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Notch and Wnt Signaling Modulation to Enhance DPSC Stemness and Therapeutic Potential

Authors :
Biología celular e histología
Fisiología
Zelulen biologia eta histologia
Fisiologia
Uribe-Echevarria Zubizarreta, Verónica
Pineda Martí, José Ramón
García Gallastegui, Patricia
Agliano, Alice
Unda Rodríguez, Fernando José
Ibarretxe Bilbao, Gaskon
Biología celular e histología
Fisiología
Zelulen biologia eta histologia
Fisiologia
Uribe-Echevarria Zubizarreta, Verónica
Pineda Martí, José Ramón
García Gallastegui, Patricia
Agliano, Alice
Unda Rodríguez, Fernando José
Ibarretxe Bilbao, Gaskon
Publication Year :
2023

Abstract

The Dental Pulp of permanent human teeth is home to stem cells with remarkable multilineage differentiation ability: human Dental Pulp Stem Cells (DPSCs). These cells display a very notorious expression of pluripotency core factors, and the ability to give rise to mature cell lineages belonging to the three embryonic layers. For these reasons, several researchers in the field have long considered human DPSCs as pluripotent-like cells. Notably, some signaling pathways such as Notch and Wnt contribute to maintaining the stemness of these cells through a complex network involving metabolic and epigenetic regulatory mechanisms. The use of recombinant proteins and selective pharmacological modulators of Notch and Wnt pathways, together with serum-free media and appropriate scaffolds that allow the maintenance of the non-differentiated state of hDPSC cultures could be an interesting approach to optimize the potency of these stem cells, without a need for genetic modification. In this review, we describe and integrate findings that shed light on the mechanisms responsible for stemness maintenance of hDPSCs, and how these are regulated by Notch/Wnt activation, drawing some interesting parallelisms with pluripotent stem cells. We summarize previous work on the stem cell field that includes interactions between epigenetics, metabolic regulations, and pluripotency core factor expression in hDPSCs and other stem cell types.

Details

Database :
OAIster
Notes :
This work was funded by the UPV/EHU (GIU16/66, UFI 11/44), the Basque Government (GV/EJ; IT1751-22), ISCIII (DTS18/00142) and MCIN/AEI/10.13039/501100011033 by European Union (NextGenerationEU) “Plan de Recuperación Transformación y Resiliencia” (PID2019-104766RB-C21)., English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1390907155
Document Type :
Electronic Resource