» Articles » PMID: 32056203

Squamate Egg Tooth Development Revisited Using Three-dimensional Reconstructions of Brown Anole (Anolis Sagrei, Squamata, Dactyloidae) Dentition

Overview
Journal J Anat
Date 2020 Feb 15
PMID 32056203
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

The egg tooth is a hatching adaptation, characteristic of all squamates. In brown anole embryos, the first tooth that starts differentiating is the egg tooth. It develops from a single tooth germ and, similar to the regular dentition of all the other vertebrates, the differentiating egg tooth of the brown anole passes through classic morphological and developmental stages named according to the shape of the dental epithelium: epithelial thickening, dental lamina, tooth bud, cap and bell stages. The differentiating egg tooth consists of three parts: the enamel organ, hard tissues and dental pulp. Shortly before hatching, the egg tooth connects with the premaxilla. Attachment tissue of the egg tooth does not undergo mineralization, which makes it different from the other teeth of most squamates. After hatching, odontoclasts are involved in resorption of the egg tooth's remains. This study shows that the brown anole egg tooth does not completely conform to previous reports describing iguanomorph egg teeth and reveals a need to investigate its development in the context of squamate phylogeny.

Citing Articles

Sonic hedgehog and fibroblast growth factor 8 regulate the evolution of amniote facial proportions.

Marchini M, Keller G, Khan N, Shah R, Saliceti Galarza A, Starr K Commun Biol. 2025; 8(1):84.

PMID: 39827295 PMC: 11742871. DOI: 10.1038/s42003-025-07522-0.


Changes in the avascular area of the meniscus using mesenchymal stem cells and growth plate chondrocytes in a pig model.

Tomaszewski R, Rost-Roszkowska M, Wilczek G, Gap A, Wiktor L J Anat. 2021; 239(6):1409-1418.

PMID: 34254669 PMC: 8602013. DOI: 10.1111/joa.13508.


Role of Cell Death in Cellular Processes During Odontogenesis.

Abramyan J, Geetha-Loganathan P, Sulcova M, Buchtova M Front Cell Dev Biol. 2021; 9:671475.

PMID: 34222243 PMC: 8250436. DOI: 10.3389/fcell.2021.671475.


Embryology of the naso-palatal complex in Gekkota based on detailed 3D analysis in Lepidodactylus lugubris and Eublepharis macularius.

Kaczmarek P, Metscher B, Rupik W J Anat. 2020; 238(2):249-287.

PMID: 33169847 PMC: 7812140. DOI: 10.1111/joa.13312.


Embryonic skull development in the gecko, Tarentola annularis (Squamata: Gekkota: Phyllodactylidae).

Khannoon E, Evans S J Anat. 2020; 237(3):504-519.

PMID: 32485010 PMC: 7476209. DOI: 10.1111/joa.13213.


References
1.
Yasumasu S, Mao K, Sultana F, Sakaguchi H, Yoshizaki N . Cloning of a quail homologue of hatching enzyme: its conserved function and additional function in egg envelope digestion. Dev Genes Evol. 2005; 215(10):489-98. DOI: 10.1007/s00427-005-0007-x. View

2.
McCollum M, Sharpe P . Evolution and development of teeth. J Anat. 2001; 199(Pt 1-2):153-9. PMC: 1594990. DOI: 10.1046/j.1469-7580.2001.19910153.x. View

3.
Hirano S . Observations on pigment granules in the bones of silky fowls. Arch Histol Cytol. 1990; 53(1):89-93. DOI: 10.1679/aohc.53.89. View

4.
Vidal N, Hedges S . The molecular evolutionary tree of lizards, snakes, and amphisbaenians. C R Biol. 2009; 332(2-3):129-39. DOI: 10.1016/j.crvi.2008.07.010. View

5.
Degenhardt K, Wright A, Horng D, Padmanabhan A, Epstein J . Rapid 3D phenotyping of cardiovascular development in mouse embryos by micro-CT with iodine staining. Circ Cardiovasc Imaging. 2010; 3(3):314-22. PMC: 3059892. DOI: 10.1161/CIRCIMAGING.109.918482. View