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

Silvina M Grioli1, Eliana N Alonso2, Evangelina Mascaró1

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

Abstract

Insights

The synthetic vitamin D analogue SG lacks hypercalcemic activity but also shows reduced antitumor effects compared to EM1. This suggests structural modifications impact efficacy, guiding future calcitriol analogue development.

Area of Science:

  • Endocrinology
  • Oncology
  • Medicinal Chemistry

Background:

  • 1α,25-dihydroxy vitamin D3 (calcitriol) exhibits potent anticancer properties but causes hypercalcemia, limiting its use.
  • Synthetic analogues are needed to enhance antitumor effects while reducing hypercalcemia.
  • The alkynylphosphonate EM1 analogue showed promise, leading to the synthesis of a derivative, SG.

Purpose of the Study:

  • Evaluate the calcemic and antitumor activities of the novel SG analogue.
  • Compare SG's effects to calcitriol and the parent EM1 compound.
  • Analyze the structure-function relationship of these molecules using in silico methods.

Main Methods:

  • Synthesized the vinylphosphonate SG analogue.
  • Conducted in vitro cancer cell line assays.
  • Performed in vivo mouse studies and in silico molecular modeling.

Main Results:

  • SG demonstrated no hypercalcemic activity, similar to EM1.
  • SG exhibited blunted antitumor activity, with no observed antiproliferative or anti-migratory effects.
  • In silico analysis revealed SG has lower VDR ligand-binding affinity than EM1 due to altered interactions with key residues.

Conclusions:

  • Chemical modification in SG's side chain diminished antitumor activity but preserved calcemic safety.
  • These findings are crucial for the rational design of new, safer calcitriol analogues.
  • Further research can optimize structures for enhanced therapeutic potential in cancer treatment.

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