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Exploring Potential Impact of Graphene Oxide and Graphene Oxide-Polyethylenimine on Biological Behavior of Human Amniotic Fluid-Derived Stem Cells

Academic Article
Publication Date:
2024
abstract:
Regenerative medicine and tissue engineering aim to restore or replace impaired organs and tissues using cell transplantation supported by scaffolds. Recently scientists are focusing on developing new biomaterials that optimize cellular attachment, migration, proliferation, and differentiation. Nanoparticles, such as graphene oxide (GO), have emerged as versatile materials due to their high surface-to-volume ratio and unique chemical properties, such as electrical conductivity and flexibility. However, GO faces challenges such as cytotoxicity at high concentrations, a negative surface charge, and potential inflammatory responses; for these reasons, variations in synthesis have been studied. A GO derivative, Graphene Oxide-Polyethylenimine (GO-PEI), shows controlled porosity and structural definition, potentially offering better support for cell growth. Human amniotic fluid stem cells (hAFSCs) are a promising candidate for regenerative medicine due to their ability to differentiate into mesodermic and ectodermic lineages, their non-immunogenic nature, and ease of isolation. This study investigates the effects of GO and GO-PEI on hAFSCs, focusing on the effects on adhesion, proliferation, and metabolic features. Results indicate that GO-PEI restores cell proliferation and mitochondrial activity to control levels, with respect to GO that appeared less biocompatible. Both materials also influence the miRNA cargo of hAFSC-derived microvesicles, potentially influencing also cell-to-cell communication.
Iris type:
1.1 Articolo in rivista
Keywords:
GO; GO-PEI; hAFSCs; cell proliferation; mitochondrial activity; miRNAs; scaffold; regenerative medicine; tissue engineering
List of contributors:
Di Credico, Andrea; Gaggi, Giulia; Bibbò, Sandra; Pilato, Serena; Moffa, Samanta; Di Giacomo, Stefano; Siani, Gabriella; Fontana, Antonella; Konstantinidou, Fani; Donato, Marisa; Stuppia, Liborio; Gatta, Valentina; Di Baldassarre, Angela; Ghinassi, Barbara
Authors of the University:
DI BALDASSARRE Angela
DI CREDICO ANDREA
DI GIACOMO STEFANO
FONTANA Antonella
GAGGI GIULIA
GATTA Valentina
GHINASSI BARBARA
KONSTANTINIDOU FANI
MOFFA SAMANTA
PILATO SERENA
SIANI Gabriella
STUPPIA Liborio
Handle:
https://ricerca.unich.it/handle/11564/846313
Full Text:
https://ricerca.unich.it//retrieve/handle/11564/846313/468850/ijms-25-13598.pdf
Published in:
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES
Journal
Project:
Innovation, digitalisation and sustainability for the diffused economy in Central Italy - VITALITY
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