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Evaluating Angiogenic Potential of Small Molecules Using Genetic Network Approaches.
Das, Anusuya; Merrill, Parker; Wilson, Jennifer; Turner, Thomas; Paige, Mikell; Capitosti, Scott; Brown, Milton; Freshcorn, Brandon; Sok, Mary Caitlin P; Song, Hannah; Botchwey, Edward A.
Afiliação
  • Das A; Department of Orthopaedic Surgery, University of Virginia, Charlottesville, VA, USA.
  • Merrill P; Department of Biomedical Engineering, University of Virginia, Charlottesville, VA, USA.
  • Wilson J; Department of Biomedical Engineering, University of Virginia, Charlottesville, VA, USA.
  • Turner T; Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.
  • Paige M; Department of Biomedical Engineering, Georgia Institute of Technology, Atlanta, GA, USA.
  • Capitosti S; Parker H. Petit Institute for Bioengineering and Bioscience, 315 Ferst Drive Suite 1316, Atlanta, GA 30332, USA.
  • Brown M; Center for Drug Discovery, Georgetown University, Washington, DC, USA.
  • Freshcorn B; Center for Drug Discovery, Georgetown University, Washington, DC, USA.
  • Sok MCP; Center for Drug Discovery, Georgetown University, Washington, DC, USA.
  • Song H; School of Medicine, University of Virginia, Charlottesville, VA, USA.
  • Botchwey EA; Department of Biomedical Engineering, Georgia Institute of Technology, Atlanta, GA, USA.
Regen Eng Transl Med ; 5(1): 30-41, 2019 Mar.
Article em En | MEDLINE | ID: mdl-31008183
ABSTRACT
Control of microvascular network growth is critical to treatment of ischemic tissue diseases and enhancing regenerative capacity of tissue engineering implants. Conventional therapeutic strategies for inducing angiogenesis aim to deliver one or more proangiogenic cytokines or to over-express known pro-angiogenic genes, but seldom address potential compensatory or cooperative effects between signals and the overarching signaling pathways that determine successful outcomes. An emerging grand challenge is harnessing the expanding knowledge base of angiogenic signaling pathways toward development of successful new therapies. We previously performed drug optimization studies by various substitutions of a 2-(2,6-dioxo-3-piperidyl)isoindole-1,3-dione scaffold to discover novel bioactive small molecules capable of inducing growth of microvascular networks, the most potent of which we termed phthalimide neovascularization factor 1 (PNF1, formerly known as SC-3-149). We then showed that PNF-1 regulates the transcription of signaling molecules that are associated with vascular initiation and maturation in a time-dependent manner through a novel pathway compendium analysis in which transcriptional regulatory networks of PNF-1-stimulated microvascular endothelial cells are overlaid with literature-derived angiogenic pathways. In this study, we generated three analogues (SC-3-143, SC-3-263, SC-3-13) through systematic transformations to PNF1 to evaluate the effects of electronic, steric, chiral, and hydrogen bonding changes on angiogenic signaling. We then expanded our compendium analysis toward these new compounds. Variables obtained from the compendium analysis were then used to construct a PLSR model to predict endothelial cell proliferation. Our combined approach suggests mechanisms of action involving suppression of VEGF pathways through TGF-ß andNR3C1 network activation.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article