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Novel pyrazolopyridine derivatives as potential angiogenesis inhibitors: Synthesis, biological evaluation and transcriptome-based mechanistic analysis. | LitMetric

AI Article Synopsis

  • Modified purine derivatives, specifically pyrazolopyrimidines, have been identified as selective inhibitors of angiogenic receptor tyrosine kinases, impacting endothelial cell functions crucial for blood vessel growth.
  • Four synthesized compounds showed potential in inhibiting endothelial cell proliferation, migration, and differentiation, both naturally and when stimulated by Vascular Endothelial Growth Factor (VEGF), while also suppressing key signaling pathways.
  • In mice, effective compounds slowed the growth of lung cancer transplants and reduced blood vessel formation in tumors without toxic effects, with one derivative notably influencing gene expression related to cell division and cholesterol biosynthesis.

Article Abstract

Modified purine derivatives exemplified by pyrazolopyrimidines have emerged as highly selective inhibitors of several angiogenic receptor tyrosine kinases. Herein, we designed and synthesized a new series of substituted pyrazolopyridines and explored their ability to influence crucial pro-angiogenic attributes of endothelial cells. Four of the synthesized compounds, possessing analogous substitution pattern, were found able to inhibit at low micromolar concentrations endothelial cell proliferation, migration and differentiation, constitutively or in response to Vascular Endothelial Growth Factor (VEGF) and to attenuate VEGF-induced phosphorylation of VEGF receptor-2 and downstream kinases AKT and ERK1/2. Administration of effective compounds in mice delayed the growth of syngeneic Lewis lung carcinoma transplants and reduced tumor microvessel density, without causing toxicity. Genome-wide microarray and gene ontology analyses of treated endothelial cells revealed derivative 18c as the most efficient modulator of gene expression and "mitotic cell cycle/cell division" along with "cholesterol biosynthesis" as the most significantly altered biological processes.

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Source
http://dx.doi.org/10.1016/j.ejmech.2016.05.035DOI Listing

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