Publication:
Monitoring oocyte-based human pluripotency acquisition using synchrotron-based FTIR microspectroscopy reveals specific biomolecular trajectories

Consultable a partir de

Date

2023

Authors

Dučić, Tanja
Sánchez-Mata, Alicia
Castillo-Sánchez, Jesús
Algarra González, Manuel
González-Muñoz, Elena

Director

Publisher

Elsevier
Acceso abierto / Sarbide irekia
Artículo / Artikulua
Versión publicada / Argitaratu den bertsioa

Project identifier

AEI//PID2021-124033OB-I00

Abstract

The reprogramming of human somatic cells to induced pluripotent cells (iPSCs) has become a milestone and a paradigm shift in the field of regenerative medicine and human disease modeling including drug testing and genome editing. However, the molecular processes occurring during reprogramming and affecting the pluripotent state acquired remain largely unknown. Of interest, different pluripotent states have been described depending on the reprogramming factors used and the oocyte has emerged as a valuable source of information for candidate factors. The present study investigates the molecular changes occurring in somatic cells during reprogramming with either canonical (OSK) or oocyte-based (AOX15) combinations using synchrotron-radiation Fourier transform infrared (SR FTIR) spectroscopy. The data acquired by SR FTIR indicates different representation and conformation of biological relevant macromolecules (lipids, nucleic acids, carbohydrates and proteins) depending on the reprogramming combination used and at different stages during the reprogramming process. Association analysis based on cells spectra suggest that pluripotency acquisition trajectories converge at late intermediate stages while they diverge at early stages. Our results suggest that OSK and AOX15 reprogramming operates through differential mechanisms affecting nucleic acids reorganization and day 10 comes out as a candidate hinge point to further study the molecular pathways involved in the reprogramming process. This study indicates that SR FTIR approach contribute unpaired information to distinguish pluripotent states and to decipher pluripotency acquisition roadmaps and landmarks that will enable advanced biomedical applications of iPSCs.

Keywords

Induced pluripotent stem cells (iPSCs), Oocyte, Reprogramming, FTIR, Synchrotron spectroscopy

Department

Institute for Advanced Materials and Mathematics - INAMAT2

Faculty/School

Degree

Doctorate program

Editor version

Funding entities

The authors thank ALBA Synchrotron facility for beamtime allocation and financial support from the Proposal No. 2021085254 and excellent working conditions. E.G-M acknowledge financial support from Ministerio de Ciencia e Innovación del Gobierno de Espana ˜ (grant number PID2021-124033OB-I00) and from Consejería Economía y Conocimiento Junta de Andalucía-FEDER (grant number UMA18-FEDERJA-107). Funding for open access charge was provided by Universidad de Málaga / CBUA.

© 2023 The Author(s). This is an open access article under the CC BY-NC-ND license.

Los documentos de Academica-e están protegidos por derechos de autor con todos los derechos reservados, a no ser que se indique lo contrario.