2012;144:466-73.

Sahu NP, Panda N, Mandal NB, Banerjee S, Koike K, Nikaido T. Polyoxypregnane glycosides from the flowers of Dregea volubilis. Phytochemistry 2002;61:383-8.

Panda N, Mondal NB, Banerjee S, Sahu NP, Koike K, Nikaido T, et al. Polyhydroxypregnanes from Dregea volubilis. Tetrahedron 2003;59:8399-403.

Panda N, Mandal D, Mandal NB, Sahu NP, Banerjee S. Flavonoid and flavones C-glycosides from Dregea volubilis. Nat Prod Commun 2006;1:731-3.

Das B, De A, Das M, Das S, Samanta A. A new exploration of Dregea volubilis flowers: Focusing on antioxidant and antidiabetic properties. S Afr J Bot 2017;109:16-24.

Chanda S. Importance of pharmacognostic study of medicinal plants: An overview. J Pharmacogn Phytochem 2014;2:69-73.

Borah S, Kakoti BB, Mahato K, Chakraborty D, Lahkar S, Gogoi B, et al. Pharmacognostic and preliminary phytochemical studies on shoot of Calamus leptospadix Griff. An ethnomedicinal plant of Assam. Indian J Nat Prod Resour 2014;5:320-5.

Hemalatha K, Abirami P. Pharmacognostic studies on Talinum portulacifolium (Forssk.) Asch. Ex Schweinf. Asian J Pharm Clin Res 2018;11:470-3.

Upreti K, Semwal A, Upadhyaya K, Masiwal M. Pharmacognostical and phytochemical screening of leaf extract of Zanthoxylum armatum DC. Int J Tradit Herb Med 2013;1:6-11.

Arambewela LS, Arawwawala LD. Standardization of Alpinia calcarata roscoe rhizomes. Pharmacogn Res 2010;2:285-8.

Aslam I, Afridi MS. Pharmacognostic characterization of Beaumontia grandiflora (Roxb.) Wall. Leaf for taxonomic identification for quality control of a drug. J Appl Res Med Aromat Plants 2018;8:53-9.

Mallya R, Bhitre MJ. Pharmacognostic standardisation and chromatographic fingerprinting of leaves and fruits of Zanthoxylum rhetsa. Int J Pharm Pharm Sci 2018;10:101-4.

Rabinarayan A, Switu J, Harisha CR, Vinay S. Pharmacognostical genetic barcoding and phytochemical analysis on leaves of Dalbergia volubilis Roxb. An extra pharmacopoeial drug of Ayurveda. Int J Pharm Pharm Sci 2018;10:117-24.

Adams SJ, Kuruvilla GR, Krishnamurthy KV, Nagarajan M, Venkatasubramanian P. Pharmacognostic and phytochemical studies on Ayurvedic drugs ativisha and musta. Rev Bras Farmacogn 2013;23:398-409.

Cheng D, Zhang Y, Xin X, Gao D. Comparative pharmacognosy of Pyrrosia petiolosa and Pyrrosia davidii. Rev Bras Farmacogn 2014;24:368-80.

Wahab S, Hussain A, Ahmad P, Usmani S. Ethanobotanical, pharmacognostical and physicochemical studies of stem bark of Bombax ceiba L., commonly growing in eastern Uttar Pradesh region of India. Pharmacogn J 2012;4:55-60.

Sharma M, Sharma V, Majumdar DK. Entrapment of α amylase in agar beads for biocatalysis of macromolecular substrate. Int Sch Res Not 2014;1:1-8.

Baloch AB, Xia X, Sheikh SA. Proximate and mineral compositions of dried cauliflower (Brassica Oleracea L.) grown in Sindh, Pakistan. J Food Nutr Res 2015;3:213-9.

Heleno SA, Barros L, Sousa MJ, Martins A, Ferreira IC. Study and characterization of selected nutrients in wild mushrooms from Portugal by gas chromatography and high performance liquid chromatography. Microchem J 2009;93:195-9.

Kokate CK, Purohit AP, Gokhale SB. Test Book of Pharmacognosy. 42nd ed. Pune: Nirali Prakashan; 2006.

Folashade O, Omoregie H, Ochogu P. Standardization of herbal medicines a review. Int J Biodivers Conserv 2012;4:101-12.

Madhav NV, Upadhyaya K, Bisht A. Phytochemical screening and standardization of polyherbal formulation for dyslipidemia. Int J Pharm Pharm Sci 2011;3:235-8.

Yadav RN, Agarwala M. Phytochemical analysis of some medicinal plants. J Phytol 2011;3:10-4.

Farooqui NA, Dey A, Singh GN, Easwari TS, Pandey MK. Analytical techniques in quality evaluation of herbal drugs. Asian J Pharm Res 2014;4:112-7.

Ubeyitogullari A, Ciftci ON. Phytosterol nanoparticles with reduced crystallinity generated using nanoporous starch aerogels. RSC Adv 2016;6:108319-27.

Silverstein RM, Webster FX, Kiemle DJ. Spectrometric Identification of Organic Compounds. 7th ed. New Jersey: John Wiley and Sons, Inc.; 2005.

Gad HA, El-Ahmady SH, Abou-Shoer MI, Al-Azizi MM. A modern approach to the authentication and quality assessment of thyme using UV spectroscopy and chemometric analysis. Phytochem Anal 2013;24:520-6.

Hussain J, Khan AL, Rehman NU, Hamayun M, Shinwari ZK, Ullah W, et al. Assessment of herbal products and their composite medicinal plants through proximate and micronutrients analyses. J Med Plants Res 2009;3:1072-7.

Zhao J, Ma S, Li S. Advanced strategies for quality control of Chinese medicines. J Pharm Biomed Anal 2018;147:473-8.

Published

07-05-2019

How to Cite

BHASKAR DAS, ARNAB DE, PIU DAS, AMALESH NANDA, and AMALESH SAMANTA. “PHARMACOGNOSTIC STUDIES ON FLOWERS OF DREGEA VOLUBILIS: EVALUATION FOR AUTHENTICATION AND STANDARDIZATION”. Asian Journal of Pharmaceutical and Clinical Research, vol. 12, no. 5, May 2019, pp. 79-89, doi:10.22159/ajpcr.2019.v12i5.32368.

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