A Functionally Conserved yet Dynamically Evolving Toolkit Underpinning Molluscan Biomineralization: Insights From Shell and Radula.

IF 3.5 1区 生物学 Q1 ZOOLOGY
Zhuoqing Li, Meijie Yang, Xinghao Ma, Cong Zhou, Fanyu Meng, Pu Shi, Pengpeng Hu, Bin Liang, Qingtian Jiang, Lili Zhang, Xiaoyan Liu, Tingyu Shi, Changping Lai, Tao Zhang, Hao Song
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引用次数: 0

Abstract

The molluscan shell and radula constitute pivotal molluscan innovations, each characterized by distinct functions and diverse forms, regulated by the highly specific biomineralization regulatory networks. Despite their paramount importance, the conserved components and adaptive evolutionary processes governing these regulatory networks remain unresolved. To address this knowledge gap, we advocate for the integration of data from less-explored lineages, such as Scaphopoda, as an essential step. This study presents the inaugural comprehensive transcriptome analysis of Pictodentalium vernedei, a representative species of Scaphopoda distinguished by a unique and evolutionarily conserved shell morphology and radula structure. Furthermore, comparative transcriptome/genome analyses are employed to unravel the conservatism and evolutionary innovation of the involved biomineralization regulatory elements. Our findings underscore the central role of secretomes in governing biomineralization processes, and we identified a fundamental set of 26 domains within molluscan secretomes, forming an essential functional protein domain repertoire necessary for the transformation of inorganic ions into biomineralized structures. This core biomineralization toolkit has undergone independent expansion and lineage-specific recruitment, giving rise to novel, modular domain architectures. This may be essential for the functional specialization and morphological diversification of shell and radula structures. These evolutionary processes are driven by the independent co-option of ancient genes and the emergence of novel de novo genes. This comprehensive investigation not only contributes insights into the evolution of molluscan biomineralization structures but also establishes avenues for further scholarly exploration.

一个功能保守但动态发展的工具包支持软体动物生物矿化:从壳和拉杜拉的见解。
软体动物的壳和牙髓构成了软体动物的关键创新,它们各自具有不同的功能和多样的形式,并受到高度特异性的生物矿化调节网络的调节。尽管它们至关重要,但控制这些调节网络的保守成分和适应性进化过程仍未得到解决。为了解决这一知识差距,我们主张整合来自较少探索的谱系的数据,如Scaphopoda,作为一个必要的步骤。摘要本研究首次对尖齿齿齿猴(Pictodentalium vernedei)进行了全面的转录组分析,尖齿齿猴是一种具有独特且进化保守的壳形态和齿壳结构的代表物种。此外,采用比较转录组/基因组分析来揭示所涉及的生物矿化调控元件的保守性和进化创新性。我们的研究结果强调了分泌组在控制生物矿化过程中的核心作用,我们确定了软体动物分泌组中26个基本结构域,形成了将无机离子转化为生物矿化结构所必需的基本功能蛋白结构域库。这个核心生物矿化工具箱经历了独立的扩展和特定谱系的招募,产生了新颖的模块化结构域。这可能对壳和髓结构的功能特化和形态多样化至关重要。这些进化过程是由古老基因的独立选择和新基因的出现驱动的。这项全面的研究不仅有助于了解软体动物生物矿化结构的演变,而且为进一步的学术探索建立了途径。
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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来源期刊
CiteScore
6.40
自引率
12.10%
发文量
81
审稿时长
>12 weeks
期刊介绍: The official journal of the International Society of Zoological Sciences focuses on zoology as an integrative discipline encompassing all aspects of animal life. It presents a broader perspective of many levels of zoological inquiry, both spatial and temporal, and encourages cooperation between zoology and other disciplines including, but not limited to, physics, computer science, social science, ethics, teaching, paleontology, molecular biology, physiology, behavior, ecology and the built environment. It also looks at the animal-human interaction through exploring animal-plant interactions, microbe/pathogen effects and global changes on the environment and human society. Integrative topics of greatest interest to INZ include: (1) Animals & climate change (2) Animals & pollution (3) Animals & infectious diseases (4) Animals & biological invasions (5) Animal-plant interactions (6) Zoogeography & paleontology (7) Neurons, genes & behavior (8) Molecular ecology & evolution (9) Physiological adaptations
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