New Carbonate-Based Materials and Study of Cytotoxic Capacity in Cancer Cells

Author:

Niza-Pérez Nayara1ORCID,Quiroz-Troncoso Josefa23ORCID,Alegría-Aravena Nicolás245ORCID,Gómez-Ruiz Santiago1ORCID,Díaz-García Diana1ORCID,Ramírez-Castillejo Carmen26

Affiliation:

1. COMET-NANO Group, Departamento de Biología y Geología, Física y Química Inorgánica, ESCET, Universidad Rey Juan Carlos, 28933 Madrid, Spain

2. Centro de Tecnología Biomédica (CTB), Departamento Biotecnología-B.V. ETSIAAB, Universidad Politécnica de Madrid, 28223 Madrid, Spain

3. Medicinal Gardens S.L. (Baïa Food), 28008 Madrid, Spain

4. Grupo de Biología y Producción de Cérvidos, Instituto de Desarrollo Regional, Universidad de Castilla-La Mancha, 02006 Albacete, Spain

5. Asociación Española Contra el Cáncer (AECC)—Fundación Científica AECC, 02001 Albacete, Spain

6. Oncology Department, Instituto de Investigación Sanitaria San Carlos (IdISSC), 28040 Madrid, Spain

Abstract

Calcium carbonate, one of the most commonly found biominerals produced by organisms, has shown great potential for the development of systems with biological applications due to its excellent biocompatibility, biodegradability, and simple chemical composition. Here, we focus on the synthesis of various carbonate-based materials with vaterite phase control and their subsequent functionalization for applications in treating glioblastoma, one of the most limiting tumors currently without effective treatments. The incorporation of l-cysteine into the systems increased cell selectivity while the incorporation of manganese supplied the materials with cytotoxic capacity. Extensive characterization of the systems by infrared spectroscopy, ultraviolet-visible spectroscopy, X-ray diffraction, X-ray fluorescence, and transmission electron microscopy confirmed the incorporation of the different fragments causing selectivity and cytotoxicity to the systems. To verify their therapeutic activity, the vaterite-based materials were tested in the CT2A cell line (murine glioma) and compared to SKBR3 (breast cancer) and HEK-293T (human kidney) cell lines. These studies on the cytotoxicity of the materials have shown promising results that can encourage future in vivo studies in glioblastoma models.

Funder

Ministerio de Ciencia Innovación y Universidades

Fundación Premio Arce

Community of Madrid

Asociación Española Contra el Cancer

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference28 articles.

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2. Glioblastoma: Overview of Disease and Treatment;Davis;Clin. J. Oncol. Nurs.,2016

3. (2023, March 10). American Brain Tumor Association. Available online: https://www.abta.org/tumor_types/glioblastoma-gbm/.

4. Wirsching, H.G., and Weller, M. (2017). Malignant Brain Tumors, Springer.

5. Vaterite submicron particles designed for photodynamic therapy in cells;Souza;Photodiagnosis Photodyn. Ther.,2020

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