The adult shell matrix protein repertoire of the marine snail Crepidula is dominated by conserved genes that are also expressed in larvae

Rebecca N. Lopez-Anido, Grant O. Batzel, Gabriela Ramirez, Yiqun Wang, Stephanie Neal, Maryna P. Lesoway, Jessica A. Goodheart, Deirdre C. Lyons
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Abstract

Mollusca is a morphologically diverse phylum, exhibiting an immense variety of calcium carbonate structures. Proteomic studies of adult shells often report high levels of rapidly-evolving, ‘novel’ shell matrix proteins (SMPs), which are hypothesized to drive shell diversification. However, relatively little is known about the phylogenetic distribution of SMPs, or about the function of individual SMPs in shell construction. To understand how SMPs contribute to shell diversification a thorough characterization of SMPs is required. Here, we build tools and a foundational understanding of SMPs in the marine gastropod species Crepidula fornicata and Crepidula atrasolea because they are genetically-enabled mollusc model organisms. First, we established a staging system of shell development in C. atrasolea for the first time. Next, we leveraged previous findings in C. fornicata combined with phylogenomic analyses of 95 metazoan species to determine the evolutionary lineage of its adult SMP repertoire. We found that 55% of C. fornicata’s SMPs belong to molluscan orthogroups, with 27% restricted to Gastropoda, and only 5% restricted at the species level. The low percentage of species-restricted SMPs underscores the importance of broad-taxon sampling and orthology inference approaches when determining homology of SMPs. From our transcriptome analysis, we found that the majority of C. fornicata SMPs that were found conserved in C. atrasolea were expressed in both larval and adult stages. We then selected a subset of SMPs of varying evolutionary ages for spatial-temporal analysis using in situ hybridization chain reaction (HCR) during larval shell development in C. atrasolea. Out of the 18 SMPs analyzed, 12 were detected in the larval shell field. These results suggest overlapping larval vs. adult SMP repertoires. Using multiplexed HCR, we observed five SMP expression patterns and three distinct cell populations within the shell field. These patterns support the idea that modular expression of SMPs could facilitate divergence of shell morphological characteristics. Collectively, these data establish an evolutionary and developmental framework in Crepidula that enables future comparisons of molluscan biomineralization to reveal mechanisms of shell diversification.

Abstract Image

海洋蜗牛克氏栉水母的成体外壳基质蛋白谱系以保守基因为主,这些基因在幼虫体内也有表达
软体动物门是一个形态多样的门类,具有种类繁多的碳酸钙结构。对成体贝壳的蛋白质组学研究经常报告有大量快速进化的 "新型 "贝壳基质蛋白(SMPs),这些蛋白被认为是贝壳多样化的驱动力。然而,人们对 SMPs 的系统发育分布或单个 SMPs 在贝壳构造中的功能知之甚少。要了解 SMPs 如何促进贝壳的多样化,就需要对 SMPs 进行彻底的特征描述。在这里,我们在海洋腹足类物种 Crepidula fornicata 和 Crepidula atrasolea 中建立了 SMPs 的工具和基础认识,因为它们是具有遗传能力的软体动物模式生物。首先,我们首次建立了 C. atrasolea 贝壳发育的分期系统。接下来,我们利用之前在C. fornicata中的发现,结合对95个元虫物种的系统发生组分析,确定了其成体SMP复合物的进化脉络。我们发现,C. fornicata 的 SMPs 有 55% 属于软体动物直系群,27% 限于腹足纲,只有 5% 受物种水平的限制。受物种限制的 SMPs 百分比很低,这凸显了在确定 SMPs 的同源性时,广类群取样和选系推断方法的重要性。通过转录组分析,我们发现在 C. atrasolea 中保留的大多数 C. fornicata SMPs 在幼虫和成虫阶段都有表达。然后,我们选取了不同进化年龄的 SMPs 子集,利用原位杂交连锁反应(HCR)技术,在 C. atrasolea 幼虫外壳发育过程中进行时空分析。在分析的 18 个 SMPs 中,有 12 个在幼虫外壳区域被检测到。这些结果表明幼虫与成虫的 SMP 重奏重叠。利用多重 HCR 技术,我们在壳场内观察到了五种 SMP 表达模式和三种不同的细胞群。这些模式支持了 SMPs 模块化表达可促进贝壳形态特征分化的观点。总之,这些数据建立了栉水母的进化和发育框架,有助于今后对软体动物的生物矿化进行比较,从而揭示贝壳多样化的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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