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Optimization of Multimodal Nanoparticles Internalization Process in Mesenchymal Stem Cells for Cell Therapy Studies

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Autor(es):
Nucci, Mariana P. ; Mamani, Javier B. ; Oliveira, Fernando A. ; Filgueiras, Igor S. ; Alves, Arielly H. ; Theinel, Matheus H. ; Rodrigues, Luiz D. ; Marti, Luciana ; Gamarra, Lionel F.
Número total de Autores: 9
Tipo de documento: Artigo Científico
Fonte: PHARMACEUTICS; v. 14, n. 6, p. 23-pg., 2022-06-01.
Resumo

Considering there are several difficulties and limitations in labeling stem cells using multifunctional nanoparticles (MFNP), the purpose of this study was to determine the optimal conditions for labeling human bone marrow mesenchymal stem cells (hBM-MSC), aiming to monitor these cells in vivo. Thus, this study provides information on hBM-MSC direct labeling using multimodal nanoparticles in terms of concentration, magnetic field, and period of incubation while maintaining these cells' viability and the homing ability for in vivo experiments. The cell labeling process was assessed using 10, 30, and 50 mu g Fe/mL of MFNP, with periods of incubation ranging from 4 to 24 h, with or without a magnetic field, using optical microscopy, near-infrared fluorescence (NIRF), and inductively coupled plasma mass spectrometry (ICP-MS). After the determination of optimal labeling conditions, these cells were applied in vivo 24 h after stroke induction, intending to evaluate cell homing and improve NIRF signal detection. In the presence of a magnetic field and utilizing the maximal concentration of MFNP during cell labeling, the iron load assessed by NIRF and ICP-MS was four times higher than what was achieved before. In addition, considering cell viability higher than 98%, the recommended incubation time was 9 h, which corresponded to a 25.4 pg Fe/cell iron load (86% of the iron load internalized in 24 h). The optimization of cellular labeling for application in the in vivo study promoted an increase in the NIRF signal by 215% at 1 h and 201% at 7 h due to the use of a magnetized field during the cellular labeling process. In the case of BLI, the signal does not depend on cell labeling showing no significant differences between unlabeled or labeled cells (with or without a magnetic field). Therefore, the in vitro cellular optimized labeling process using magnetic fields resulted in a shorter period of incubation with efficient iron load internalization using higher MFNP concentration (50 mu gFe/mL), leading to significant improvement in cell detection by NIRF technique without compromising cellular viability in the stroke model. (AU)

Processo FAPESP: 19/21070-3 - Avaliação da eficácia terapêutica das CTM marcadas com nanopartículas associada à atividade física no modelo de isquemia focal
Beneficiário:João Victor Matias Ferreira
Modalidade de apoio: Bolsas no Brasil - Iniciação Científica
Processo FAPESP: 16/21470-3 - Ação terapêutica das células tronco mesenquimais da medula humana, marcadas com nanopartículas multimodais em ratos diabéticos submetidos a isquemia cerebral focal: estudo dos mecanismos celulares, moleculares e funcionais.
Beneficiário:Lionel Fernel Gamarra Contreras
Modalidade de apoio: Auxílio à Pesquisa - Regular
Processo FAPESP: 17/17868-4 - Estudo in vitro da detecção da marcação das células-tronco mesenquimais humanas com nanopartículas magnéticas multimodais com dupla fluorescência mediante as técnicas de ressonância magnética, fluorescência e bioluminescência
Beneficiário:Yolanda Oliveira Pinto
Modalidade de apoio: Bolsas no Brasil - Iniciação Científica