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棘鱼纲鱼类齿列的早期发育与替换

Early development and replacement of the stickleback dentition.

作者信息

Ellis Nicholas A, Donde Nikunj N, Miller Craig T

机构信息

Department of Molecular and Cell Biology, University of California-Berkeley, Berkeley, California.

出版信息

J Morphol. 2016 Aug;277(8):1072-83. doi: 10.1002/jmor.20557. Epub 2016 May 3.


DOI:10.1002/jmor.20557
PMID:27145214
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5298556/
Abstract

Teeth have long served as a model system to study basic questions about vertebrate organogenesis, morphogenesis, and evolution. In nonmammalian vertebrates, teeth typically regenerate throughout adult life. Fish have evolved a tremendous diversity in dental patterning in both their oral and pharyngeal dentitions, offering numerous opportunities to study how morphology develops, regenerates, and evolves in different lineages. Threespine stickleback fish (Gasterosteus aculeatus) have emerged as a new system to study how morphology evolves, and provide a particularly powerful system to study the development and evolution of dental morphology. Here, we describe the oral and pharyngeal dentitions of stickleback fish, providing additional morphological, histological, and molecular evidence for homology of oral and pharyngeal teeth. Focusing on the ventral pharyngeal dentition in a dense developmental time course of lab-reared fish, we describe the temporal and spatial consensus sequence of early tooth formation. Early in development, this sequence is highly stereotypical and consists of seventeen primary teeth forming the early tooth field, followed by the first tooth replacement event. Comparing this detailed morphological and ontogenetic sequence to that described in other fish reveals that major changes to how dental morphology arises and regenerates have evolved across different fish lineages. J. Morphol. 277:1072-1083, 2016. © 2016 Wiley Periodicals, Inc.

摘要

长期以来,牙齿一直是研究脊椎动物器官发生、形态发生和进化等基本问题的模型系统。在非哺乳动物脊椎动物中,牙齿通常在成年期会持续再生。鱼类在其口腔和咽齿列的牙齿模式上进化出了极大的多样性,为研究形态在不同谱系中如何发育、再生和进化提供了众多机会。三刺鱼(Gasterosteus aculeatus)已成为研究形态如何进化的新系统,并为研究牙齿形态的发育和进化提供了一个特别强大的系统。在这里,我们描述了三刺鱼的口腔和咽齿列,为口腔和咽齿的同源性提供了额外的形态学、组织学和分子证据。在实验室饲养的鱼的密集发育时间进程中,我们重点关注腹侧咽齿列,描述了早期牙齿形成的时间和空间一致序列。在发育早期,这个序列高度定型,由形成早期牙胚的17颗乳牙组成,随后是第一次换牙事件。将这个详细的形态学和个体发育序列与其他鱼类中描述的序列进行比较,发现牙齿形态产生和再生方式的主要变化在不同的鱼类谱系中已经进化。《形态学杂志》277:1072 - 1083,2016年。© 2016威利期刊公司。

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Early development and replacement of the stickleback dentition.

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引用本文的文献

[1]
Ectodysplasin overexpression reveals spatiotemporally dynamic tooth formation competency in stickleback and zebrafish.

bioRxiv. 2025-5-7

[2]
Site pleiotropy of a stickleback Bmp6 enhancer.

Dev Biol. 2022-12

[3]
Evolved Bmp6 enhancer alleles drive spatial shifts in gene expression during tooth development in sticklebacks.

Genetics. 2021-12-10

[4]
Distinct tooth regeneration systems deploy a conserved battery of genes.

Evodevo. 2021-3-25

[5]
Oral and Palatal Dentition of Axolotl Arises From a Common Tooth-Competent Zone Along the Ecto-Endodermal Boundary.

Front Cell Dev Biol. 2021-1-11

本文引用的文献

[1]
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J Morphol. 1983-3

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J Vis Exp. 2016-5-7

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Osteoblast and osteoclast behaviors in the turnover of attachment bones during medaka tooth replacement.

Dev Biol. 2016-1-15

[5]
Distinct developmental genetic mechanisms underlie convergently evolved tooth gain in sticklebacks.

Development. 2015-7-15

[6]
Development and evolution of dentition pattern and tooth order in the skates and rays (batoidea; chondrichthyes).

PLoS One. 2015-4-15

[7]
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Zool J Linn Soc. 2014-4

[8]
A 190 base pair, TGF-β responsive tooth and fin enhancer is required for stickleback Bmp6 expression.

Dev Biol. 2015-5-15

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Spatial and temporal events in tooth development of Astyanax mexicanus.

Mech Dev. 2014-11

[10]
Evolved tooth gain in sticklebacks is associated with a cis-regulatory allele of Bmp6.

Proc Natl Acad Sci U S A. 2014-9-23

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