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比较分析不同种类的芋螺科毒液中蛋白酶的活性。

Comparative analysis of proteases in the injected and dissected venom of cone snail species.

机构信息

Department of Chemistry and Biochemistry, Florida Atlantic University, 777 Glades Road, Boca Raton, FL 33431-0991, USA.

出版信息

Toxicon. 2013 Apr;65:59-67. doi: 10.1016/j.toxicon.2012.12.014. Epub 2013 Jan 20.

Abstract

The venom of cone snails has been the subject of intense studies because it contains small neuroactive peptides of therapeutic value. However, much less is known about their larger proteins counterparts and their role in prey envenomation. Here, we analyzed the proteolytic enzymes in the injected venom of Conus purpurascens and Conus ermineus (piscivorous), and the dissected venom of C. purpurascens, Conus marmoreus (molluscivorous) and Conus virgo (vermivorous). Zymograms show that all venom samples displayed proteolytic activity on gelatin. However, the electrophoresis patterns and sizes of the proteases varied considerably among these four species. The protease distribution also varied dramatically between the injected and dissected venom of C. purpurascens. Protease inhibitors demonstrated that serine and metalloproteases are responsible for the gelatinolytic activity. We found fibrinogenolytic activity in the injected venom of C. ermineus suggesting that this venom might have effects on the hemostatic system of the prey. Remarkable differences in protein and protease expression were found in different sections of the venom duct, indicating that these components are related to the storage granules and that they participate in venom biosynthesis. Consequently, different conoproteases play major roles in venom processing and prey envenomation.

摘要

芋螺毒液一直是深入研究的课题,因为它含有具有治疗价值的小神经活性肽。然而,对于它们的大蛋白对应物及其在猎物中毒中的作用,人们知之甚少。在这里,我们分析了肉食性的 Conus purpurascens 和 Conus ermineus 及食贝类的 Conus marmoreus 和食虫类的 Conus virgo 的注射毒液和解剖毒液中的蛋白水解酶。酶谱显示,所有毒液样本在明胶上均显示出蛋白水解活性。然而,这四种毒液中蛋白酶的电泳图谱和大小差异很大。C. purpurascens 的注射毒液和解剖毒液之间的蛋白酶分布也有很大差异。蛋白酶抑制剂表明丝氨酸和金属蛋白酶是明胶水解活性的原因。我们在 C. ermineus 的注射毒液中发现了纤维蛋白溶酶活性,这表明这种毒液可能对猎物的止血系统有影响。在毒液管的不同部位发现了蛋白质和蛋白酶表达的显著差异,这表明这些成分与储存颗粒有关,它们参与了毒液的生物合成。因此,不同的芋螺蛋白酶在毒液加工和猎物中毒中发挥主要作用。

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4
Cutaneous abscess after Conus textile sting.
J Travel Med. 2011 May-Jun;18(3):210-1. doi: 10.1111/j.1708-8305.2010.00498.x. Epub 2011 Feb 7.
7
Intraspecies variability and conopeptide profiling of the injected venom of Conus ermineus.
Peptides. 2011 Feb;32(2):306-16. doi: 10.1016/j.peptides.2010.11.014. Epub 2010 Nov 30.
9
Proteomic analysis provides insights on venom processing in Conus textile.
J Proteome Res. 2010 May 7;9(5):2292-301. doi: 10.1021/pr901032r.
10
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Toxicon. 2010 Jul;55(8):1453-62. doi: 10.1016/j.toxicon.2010.02.025. Epub 2010 Mar 3.

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