Structure-Activity Relationship Study of an Alkynylphosphonate and Vynilphosphonate Analogues of Calcitriol

Author:

Grioli Silvina M.1,Alonso Eliana N.2,Mascaró Evangelina1,Stabile Santiago A.1,Ferronato María J.2,Quevedo Mario A.3,Radivoy Gabriel1,Facchinetti María M.2,Vitale Cristian A.1,Curino Alejandro C.2

Affiliation:

1. Laboratorio de Quimica Organica, Instituto de Quimica del Sur (INQUISUR), Universidad Nacional del Sur (UNS), CONICET, Departamento de Quimica (UNS), Bahia Blanca, 8000,Argentina

2. Laboratorio de Biología del Cancer, Instituto de Investigaciones Bioquimicas de Bahia Blanca (INIBIBB), Universidad Nacional del Sur (UNS)–CONICET, Departamento de Biologia, Bioquimica y Farmacia (UNS), Bahia Blanca, 8000,Argentina

3. Unidad de Investigacion y Desarrollo en Tecnologia Farmaceutica (UNITEFA-CONICET), Facultad de Ciencias Quimicas, Ciudad Universitaria, Universidad Nacional de Cordoba, Cordoba, 5000,Argentina

Abstract

Background: 1α,25-dihydroxy vitamin D3 (calcitriol) shows potent growth-inhibitory properties on different cancer cell lines, but its hypercalcemic effects have severely hampered its therapeutic application. Therefore, it is important to develop synthetic calcitriol analogues that retain or even increase its antitumoral effects and lack hypercalcemic activity. Based on previous evidence of the potent antitumor effects of the synthetic alkynylphosphonate EM1 analogue, we have now synthesized a derivative called SG. Objective: The aim of the present work is to evaluate the calcemic activity and the antitumor effect of SG, comparing these effects with those exerted by calcitriol and with those previously published for EM1. In addition, we propose to analyze by in silico studies, the chemical structure-biological function relationship of these molecules. Methods: We performed the synthesis of vinylphosphonate SG analogue; in vitro assays on different cancer cell lines; in vivo assays on mice; and in silico assays applying computational molecular modeling. Results: The SG compound lacks hypercalcemic activity, similar to the parent compound EM1. However, the antitumor activity was blunted, as no antiproliferative or anti-migratory effects were observed. By in silico assays, we demonstrated that SG analogue has a lower affinity for the VDRligand- binding domain than the EM1 compound due to lack of interaction with the important residues His305 and His397. Conclusion: These results demonstrate that the chemical modification in the lateral side chain of the SG analogue affects the antitumoral activity observed previously for EM1 but does not affect the calcemic activity. These results contribute to the rational design and synthesis of novel calcitriol analogues.

Funder

Consejo Nacional de Investigaciones Científicas y Técnicas

Secretaria General de Ciencia y Técnica de la Universidad Nacional del Sur

Agencia Nacional de Promoción Científica y Tecnológica

Publisher

Bentham Science Publishers Ltd.

Subject

Drug Discovery

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