102
Views
1
CrossRef citations to date
0
Altmetric
Research Articles

Serine protease from Indian Cobra venom: its anticoagulant property and effect on human fibrinogen

ORCID Icon, ORCID Icon, , ORCID Icon, ORCID Icon, & ORCID Icon show all
Pages 165-174 | Received 18 Sep 2020, Accepted 22 Nov 2020, Published online: 28 Dec 2020

References

  • Achyuthan, K.E., and Ramachandran, L.K., 1981. Cardiotoxin of the indian cobra (Naja naja) is a pyrophosphatase. Journal of biosciences, 3 (2), 149–155.
  • Bradford, M.M., 1976. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical biochemistry, 72 (1–2), 248–254.
  • Che-Ming, T., Yunn-Hwa, M., and Chaoho, O., 1985. Action mechanism of the platelet aggregation inducer and inhibitor from echis carinatus snake venom. Biochimica et Biophysica Acta (BBA) – general subjects, 841 (1), 8–14.
  • Chippaux, J.P., Williams, V., and White, J., 1991. Snake venom variability: methods of study, results and interpretation. Toxicon : official journal of the international society on toxinology, 29 (11), 1279–1303.
  • Condrea, E., Yang, C-c., and Rosenberg, P., 1983. Anticoagulant activity and plasma phosphatidylserine hydrolysis by snake venom phospholipase a2. Thrombosis and haemostasis, 49 (2), 151–151.
  • Craik, C.S., Page, M.J., and Madison, E.L., 2011. Proteases as therapeutics. The biochemical journal, 435 (1), 1–16.
  • Daltry, J.C., et al., 1996. Electrophoretic profiles and biological activities: intraspecific variation in the venom of the malayan pit viper (Calloselasma rhodostoma). Toxicon : official Journal of the international society on toxinology, 34 (1), 67–79.
  • Evans, H.J., 1981. Cleavage of the aα-chain of fibrinogen and the α-polymer of fibrin by the venom of spitting cobra (Naja nigricollis). Biochimica et Biophysica Acta (BBA) – enzymology, 660 (2), 219–226.
  • Gatlin, C.L., et al., 2011. Enhancement in maldi-tof ms analysis of the low molecular weight human serum proteome. Journal of mass spectrometry : JMS, 46 (1), 85–89.
  • Heussen, C., and Dowdle, E.B., 1980. Electrophoretic analysis of plasminogen activators in polyacrylamide gels containing sodium dodecyl sulfate and copolymerized substrates. Analytical biochemistry, 102 (1), 196–202.
  • Iwanaga, S., and Suzuki, T., 1979. Enzymes in snake venom. In: Snake venoms. Berlin Heidelberg: Springer, 61–158.
  • Jagadeesha, D.K., et al., 2002. A non-toxic anticoagulant metalloprotease: purification and characterization from indian cobra (Naja naja naja) venom. Toxicon : official journal of the international society on toxinology, 40 (6), 667–675.
  • Laemmli, U.K., 1970. Cleavage of structural proteins during the assembly of the head of bacteriophage t4. Nature, 227 (5259), 680–685.
  • Liu, C.-C., et al., 2020. Pathogenesis of local necrosis induced by naja atra venom: assessment of the neutralization ability of Taiwanese freeze-dried neurotoxic antivenom in animal models. PLoS neglected tropical diseases, 14 (2), e0008054.
  • Manjula, B., et al., 2015. Clot promoting and dissolving properties of cucumber (cucumis sativus) sap, validating its use in traditional medicine. International journal of pharmacy and pharmaceutical sciences, 7 (13), 104–111.
  • Markland, F.S., 1998. Snake venoms and the hemostatic system. Toxicon : official Journal of the international society on toxinology, 36 (12), 1749–1800.
  • Mukherjee, A.K., and Maity, C.R., 1998. The composition of Naja naja venom samples from three districts of West Bengal, India. Comparative biochemistry and physiology part A: molecular & integrative physiology, 119 (2), 621–627.
  • Murata, Y., Satake, M., and Suzuki, T., 1963. Studies on snake venom*. The journal of biochemistry, 53 (6), 431–437.
  • Nafeesa, Z., et al., 2015. Exploring a new serine protease from Cucumis sativus L. Applied biochemistry and biotechnology, 175 (6), 2787–2794.
  • Nawarawong, W., et al., 1991. The rate of fibrinopeptide b release modulates the rate of clot formation: a study with an acquired inhibitor to fibrinopeptide b release. British journal of haematology, 79 (2), 296–301.
  • Neema, K.N., et al., 2015. Purification and biochemical characterization of l-amino acid oxidase from western region indian cobra (Naja naja) venom. International journal of pharmacy and pharmaceutical sciences, 7 (13), 167–171.
  • Ouyang, C., and Shiau, S.-Y., 1970. Relationship between pharmacological actions and enzymatic activities of the venom of Trimeresurus gramineus. Toxicon : official journal of the international society on toxinology, 8 (2), 183–191.
  • Ouyang, C., and Teng, C.-M., 1976. Fibrinogenolytic enzymes of trimeresurus mucrosquamatus venom. Biochimica et Biophysica Acta (BBA) – protein structure, 420 (2), 298–308.
  • Pirkle, H., et al., 1986. Thrombin-like enzyme from the venom of bitis gabonica. The journal of biological chemistry, 261 (19), 8830–8835.
  • Rajesh, R., et al., 2005. Procoagulant activity of Calotropis gigantea latex associated with fibrin(ogen)olytic activity. Toxicon : official journal of the international society on toxinology, 46 (1), 84–92.
  • Shashidharamurthy, R., et al., 2002. Variations in biochemical and pharmacological properties of Indian cobra (Naja naja naja) venom due to geographical distribution. Molecular and cellular biochemistry, 229 (1–2), 93–101.
  • Shashidharamurthy, R., and Kemparaju, K., 2007. Region-specific neutralization of Indian cobra (Naja naja) venom by polyclonal antibody raised against the eastern regional venom: a comparative study of the venoms from three different geographical distributions. International immunopharmacology, 7 (1), 61–69.
  • Shivalingu, B.R., et al., 2016. Purification and characterization of novel fibrin(ogen)olytic protease from Curcuma aromatica salisb.: role in hemostasis. Phytomedicine : international journal of phytotherapy and phytopharmacology, 23 (13), 1691–1698.
  • Signor, L., and Boeri Erba, E., 2013. Matrix-assisted laser desorption/ionization time of flight (MALDI-TOF) mass spectrometric analysis of intact proteins larger than 100 kDa. Journal of visualized experiments, (79), 50635.
  • Siigur, E., and Siigur, J., 1991. Purification and characterization of lebetase, a fibrinolytic enzyme from Vipera lebetina (snake) venom. Biochimica et Biophysica Acta (BBA) - General Subjects, 1074 (2), 223–229.
  • Yamashita, S., et al., 1996. Effect of habu (Trimeresurus flavoviridis) antivenom on changes of hemostatic parameters following administration of crude venom from T. flavoviridis in rabbits. Toxicon, 34 (8), 893–902.
  • Yamazaki, Y., and Morita, T., 2007. Snake venom components affecting blood coagulation and the vascular system: structural similarities and marked diversity. Current pharmaceutical design, 13 (28), 2872–2886.
  • Jin, Y., Lee, W.-H., and Zhang, Y., 2007. Molecular cloning of serine proteases from elapid snake venoms. Toxicon : official journal of the international society on toxinology, 49 (8), 1200–1207.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.