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Items: 1 to 20 of 114

1.
2.

Venom proteomes of South and North American opisthoglyphous (Colubridae and Dipsadidae) snake species: a preliminary approach to understanding their biological roles.

Peichoto ME, Tavares FL, Santoro ML, Mackessy SP.

Comp Biochem Physiol Part D Genomics Proteomics. 2012 Dec;7(4):361-9. doi: 10.1016/j.cbd.2012.08.001.

PMID:
22974712
3.

Neuromuscular action of venom from the South American colubrid snake Philodryas patagoniensis.

Carreiro da Costa RS, Prudêncio L, Ferrari EF, Souza GH, de Mello SM, Prianti Júnior AC, Ribeiro W, Zamunér SR, Hyslop S, Cogo JC.

Comp Biochem Physiol C Toxicol Pharmacol. 2008 Jul;148(1):31-8. doi: 10.1016/j.cbpc.2008.03.006.

PMID:
18455482
4.

Experimental ophitoxemia produced by the opisthoglyphous lora snake (Philodryas olfersii) venom.

Rodríguez-Acosta A, Lemoine K, Navarrete L, Girón ME, Aguilar I.

Rev Soc Bras Med Trop. 2006 Mar-Apr;39(2):193-7.

5.

RNA-seq and high-definition mass spectrometry reveal the complex and divergent venoms of two rear-fanged colubrid snakes.

McGivern JJ, Wray KP, Margres MJ, Couch ME, Mackessy SP, Rokyta DR.

BMC Genomics. 2014 Dec 3;15:1061. doi: 10.1186/1471-2164-15-1061.

7.

Comparative studies of the anti-leishmanial activity of three Crotalus durissus ssp. venoms.

Passero LF, Tomokane TY, Corbett CE, Laurenti MD, Toyama MH.

Parasitol Res. 2007 Oct;101(5):1365-71.

PMID:
17659386
8.

Venom of the Brown Treesnake, Boiga irregularis: ontogenetic shifts and taxa-specific toxicity.

Mackessy SP, Sixberry NM, Heyborne WH, Fritts T.

Toxicon. 2006 Apr;47(5):537-48.

PMID:
16545413
10.

Anti-Leishmanial activity of homo- and heteroleptic bismuth(III) carboxylates.

Andrews PC, Frank R, Junk PC, Kedzierski L, Kumar I, MacLellan JG.

J Inorg Biochem. 2011 Mar;105(3):454-61. doi: 10.1016/j.jinorgbio.2010.08.007.

PMID:
20851471
11.

Inflammatory effects of patagonfibrase, a metalloproteinase from Philodryas patagoniensis (Patagonia Green Racer; Dipsadidae) venom.

Peichoto ME, Zychar BC, Tavares FL, de Camargo Gonçalves LR, Acosta O, Santoro ML.

Exp Biol Med (Maywood). 2011 Oct;236(10):1166-72. doi: 10.1258/ebm.2011.011125.

PMID:
21885478
13.

Biochemical and biological analysis of Philodryas baroni (Baron's green racer; Dipsadidae) venom: relevance to the findings of human risk assessment.

Sánchez MN, Timoniuk A, Maruñak S, Teibler P, Acosta O, Peichoto ME.

Hum Exp Toxicol. 2014 Jan;33(1):22-31. doi: 10.1177/0960327113493302.

PMID:
23800999
14.

Venomics profiling of Thamnodynastes strigatus unveils matrix metalloproteinases and other novel proteins recruited to the toxin arsenal of rear-fanged snakes.

Ching AT, Paes Leme AF, Zelanis A, Rocha MM, Furtado Mde F, Silva DA, Trugilho MR, da Rocha SL, Perales J, Ho PL, Serrano SM, Junqueira-de-Azevedo IL.

J Proteome Res. 2012 Feb 3;11(2):1152-62. doi: 10.1021/pr200876c.

PMID:
22168127
15.

In vitro activity and cytotoxicity of Crocus sativus extract against leihmania major (MRHO/IR/75/ER).

Yousefi E, Eskandari A, Gharavi MJ, Khademvatan S.

Infect Disord Drug Targets. 2014;14(1):56-60.

PMID:
25159304
16.

Understanding Biological Roles of Venoms Among the Caenophidia: The Importance of Rear-Fanged Snakes.

Mackessy SP, Saviola AJ.

Integr Comp Biol. 2016 Nov;56(5):1004-1021.

PMID:
27639275
18.

Anti-leishmanial and toxicity activities of some selected Iranian medicinal plants.

Kheiri Manjili H, Jafari H, Ramazani A, Davoudi N.

Parasitol Res. 2012 Nov;111(5):2115-21. doi: 10.1007/s00436-012-3059-7.

PMID:
22875395
19.

Ultrastructural alterations and growth inhibition of Trypanosoma cruzi and Leishmania major induced by Bothrops jararaca venom.

Gonçalves AR, Soares MJ, de Souza W, DaMatta RA, Alves EW.

Parasitol Res. 2002 Jul;88(7):598-602.

PMID:
12107450
20.

Novel arylalkylamine compounds exhibits potent selective antiparasitic activity against Leishmania major.

Iniguez EA, Perez A, Maldonado RA, Skouta R.

Bioorg Med Chem Lett. 2015 Nov 15;25(22):5315-20. doi: 10.1016/j.bmcl.2015.09.041.

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