| Literature DB >> 20936075 |
S S Hasson1, R A Mothana, T A Sallam, M S Al-balushi, M T Rahman, A A Al-Jabri.
Abstract
Envenoming by Ec<span class="Chemical">his <span class="Species">saw-scaled viper is the leading cause of death and morbidity in Africa due to snake bite. Despite its medical importance, there have been few investigations into the toxin composition of the venom of this viper. Here, we report the cloning of cDNA sequences encoding four groups or isoforms of the haemostasis-disruptive Serine protease proteins (SPs) from the venom glands of Echis ocellatus. All these SP sequences encoded the cysteine residues scaffold that form the 6-disulphide bonds responsible for the characteristic tertiary structure of venom serine proteases. All the Echis ocellatus EoSP groups showed varying degrees of sequence similarity to published viper venom SPs. However, these groups also showed marked intercluster sequence conservation across them which were significantly different from that of previously published viper SPs. Because viper venom SPs exhibit a high degree of sequence similarity and yet exert profoundly different effects on the mammalian haemostatic system, no attempt was made to assign functionality to the new Echis ocellatus EoSPs on the basis of sequence alone. The extraordinary level of interspecific and intergeneric sequence conservation exhibited by the Echis ocellatus EoSPs and analogous serine proteases from other viper species leads us to speculate that antibodies to representative molecules should neutralise (that we will exploit, by epidermal DNA immunization) the biological function of this important group of venom toxins in vipers that are distributed throughout Africa, the Middle East, and the Indian subcontinent.Entities:
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Year: 2010 PMID: 20936075 PMCID: PMC2949595 DOI: 10.1155/2010/134232
Source DB: PubMed Journal: J Biomed Biotechnol ISSN: 1110-7243
Percent sequence similarity between E. ocellatus serine proteases and analogous molecules from related viper species.
| Species | Accession no. | References | Serine protease | ||||
|---|---|---|---|---|---|---|---|
| CAB62591 | Siigur et al. [ | Serine proteinase | 65 | 66 | 80 | 64 | |
| AAR24534 | Francischetti et al. [ | Serine protease 1 | 62 | 63 | 82 | 65 | |
| AAK12273 | Liang et al. [ | Thrombin-like enzyme pre. | 67 | 67 | 71 | 70 | |
| AAN52350 | Lee and Zhang [ | Venom serine protease 5 | 66 | 66 | 65 | 69 | |
| O13063 | Deshimaru et al. [ | Serine proteinase 3 pre. | 71 | 71 | 61 | 76 | |
| Q9PTU8 | Murayama, [ | Serine proteinase A pre. | 66 | 68 | 66 | 74 | |
| O13060 | Deshimaru et al. [ | Serine proteinase 2A pre. | 65 | 65 | 73 | 70 | |
| AAP42416 | Kashima et al. [ | Serine protease | 63 | 63 | 72 | 68 | |
| BAA20283 | Serrano et al. [ | KN-BJ2 | 69 | 68 | 62 | 69 | |
| AAG10788 | Lu et al. [ | Serine proteinase 1 pre. | 65 | 65 | 71 | 70 | |
| AAL68708 | Zhao et al. [ | Thrombin-like serine protease | 67 | 67 | 72 | 71 | |
| AAL77226 | Tsai et al. [ | Serine protease catroxase I pre. | 66 | 65 | 63 | 65 |
Figure 1PCR product of the E. ocellatus serine proteases. Analysis of PCR amplification products by 0.7% agarose gel electrophoresis. Bands were visualised using the ultraviolet transillumination. Lane 2: represents the amplified PCR product (circled) of about 800 bp from E. ocellatus venom glands cDNA compared with Lane 1:1 kb ladder DNA-marker bands, of known molecular weight. Lanes 3 and 4 represent a H2O negative control and a SOD positive control, respectively.
Figure 2(a) The nucleotide sequence of the fourteen E. ocellatus venom gland cDNAs resulting from PCR amplification. (b) Deduced amino acid sequences of E. ocellatus venom gland serine protease cDNAs.
Figure 3Differentiation of the fourteen cDNA-encoding E. ocellatus venom gland serine proteases. The predicted surface probabilities (Emin algorithm, DNASTAR, USA) of the 14 E. ocellatus serine protease cDNAs were aligned. The boxed areas indicate group specific structural motifs.
Figure 4Amino acid sequence similarity between EoSP Variants and serine proteases from related vipers. The residues shaded in black correspond to residues that are identical to EoSP-01. The asteriks [*] represented the tweleve conserved cysteine residues. The catalytic traid His/Arg (67), Asp (110) and Ser (208) are represented in red circules. Activated peptide where the mature proteine cleaved is represented by green rectangle.
Comparison of amino acid motifs which are responsible for the potent effects and characterisation of some published venom serine proteases with the four EoSP cDNAs.
| Amino acid | TSV-PA | Batroxobin | Ancrod | References | ||||
|---|---|---|---|---|---|---|---|---|
| H57 | H57 | H67 | R67 |
Braud et al. [ | ||||
| D102 | D102 | D112 | D112 | |||||
| S195 | S195 | S208 | T208 | |||||
| H192 | N192 | L205 | K205 | |||||
| F193 | S193 | G206 | A206 |
Guinto et al. [ | ||||
| D189 | D189 | D202 | D202 | |||||
| P225 | P225 | P235 | P235 | |||||
| P219 | P219 | V228 | P228 | Braud et al. [ | ||||
| D96 | R96 | Y106 | Y106 |
Lee and Zhang [ | ||||
| D97 | T97 | T107 | T107 | |||||
| E98 | S98 | L108 | R108 | |||||
HDS: Catalytic Traid; H/F: substrate specificity; D & P: Architecture of water channel; P: Evolutionary region to kallikrein; DDE: substrate specificity to plasminogen.
Figure 5Comparison of antigenic profile of the EoSer variants with analogous serine proteases used in Figure 4. The top horizontal scale represents the number of amino acid residues. The conserved signal peptide is separated from the mature protein by a vertical dotted line. The three vertical boxes were drawn to indicate the conserved catalytic traid regions described in the text.