Luminescent Alendronic Acid-Conjugated Micellar Nanostructures for Potential Application in the Bone-Targeted Delivery of Cholecalciferol

Author:

Rizzi Federica12ORCID,Panniello Annamaria1ORCID,Comparelli Roberto12ORCID,Arduino Ilaria3,Fanizza Elisabetta124ORCID,Iacobazzi Rosa Maria3ORCID,Perrone Maria Grazia5ORCID,Striccoli Marinella1ORCID,Curri Maria Lucia124,Scilimati Antonio5ORCID,Denora Nunzio3ORCID,Depalo Nicoletta12ORCID

Affiliation:

1. CNR-Institute for Chemical and Physical Process, 70125 Bari, Italy

2. Consorzio Interuniversitario Nazionale per la Scienza e Tecnologia dei Materiali (INSTM), 50121 Firenze, Italy

3. Department of Pharmacy—Pharmaceutical Sciences, University of Bari, 70125 Bari, Italy

4. Department of Chemistry, University of Bari, 70125 Bari, Italy

5. Research Laboratory for Woman and Child Health, Department of Pharmacy—Pharmaceutical Sciences, University of Bari, 70125 Bari, Italy

Abstract

Vitamin D, an essential micronutrient crucial for skeletal integrity and various non-skeletal physiological functions, exhibits limited bioavailability and stability in vivo. This study is focused on the development of polyethylene glycol (PEG)-grafted phospholipid micellar nanostructures co-encapsulating vitamin D3 and conjugated with alendronic acid, aimed at active bone targeting. Furthermore, these nanostructures are rendered optically traceable in the UV–visible region of the electromagnetic spectrum via the simultaneous encapsulation of vitamin D3 with carbon dots, a newly emerging class of fluorescents, biocompatible nanoparticles characterized by their resistance to photobleaching and environmental friendliness, which hold promise for future in vitro bioimaging studies. A systematic investigation is conducted to optimize experimental parameters for the preparation of micellar nanostructures with an average hydrodynamic diameter below 200 nm, ensuring colloidal stability in physiological media while preserving the optical luminescent properties of the encapsulated carbon dots. Comprehensive chemical-physical characterization of these micellar nanostructures is performed employing optical and morphological techniques. Furthermore, their binding affinity for the principal inorganic constituent of bone tissue is assessed through a binding assay with hydroxyapatite nanoparticles, indicating significant potential for active bone-targeting. These formulated nanostructures hold promise for novel therapeutic interventions to address skeletal-related complications in cancer affected patients in the future.

Publisher

MDPI AG

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