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A Review on in Vitro Screening Assay for Inhibitory Effect against Venom Enzymes Using Medicinal Plants


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1 Department of Biological Science and Engineering, Maulana Azad National Institute of Technology, Bhopal, India
     

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The usage of medicinal or herbal plants has been a particular application throughout human life, whose information, collected through the involvement of countless generations. Medicinal or herbal plants signify a vital source of bioactive constituents which are useful to the treatment of snake bites patient, or indirectly, applicable as boosts to conventional serum therapy. The tribal and local healers use the Indian medicinal plant extract and its active constituents against snake venom has been not established by experimentally. Defensive activity of several of traditional medicinal plants against snake venoms has been scientifically confirmed by enzymatic assays. In general, enzymatic and biochemical analysis of these plants inhibitors, as useful another or supplemental treatments to conventional serum therapy. However, some assays should be considered to evaluate antivenom efficiency of medicinal plants against a variety of snake venoms. The current review deals with the in-vitro screening assay work performed in the recent years involving use of different natural plants extracts and products against snakebite.

Keywords

Snake Venom, Medicinal Plants, Anivenom, Enzymatic Assay.
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  • Dhananjaya BL, Zameer F, Girish KS, D’Souza CJ. Antivenom potential of aqueous extract of stem bark of Mangifera indica L. against Daboia russellii (Russell’s viper) venom. Indian J Biochem Biophys 2011;48:175-83.
  • Adler H, Kraig T. Firefly Encyclopedia of Reptiles and Amphibians. Toronto, Canada: Firefly Books Ltd. 2002; p.202– 203.
  • Gold BS, Richard CD, Robert AB. Bites of venomous snakes. N Engl J Med 2002;347(5):347–56.
  • Devi CM, Bai MV, Lal AV, Umashankar PR, Krishnan LK. An improved method for isolation of anti-viper venom antibodies from chicken egg yolk. J Biochem Biophys Methods 2002;51(2):129–38.
  • Daduang S, Sattayasai N, Sattayasai J, Tophrom P, Thammathaworn A, Chaveerach A et al. Screening of plants containing Naja naja siamensis cobra venom inhibitory activity using modified ELISA technique. Anal Biochem 2005;341:316–25.
  • Yasir M, Das S, Kharya MD. The phytochemical and pharmacological proÞ le of Persea americana Mill. Phocg Rev. 2010;4(7):77-4
  • Hiremath VT, Taranath TC. Traditional Phytotherapy for ʹSnake bites by Tribes of Chitradurga District, Karnataka, India. Ethnobot Leaflets 2010;14(2):120–5.
  • Rizzini CT, Mors WB, Pereira NA. Brazilian plants so-believed active against animal-venons, especially antisnake venoms. Rev Bras Farm 1988;69:82-6.
  • Murakami M. Kudo I. Phospholipase A2. J Biochem 2002;31(3):285-92.
  • Favilli G. Occurrence of spreading factors and some properties of hyaluronidases in animal parasites and venoms. In: Buckley,E.E., Porges,N., (Eds.), Washington, D.C.: Amer. Assoc. Adv. Sci. 1956 p. 281-89.
  • Tan NH, Tan CS. Acidimetric assay for phospholipase A using egg yolk suspension as substrate. Anal Biochem 1988;170(2):282–88.
  • Dhananjaya BL, Gowda TV, D’Souza CJ. Evidence for existence of venom 5’ nucleotidase in multiple forms through inhibition of concanavalin A. Cell Biochem Funct 2010;28(7):620-2.
  • Rowe M, de Gast GC, Platts-Mills TA, Asherson GL, Webster AD, Johnson SM. Lymphocyte 5ʹ nucleotidase in primary hypogammaglobulinaemia and cord blood. Clin Exp Immunol 1980;39(2):337–43.
  • Junming L, Yaqin W, Xiaohong Z, Shixing W, Hongkun Z. A hyaluronidase from the Snake Venom of Agkistrodon Blomhoffii Ussurensis of Changbai Mountain: Isolation and Characterization. Int J Biol Sci 2010;2(2).
  • Duran R F. A spreading factor in certain snake venoms and its relation to their mode of action. J expo Med 1939;69:691.
  • Pukrittayakamee S, Warrell DA, Desakorn V, McMichael AJ, White NJ, Bunnag D. The hyaluronidase activities of some Southeast Asian snake venoms. Toxicon 1988;26(7):629–37.
  • ZelIer EA, Maritz A. Uber eine neue L-Aminosaure Oxidase. Helv chim Acta 1944;27:1888-902.
  • Li ZY, Yu TF, Lian EC: Purification and characterization of L-amino acid oxidase from king cobra (Ophiophagus hannah) venom and its effects on human platelet aggregation. Toxicon 1994;32(11):1349–358.
  • André L, Anna-Maria P, Reto S, Nils HS, Marianne W, Uwe K. Screening of acetylcholinesterase inhibitors in snake venom by electrospray mass spectrometry. Pure Appl Chem 2007;79(12):2339–349.
  • Zeller EA. Enzymes as essential components of toxins. In: Sumner, J.B., Myrback, K. (Eds.): Enzymes, New York: Academic Press 1951 p. 986-13.
  • Ellman GL, Courtney KD, Andres V Jr, Feather-Stone RM. A new and rapid colorimetric determination of acetylcholinesterase activity. Biochem Pharmacol 1961;7(1):88–5.
  • Dhananjaya BL, D'Souza CJM. An Overview on Nucleases (DNase, RNase, and Phosphodiesterase) in Snake Venoms. Biochemistry (Moscow). 2010;75(1):1-6.
  • Lo TB, Chen YH, Lee CY. Chemical studies of Formosan cobra (Naja naja atra) venom. Part 1. Chromatographic separation of crude venom on CM-Sepadex and preliminary characterization of its components. J Chin Chem Soc 1966;13(1):165–77.
  • Tu AT, Chua A. Acid and alkaline phosphomonoesterase activities in snake venoms. Compo Biochem. PhysioI 1966;17:297-07.
  • Bessey OA, Lowry OH, Brock MJ. A method for the rapid determination of alkaline phosphates with five cubic millimeters of serum. J Biol Chem 1946;164:321–9.

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  • A Review on in Vitro Screening Assay for Inhibitory Effect against Venom Enzymes Using Medicinal Plants

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Authors

Pushpendra Singh
Department of Biological Science and Engineering, Maulana Azad National Institute of Technology, Bhopal, India
Mohammad Yasir
Department of Biological Science and Engineering, Maulana Azad National Institute of Technology, Bhopal, India
Manish Kumar Tripathi
Department of Biological Science and Engineering, Maulana Azad National Institute of Technology, Bhopal, India
Rahul Shrivastava
Department of Biological Science and Engineering, Maulana Azad National Institute of Technology, Bhopal, India

Abstract


The usage of medicinal or herbal plants has been a particular application throughout human life, whose information, collected through the involvement of countless generations. Medicinal or herbal plants signify a vital source of bioactive constituents which are useful to the treatment of snake bites patient, or indirectly, applicable as boosts to conventional serum therapy. The tribal and local healers use the Indian medicinal plant extract and its active constituents against snake venom has been not established by experimentally. Defensive activity of several of traditional medicinal plants against snake venoms has been scientifically confirmed by enzymatic assays. In general, enzymatic and biochemical analysis of these plants inhibitors, as useful another or supplemental treatments to conventional serum therapy. However, some assays should be considered to evaluate antivenom efficiency of medicinal plants against a variety of snake venoms. The current review deals with the in-vitro screening assay work performed in the recent years involving use of different natural plants extracts and products against snakebite.

Keywords


Snake Venom, Medicinal Plants, Anivenom, Enzymatic Assay.

References





DOI: https://doi.org/10.22506/ti%2F2016%2Fv23%2Fi3%2F146712