Cargando…

70759 Jaw-specific control of Msx1-dependent odontogenesis by Dkk2 and Sostdc1

ABSTRACT IMPACT: Our proposed jaw-specific control mechanism of tooth development is expected to address the site-specific prevalence of tooth agenesis in humans. OBJECTIVES/GOALS: To determine the molecular mechanisms that control jaw-specific tooth development. To identify the molecular basis of t...

Descripción completa

Detalles Bibliográficos
Autor principal: Kwon, Hyuk-Jae Edward
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cambridge University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8827667/
http://dx.doi.org/10.1017/cts.2021.447
_version_ 1784647681671430144
author Kwon, Hyuk-Jae Edward
author_facet Kwon, Hyuk-Jae Edward
author_sort Kwon, Hyuk-Jae Edward
collection PubMed
description ABSTRACT IMPACT: Our proposed jaw-specific control mechanism of tooth development is expected to address the site-specific prevalence of tooth agenesis in humans. OBJECTIVES/GOALS: To determine the molecular mechanisms that control jaw-specific tooth development. To identify the molecular basis of the site-specific prevalence of humans tooth agenesis cases. METHODS/STUDY POPULATION: We used three different genetically engineered mouse lines: Msx1 ^’/ ^’, Dkk2 ^’/ ^’, and Sostdc1 ^’/ ^’ mice. We used developmental mouse genetics approaches, basically generating different combinations of compound mutant mice. We examined their tooth development by using gross, histology, and mRNA expression analyses. RESULTS/ANTICIPATED RESULTS: We identified that Sostdc1, a secreted Wnt inhibitor, also plays an important role in regulating the Msx1-dependent odontogenic pathway. Sostdc1 mRNA showed similar expression patterns in the developing tooth germs between control and Msx1-null molar buds. Remarkably, by deleting the Sostdc1 gene, as well as the Dkk2 gene, in the Msx1-null background mouse, molar tooth development was rescued in the maxillary jaw, but not in the mandibular jaw. Furthermore, tooth developmental rescue could be achieved in both the maxillary and mandibular molars by combinedly deleting Dkk2 and Sostdc1 in Msx1-null mice. DISCUSSION/SIGNIFICANCE OF FINDINGS: Our study demonstrates that secreted Wnt inhibitors Dkk2 and Sostdc1 synergistically regulate the Msx1-dependent odontogenic pathway and further control early tooth morphogenesis. These mouse model will be used to further address the site-specific prevalence of tooth agenesis in humans.
format Online
Article
Text
id pubmed-8827667
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Cambridge University Press
record_format MEDLINE/PubMed
spelling pubmed-88276672022-02-28 70759 Jaw-specific control of Msx1-dependent odontogenesis by Dkk2 and Sostdc1 Kwon, Hyuk-Jae Edward J Clin Transl Sci Basic Science ABSTRACT IMPACT: Our proposed jaw-specific control mechanism of tooth development is expected to address the site-specific prevalence of tooth agenesis in humans. OBJECTIVES/GOALS: To determine the molecular mechanisms that control jaw-specific tooth development. To identify the molecular basis of the site-specific prevalence of humans tooth agenesis cases. METHODS/STUDY POPULATION: We used three different genetically engineered mouse lines: Msx1 ^’/ ^’, Dkk2 ^’/ ^’, and Sostdc1 ^’/ ^’ mice. We used developmental mouse genetics approaches, basically generating different combinations of compound mutant mice. We examined their tooth development by using gross, histology, and mRNA expression analyses. RESULTS/ANTICIPATED RESULTS: We identified that Sostdc1, a secreted Wnt inhibitor, also plays an important role in regulating the Msx1-dependent odontogenic pathway. Sostdc1 mRNA showed similar expression patterns in the developing tooth germs between control and Msx1-null molar buds. Remarkably, by deleting the Sostdc1 gene, as well as the Dkk2 gene, in the Msx1-null background mouse, molar tooth development was rescued in the maxillary jaw, but not in the mandibular jaw. Furthermore, tooth developmental rescue could be achieved in both the maxillary and mandibular molars by combinedly deleting Dkk2 and Sostdc1 in Msx1-null mice. DISCUSSION/SIGNIFICANCE OF FINDINGS: Our study demonstrates that secreted Wnt inhibitors Dkk2 and Sostdc1 synergistically regulate the Msx1-dependent odontogenic pathway and further control early tooth morphogenesis. These mouse model will be used to further address the site-specific prevalence of tooth agenesis in humans. Cambridge University Press 2021-03-30 /pmc/articles/PMC8827667/ http://dx.doi.org/10.1017/cts.2021.447 Text en © The Association for Clinical and Translational Science 2021 https://creativecommons.org/licenses/by/4.0/This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Basic Science
Kwon, Hyuk-Jae Edward
70759 Jaw-specific control of Msx1-dependent odontogenesis by Dkk2 and Sostdc1
title 70759 Jaw-specific control of Msx1-dependent odontogenesis by Dkk2 and Sostdc1
title_full 70759 Jaw-specific control of Msx1-dependent odontogenesis by Dkk2 and Sostdc1
title_fullStr 70759 Jaw-specific control of Msx1-dependent odontogenesis by Dkk2 and Sostdc1
title_full_unstemmed 70759 Jaw-specific control of Msx1-dependent odontogenesis by Dkk2 and Sostdc1
title_short 70759 Jaw-specific control of Msx1-dependent odontogenesis by Dkk2 and Sostdc1
title_sort 70759 jaw-specific control of msx1-dependent odontogenesis by dkk2 and sostdc1
topic Basic Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8827667/
http://dx.doi.org/10.1017/cts.2021.447
work_keys_str_mv AT kwonhyukjaeedward 70759jawspecificcontrolofmsx1dependentodontogenesisbydkk2andsostdc1