Remote Magneto–Thermal Modulation of Reactive Oxygen Species Balance Enhances Tissue Regeneration In Vivo

Author:

Tommasini Giuseppina1ORCID,Sol‐Fernández Susel Del1ORCID,Flavián‐Lázaro Ana Cristina1,Lewinska Anna2,Wnuk Maciej2,Tortiglione Claudia3ORCID,Moros María14ORCID

Affiliation:

1. Instituto de Nanociencia y Materiales de Aragón INMA (CSIC‐Universidad de Zaragoza) C/ Pedro Cerbuna 12 Zaragoza 50009 Spain

2. Institute of Biotechnology College of Natural Sciences University of Rzeszow Pigonia 1 Rzeszow 35‐310 Poland

3. Istituto di Scienze Applicate e Sistemi Intelligenti “E. Caianiello” Consiglio Nazionale delle Ricerche Via Campi Flegrei 34 Pozzuoli 80078 Italy

4. Centro de Investigación Biomédica en Red de Bioingeniería Biomateriales y Nanomedicina (CIBER‐BBN) Zaragoza Spain

Abstract

AbstractOne of the hallmarks of tissue repair is the production of reactive oxygen species (ROS), which modulate processes such as cell proliferation. Although several attempts have been made to manipulate ROS levels to increase tissue repair, the lack of techniques able to remotely manipulate the redox homeostasis with spatio–temporal fashion has hindered its progress. Herein, a new approach for tuning the ROS levels using magnetic nanoparticles (MNPs) that act as nanoheaters when exposed to an alternating magnetic field is presented. Two manganese–iron oxide (MnxFe3−xO4) MNPs (with a low and a high Mn2+ content) are designed and probed for the possibility of modulating the ROS balance by magneto–thermal stimulation in the invertebrate model organism Hydra vulgaris, able to fully regenerate. By evaluating the expression of selected genes involved in the maintenance of ROS homeostasis and proliferation pathways, a biphasic modulation of the ROS levels played by the MNPs is found. While MNPs with a lower Mn2+ content are able to positively modulate the regeneration potential under magnetostimulation, MNPs with a higher Mn2+ content cause a different redox imbalance, negatively affecting the regeneration dynamic. This innovative approach reveals a novel way of manipulating redox homeostasis that can advance in the field of tissue engineering.

Funder

HORIZON EUROPE Marie Sklodowska-Curie Actions

H2020 European Research Council

Ministerio de Ciencia, Innovación y Universidades

Publisher

Wiley

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