A chitin-binding domain-containing gene is essential for shell development in the mollusc Tritia

IF 2.5 3区 生物学 Q2 DEVELOPMENTAL BIOLOGY Developmental biology Pub Date : 2024-12-24 DOI:10.1016/j.ydbio.2024.12.016
T. Kim Dao, Kailey Ferger , J. David Lambert
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Abstract

Mollusc shells are diverse in shape and size. They are created by a shell epithelium which secretes a chitinous periostracum membrane at the growing edge of the shell, and then coordinates biomineral deposition on the underside of this membrane. Although mollusc shells are important for studying the evolution of morphology, the molecular basis of the shell development is poorly understood. In this paper, we investigate genes involved in the shell development of the gastropod mollusc Tritia (previously known as Ilyanassa). We characterize the contributions of the 2d micromere to the shell and other non-shell structures. We identify eight shell-specific genes and five non-shell specific genes by comparing the transcriptomes of wild-type and 2d ablated embryos. Morpholino knockdown of one of the shell-specific genes, ToChitin-binding domain-containing (ToChitin BD), results in shell defects. The chitinous periostracal membranes in ToChitin BD morpholino knockdown embryos lose their well-defined edge and peroxidase gradient.

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一种含有几丁质结合结构域的基因对软体动物的壳发育至关重要。
软体动物的壳在形状和大小上各不相同。它们是由壳上皮细胞产生的,壳上皮细胞在壳生长的边缘分泌一层几丁质膜,然后在膜的下面协调生物矿物沉积。尽管软体动物的壳对研究其形态进化具有重要意义,但对其发育的分子基础了解甚少。在本文中,我们研究了腹足类软体动物Tritia(以前称为Ilyanassa)外壳发育的基因。我们描述了二维微粒子对壳层和其他非壳层结构的贡献。通过比较野生型和2d胚胎的mRNA转录本,我们鉴定出8个壳特异性基因和5个非壳特异性基因。壳特异性基因之一tochittin binding domain-containing (tochittin BD)的Morpholino敲低会导致壳缺陷。在tochittin BD morpholino敲除的胚胎中,几丁质周膜失去了其明确的边缘和过氧化物酶梯度。
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来源期刊
Developmental biology
Developmental biology 生物-发育生物学
CiteScore
5.30
自引率
3.70%
发文量
182
审稿时长
1.5 months
期刊介绍: Developmental Biology (DB) publishes original research on mechanisms of development, differentiation, and growth in animals and plants at the molecular, cellular, genetic and evolutionary levels. Areas of particular emphasis include transcriptional control mechanisms, embryonic patterning, cell-cell interactions, growth factors and signal transduction, and regulatory hierarchies in developing plants and animals.
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