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首页> 外文期刊>The Open Evolution Journal >The Gene Structure and Evolution of ku-wap-fusin (Kunitz Waprin Fusion Protein), a Novel Evolutionary Intermediate of the Kunitz Serine Protease Inhibitors and Waprins from Sistrurus catenatus (Massasauga Rattlesnake) Venom Glands
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The Gene Structure and Evolution of ku-wap-fusin (Kunitz Waprin Fusion Protein), a Novel Evolutionary Intermediate of the Kunitz Serine Protease Inhibitors and Waprins from Sistrurus catenatus (Massasauga Rattlesnake) Venom Glands

机译:ku-wap-fusin(Kunitz Waprin融合蛋白)的基因结构和进化,一种新型进化中间体,来自Kistitz丝氨酸蛋白酶抑制剂和Siprurus catenatus(Massasauga Rattlesnake)毒腺Waprins

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摘要

Snake venom proteins belong to various families which differ in their primary and secondary structures. Recently, we found a novel transcript in the venom gland of Sistrurus catenatus edwardsii which was named “Ku-wapfusin” because it encodes Kunitz-type serine protease inhibitors (Kunitz SPIs) and whey acidic protein (WAP) domains in tandem. We have now determined the gene structure of this unique transcript (from S. c. edwardsii and S. c. tergeminus) and analyzed its evolutionary relationships with genes encoding Kunitz-type serine protease inhibitors and waprins. Structurally, Ku-wap-fusin has four exons and three introns. Comparison of all gene structures (Kunitz SPI, WAP and fusin) shows that exon I in all of these genes is highly conserved and codes for the signal peptide. However, in the Ku-wap-fusin gene, there is an insertion of an exon, which codes for the WAP domain, in the intron II region of the Kunitz SPI gene. In the waprin gene, the exon II, encoding the Kunitz domain, has been lost. Ku-wap-fusin and waprin (whey acidic protein related proteins) genes therefore appear to have evolved via insertion/deletion of an exon. We propose a model for the evolution of these genes (using their gene structures) in which Kunitz, Ku-wap-fusin and waprin genes have evolved from a common ancestor. During the evolution of this protein family complex, the Ku-wap-fusin gene is likely an intermediate between the ancestral and the waprin genes.
机译:蛇毒蛋白属于不同的家族,其一级和二级结构不同。最近,我们在爱德华酵母的毒腺中发现了一个新的转录本,被称为“ Ku-wapfusin”,因为它可以同时编码Kunitz型丝氨酸蛋白酶抑制剂(Kunitz SPI)和乳清酸性蛋白(WAP)域。现在,我们已经确定了这种独特的转录本的基因结构(来自爱德华酵母和tergeminus酵母),并分析了其与编码Kunitz型丝氨酸蛋白酶抑制剂和waprins的基因的进化关系。在结构上,Ku-wap-fusin具有四个外显子和三个内含子。所有基因结构(Kunitz SPI,WAP和fusin)的比较表明,所有这些基因中的外显子I是高度保守的,并编码信号肽。但是,在Ku-wap-fusin基因中,在Kunitz SPI基因的内含子II区插入了一个外显子,该外显子编码WAP域。在waprin基因中,编码Kunitz域的外显子II已丢失。因此,Ku-wap-fusin和waprin(与酸性蛋白相关的蛋白)基因似乎已经通过外显子的插入/缺失而进化。我们提出了一个用于这些基因进化的模型(利用它们的基因结构),其中Kunitz,Ku-wap-fusin和waprin基因是从共同祖先进化而来的。在蛋白质家族复合体的进化过程中,Ku-wap-fusin基因可能是祖先和waprin基因之间的中间产物。

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