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Ultrasmall manganese ferrites for in vivo catalase mimicking activity and multimodal bioimaging

Authors :
Ministerio de Ciencia, Innovación y Universidades (España)
Agencia Estatal de Investigación (España)
European Commission
La Caixa
Fundación BBVA
Ministerio de Economía, Industria y Competitividad (España)
Région Nouvelle-Aquitaine
Ligue Nationale contre le Cancer (France)
Instituto de Salud Carlos III
Fundación Pro CNIC
Ministerio de Economía y Competitividad (España)
Carregal-Romero, Susana
Miguel-Coello, Ana Beatriz
Martínez-Parra, Lydia
Martí-Mateo, Yolanda
Hernansanz-Agustín, Pablo
Fernández-Afonso, Yilian
Plaza-García, Sandra
Gutiérrez, Lucía
Muñoz-Hernández, María del Mar
Carrillo-Romero, Juliana
Piñol-Cancer, Marina
Lecante, Pierre
Blasco-Iturri, Zuriñe
Fadón, Lucía
Almansa-García, Ana C.
Möller, Marco
Otaegui, Dorleta
Enríquez, Jose Antonio
Groult, Hugo
Ruíz-Cabello, Jesús
Ministerio de Ciencia, Innovación y Universidades (España)
Agencia Estatal de Investigación (España)
European Commission
La Caixa
Fundación BBVA
Ministerio de Economía, Industria y Competitividad (España)
Région Nouvelle-Aquitaine
Ligue Nationale contre le Cancer (France)
Instituto de Salud Carlos III
Fundación Pro CNIC
Ministerio de Economía y Competitividad (España)
Carregal-Romero, Susana
Miguel-Coello, Ana Beatriz
Martínez-Parra, Lydia
Martí-Mateo, Yolanda
Hernansanz-Agustín, Pablo
Fernández-Afonso, Yilian
Plaza-García, Sandra
Gutiérrez, Lucía
Muñoz-Hernández, María del Mar
Carrillo-Romero, Juliana
Piñol-Cancer, Marina
Lecante, Pierre
Blasco-Iturri, Zuriñe
Fadón, Lucía
Almansa-García, Ana C.
Möller, Marco
Otaegui, Dorleta
Enríquez, Jose Antonio
Groult, Hugo
Ruíz-Cabello, Jesús
Publication Year :
2022

Abstract

Manganese ferrite nanoparticles display interesting features in bioimaging and catalytic therapies. They have been recently used in theranostics as contrast agents in magnetic resonance imaging (MRI), and as catalase-mimicking nanozymes for hypoxia alleviation. These promising applications encourage the development of novel synthetic procedures to enhance the bioimaging and catalytic properties of these nanomaterials simultaneously. Herein, a cost-efficient synthetic microwave method is developed to manufacture ultrasmall manganese ferrite nanoparticles as advanced multimodal contrast agents in MRI and positron emission tomography (PET), and improved nanozymes. Such a synthetic method allows doping ferrites with Mn in a wide stoichiometric range (MnxFe3-xO4, 0.1 ≤ x ≤ 2.4), affording a library of nanoparticles with different magnetic relaxivities and catalytic properties. These tuned magnetic properties give rise to either positive or dual-mode MRI contrast agents. On the other hand, higher levels of Mn doping enhance the catalytic efficiency of the resulting nanozymes. Finally, through their intracellular catalase-mimicking activity, these ultrasmall manganese ferrite nanoparticles induce an unprecedented tumor growth inhibition in a breast cancer murine model. All of these results show the robust characteristics of these nanoparticles for nanobiotechnological applications.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1356198465
Document Type :
Electronic Resource