Nallely Hoyos-Gonzalez , Adrian Ochoa-Leyva , Claudia G. Benitez-Cardoza , Luis G. Brieba , German Lukaszewicz , Carlos H. Trasviña-Arenas , Rogerio R. Sotelo-Mundo
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By implementing a structure-based search with the Phyre2 algorithm surveying the </span></span>shrimp </span><span><em>Litopenaeus vannamei</em></span><span><span>'s transcriptome<span><span>, we identified a putative apoLp-III in this farmed penaeid (LvApoLp-III). Unlike canonical apoLp-III, the LvApoLp-III was identified as an internal domain within the transmembrane protein<span> Prominin-1. Structural modeling using the template-based Phyre2 and template-free AlphaFold algorithms rendered two distinct structural topologies: the α-helix bundle and a coiled-coil structure. Notably, the secondary structure composition on both models was alike, with differences in the orientation and distribution of the α-helices and hydrophobic moieties. Both models provide insights into the classical structural switch induced by lipids in apoLp-III. To corroborate structure/function inferences, we cloned the synthetic LvApoLp-III domain, overexpressed, and purified the </span></span>recombinant protein. </span></span>Circular dichroism measurements with the recombinant LvApoLp-III agreed with the structural models. </span><em>In vitro</em> liposome interaction demonstrated that the apoLp-III domain within the PROM1 of <em>L.</em> <em>vannamei</em><span> associated similarly to exchangeable apolipoproteins. Altogether, this work reports the presence of an apolipophorin-III domain in crustaceans for the first time and opens questions regarding its function and importance in lipid metabolism or the immune system.</span></p></div>","PeriodicalId":1,"journal":{"name":"Accounts of Chemical Research","volume":null,"pages":null},"PeriodicalIF":16.4000,"publicationDate":"2023-12-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Identification of a cryptic functional apolipophorin-III domain within the Prominin-1 gene of Litopenaeus vannamei\",\"authors\":\"Nallely Hoyos-Gonzalez , Adrian Ochoa-Leyva , Claudia G. Benitez-Cardoza , Luis G. Brieba , German Lukaszewicz , Carlos H. Trasviña-Arenas , Rogerio R. Sotelo-Mundo\",\"doi\":\"10.1016/j.cbpb.2023.110928\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p><span><span>The Apolipophorin-III (apoLp-III) is reported as an essential protein element in lipids<span> transport and incorporation in lepidopterans. Structurally, apoLp-III has an α-helix bundle structure composed of five α-helices. Interestingly, classic studies proposed a structural switch triggered by its interaction with lipids, where the α-helix bundle opens. Currently, the study of the apoLp-III has been limited to insects, with no homologs identified in other arthropods. By implementing a structure-based search with the Phyre2 algorithm surveying the </span></span>shrimp </span><span><em>Litopenaeus vannamei</em></span><span><span>'s transcriptome<span><span>, we identified a putative apoLp-III in this farmed penaeid (LvApoLp-III). Unlike canonical apoLp-III, the LvApoLp-III was identified as an internal domain within the transmembrane protein<span> Prominin-1. Structural modeling using the template-based Phyre2 and template-free AlphaFold algorithms rendered two distinct structural topologies: the α-helix bundle and a coiled-coil structure. Notably, the secondary structure composition on both models was alike, with differences in the orientation and distribution of the α-helices and hydrophobic moieties. Both models provide insights into the classical structural switch induced by lipids in apoLp-III. To corroborate structure/function inferences, we cloned the synthetic LvApoLp-III domain, overexpressed, and purified the </span></span>recombinant protein. </span></span>Circular dichroism measurements with the recombinant LvApoLp-III agreed with the structural models. </span><em>In vitro</em> liposome interaction demonstrated that the apoLp-III domain within the PROM1 of <em>L.</em> <em>vannamei</em><span> associated similarly to exchangeable apolipoproteins. 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引用次数: 0
摘要
载脂蛋白- iii (apoLp-III)是鳞翅目动物脂质运输和整合的必需蛋白元素。在结构上,apoLp-III具有由5个α-螺旋组成的α-螺旋束结构。有趣的是,经典研究提出了一种由其与脂质相互作用触发的结构开关,其中α-螺旋束打开。目前,对apop - iii的研究仅限于昆虫,在其他节肢动物中尚未发现同源物。利用Phyre2算法对凡纳滨对虾(Litopenaeus vannamei)的转录组进行了基于结构的搜索,我们在这种养殖对虾中发现了一个推测的apoLp-III (LvApoLp-III)。与典型的apoLp-III不同,LvApoLp-III被鉴定为跨膜蛋白pronin -1的内部结构域。使用基于模板的Phyre2和无模板的AlphaFold算法进行结构建模,呈现出两种不同的结构拓扑:α-螺旋束和线圈-线圈结构。值得注意的是,两种模型的二级结构组成相似,只是α-螺旋和疏水基团的取向和分布存在差异。这两种模型都提供了对脂质诱导的apoLp-III的经典结构开关的见解。为了证实结构/功能推断,我们克隆了合成的LvApoLp-III结构域,过表达并纯化了重组蛋白。重组LvApoLp-III的圆二色性测量与结构模型一致。体外脂质体相互作用表明,南美扁豆PROM1内的apoLp-III结构域与可交换载脂蛋白相似。总之,这项工作首次报道了载脂蛋白iii结构域在甲壳类动物中的存在,并对其在脂质代谢或免疫系统中的功能和重要性提出了疑问。
Identification of a cryptic functional apolipophorin-III domain within the Prominin-1 gene of Litopenaeus vannamei
The Apolipophorin-III (apoLp-III) is reported as an essential protein element in lipids transport and incorporation in lepidopterans. Structurally, apoLp-III has an α-helix bundle structure composed of five α-helices. Interestingly, classic studies proposed a structural switch triggered by its interaction with lipids, where the α-helix bundle opens. Currently, the study of the apoLp-III has been limited to insects, with no homologs identified in other arthropods. By implementing a structure-based search with the Phyre2 algorithm surveying the shrimp Litopenaeus vannamei's transcriptome, we identified a putative apoLp-III in this farmed penaeid (LvApoLp-III). Unlike canonical apoLp-III, the LvApoLp-III was identified as an internal domain within the transmembrane protein Prominin-1. Structural modeling using the template-based Phyre2 and template-free AlphaFold algorithms rendered two distinct structural topologies: the α-helix bundle and a coiled-coil structure. Notably, the secondary structure composition on both models was alike, with differences in the orientation and distribution of the α-helices and hydrophobic moieties. Both models provide insights into the classical structural switch induced by lipids in apoLp-III. To corroborate structure/function inferences, we cloned the synthetic LvApoLp-III domain, overexpressed, and purified the recombinant protein. Circular dichroism measurements with the recombinant LvApoLp-III agreed with the structural models. In vitro liposome interaction demonstrated that the apoLp-III domain within the PROM1 of L.vannamei associated similarly to exchangeable apolipoproteins. Altogether, this work reports the presence of an apolipophorin-III domain in crustaceans for the first time and opens questions regarding its function and importance in lipid metabolism or the immune system.
期刊介绍:
Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance.
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