Developing Iron Nanochelating Agents: Preliminary Investigation of Effectiveness and Safety for Central Nervous System Applications

Author:

Ficiarà Eleonora1,Molinar Chiara2,Gazzin Silvia3ORCID,Jayanti Sri3ORCID,Argenziano Monica2ORCID,Nasi Lucia4ORCID,Casoli Francesca4ORCID,Albertini Franca4ORCID,Ansari Shoeb Anwar5,Marcantoni Andrea2ORCID,Tomagra Giulia2ORCID,Carabelli Valentina2,Guiot Caterina5ORCID,D’Agata Federico5ORCID,Cavalli Roberta2

Affiliation:

1. School of Pharmacy, Center for Neuroscience, University of Camerino, 62032 Camerino, Italy

2. Department of Drug Science and Technology, University of Turin, 10125 Turin, Italy

3. Fondazione Italiana Fegato-Onlus, Bldg. Q, AREA Science Park, ss14, Km 163.5, Basovizza, 34149 Trieste, Italy

4. Institute of Materials for Electronics and Magnetism (IMEM) CNR, Parco Area delle Scienze 37/A, 43124 Parma, Italy

5. Department of Neurosciences, University of Turin, 10124 Turin, Italy

Abstract

Excessive iron levels are believed to contribute to the development of neurodegenerative disorders by promoting oxidative stress and harmful protein clustering. Novel chelation treatments that can effectively remove excess iron while minimizing negative effects on the nervous system are being explored. This study focuses on the creation and evaluation of innovative nanobubble (NB) formulations, shelled with various polymers such as glycol-chitosan (GC) and glycol-chitosan conjugated with deferoxamine (DFO), to enhance their ability to bind iron. Various methods were used to evaluate their physical and chemical properties, chelation capacity in diverse iron solutions and impact on reactive oxygen species (ROS). Notably, the GC-DFO NBs demonstrated the ability to decrease amyloid-β protein misfolding caused by iron. To assess potential toxicity, in vitro cytotoxicity testing was conducted using organotypic brain cultures from the substantia nigra, revealing no adverse effects at appropriate concentrations. Additionally, the impact of NBs on spontaneous electrical signaling in hippocampal neurons was examined. Our findings suggest a novel nanochelation approach utilizing DFO-conjugated NBs for the removal of excess iron in cerebral regions, potentially preventing neurotoxic effects.

Funder

University of Turin

Publisher

MDPI AG

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