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Published on: February 9, 2017
Comparative Embryonic Spatio-Temporal Expression Profile Map of the Xenopus P2X Receptor Family
Camille Blanchard1,2, Eric Boué-Grabot1,2, Karine Massé1,2
1Université de Bordeaux, Institut des Maladies Neurodégénératives, UMR 5293, Bordeaux, France.
Abstract:
P2X receptors are ATP-gated cations channels formed by the homo or hetero-trimeric association from the seven cloned subunits (P2X1-7). P2X receptors are widely distributed in different organs and cell types throughout the body including the nervous system and are involved in a large variety of physiological but also pathological processes in adult mammals. However, their expression and function during embryogenesis remain poorly understood. Here, we report the cloning and the comparative expression map establishment of the entire P2X subunit family in the clawed frog Xenopus. Orthologous sequences for 6 mammalian P2X subunits were identified in both X. laevis and X. tropicalis, but not for P2X3 subunit, suggesting a potential loss of this subunit in the Pipidae family. Three of these genes (p2rx1, p2rx2, and p2rx5) exist as homeologs in the pseudoallotetraploid X. laevis, making a total of 9 subunits in this species. Phylogenetic analyses demonstrate the high level of conservation of these receptors between amphibian and other vertebrate species. RT-PCR revealed that all subunits are expressed during the development although zygotic p2rx6 and p2rx7 transcripts are mainly detected at late organogenesis stages. Whole mount in situ hybridization shows that each subunit displays a specific spatio-temporal expression profile and that these subunits can therefore be grouped into two groups, based on their expression or not in the developing nervous system. Overlapping expression in the central and peripheral nervous system and in the sensory organs suggests potential heteromerization and/or redundant functions of P2X subunits in Xenopus embryos. The developmental expression of the p2rx subunit family during early phases of embryogenesis indicates that these subunits may have distinct roles during vertebrate development, especially embryonic neurogenesis.
Insights
This study maps P2X receptor subunits in Xenopus embryos, revealing diverse expression patterns crucial for development, particularly in the nervous system. These findings suggest varied roles for P2X subunits in embryonic neurogenesis.
Area of Science:
- Developmental Biology
- Neuroscience
- Molecular Biology
Background:
- P2X receptors (ATP-gated cation channels) are vital in adult mammals but their embryonic roles are unclear.
- Understanding P2X receptor expression during development is key to deciphering their functions.
Purpose of the Study:
- To clone and establish a comparative expression map of the P2X subunit family in Xenopus embryos.
- To investigate the spatio-temporal expression profiles of P2X subunits during development.
- To explore potential roles of P2X subunits in embryonic neurogenesis.
Main Methods:
- Sequence identification and phylogenetic analysis of P2X subunits in Xenopus.
- RT-PCR to detect P2X subunit expression during development.
- Whole mount in situ hybridization to visualize spatio-temporal expression patterns.
Main Results:
- Identified orthologs for 6 mammalian P2X subunits in Xenopus; P2X3 appears lost in Pipidae.
- Xenopus laevis possesses 9 P2X subunits due to homeologs of p2rx1, p2rx2, and p2rx5.
- All identified P2X subunits are expressed during development, with specific spatio-temporal profiles, including in the developing nervous system.
Conclusions:
- P2X subunits exhibit distinct developmental expression patterns in Xenopus, suggesting specialized roles.
- Overlapping expression in neural tissues implies potential heteromerization or redundant functions.
- These findings highlight the importance of P2X subunits in vertebrate embryonic development, especially neurogenesis.
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