pH-Selective Reactions to Selectively Reduce Cancer Cell Proliferation: Effect of CaS Nanostructures in Human Skin Melanoma and Benign Fibroblasts

Author:

Rodríguez Martínez Olga M.1,Narváez Ramos Michelle A.1ORCID,Soto Acevedo Angeliz A.2,Colón Colón Carolina C.2,Malavé Ramos Darlene1,Castro Rivera Coral1ORCID,Castro Rosario Miguel E.2ORCID

Affiliation:

1. Department of Biology, School of Arts and Sciences, University of Puerto Rico at Mayaguez, Mayaguez, PR 00682, USA

2. Department of Chemistry, School of Arts and Sciences, University of Puerto Rico at Mayaguez, Mayaguez, PR 00682, USA

Abstract

An acidic extracellular pH value (pHe) is characteristic of many cancers, in contrast to the physiologic pHe found in most benign cells. This difference in pH offers a unique opportunity to design and engineer chemicals that can be employed for pH-selective reactions in the extracellular fluid of cancer cells. The viability of human skin melanoma and corresponding fibroblasts exposed to CaS dispersions is reported. The viability of melanoma cells decreases with CaS dispersion concentration and reaches 57% at 3%, a value easily distinguishable from melanoma control experiments. In contrast, the viability of benign fibroblasts remains nearly constant within experimental error over the range of dispersion concentrations studied. The CaS dispersions facilitate vinculin delocalization in the cytoplasmic fluid, a result consistent with improved focal adhesion kinase (FAK) regulation in melanoma cells. Thermodynamic considerations are consistent with the formation of H2S from CaS in the presence of protons. The thermodynamic prediction is verified in independent experiments with solid CaS and acidic aqueous solutions. The amount of H2S formed decreases with pH. An activation energy for the process of (30 ± 10) kJ/mol in the temperature range of 280 to 330 K is estimated from initial rate measurements as a function of temperature. The total Gibbs energy minimization approach was employed to establish the distribution of sulfides—including H2S in the gas and aqueous phases—from the dissociation of CaS as a function of pH to mimic physiologically relevant pH values. Theoretical calculations suggest that partially protonated CaS in solution can be stable until the sulfur atom bonds to two hydrogen atoms, resulting in the formation of Ca2+ and H2S, which can be solvated and/or released to the gas phase. Our results are consistent with a model in which CaS is dissociated in the extracellular fluid of melanoma cells selectively. The results are discussed in the context of the potential biomedical applications of CaS dispersions in cancer therapies.

Funder

National Institute of General Medical Sciences

NIH National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK) HS STEP UP program

PR Science and Technology Trust Fund

Publisher

MDPI AG

Subject

Materials Science (miscellaneous)

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