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Development of small-molecule PUMA inhibitors for mitigating radiation-induced cell death

  • Gabriela Mustata
  • , Mei Li
  • , Nicki Zevola
  • , Ahmet Bakan
  • , Lin Zhang
  • , Michael Epperly
  • , Joel S. Greenberger
  • , Jian Yu
  • , Ivet Bahar
  • University of Pittsburgh

Research output: Contribution to journalArticlepeer-review

55 Scopus citations

Abstract

PUMA (p53 upregulated modulator of apoptosis) is a Bcl-2 homology 3 (BH3)-only Bcl-2 family member and a key mediator of apoptosis induced by a wide variety of stimuli. PUMA is particularly important in initiating radiation-induced apoptosis and damage in the gastrointestinal and hematopoietic systems. Unlike most BH3-only proteins, PUMA neutralizes all five known antiapoptotic Bcl-2 members through high affinity interactions with its BH3 domain to initiate mitochondria-dependent cell death. Using structural data on the conserved interactions of PUMA with Bcl-2-like proteins, we developed a pharmacophore model that mimics these interactions. In silico screening of the ZINC 8.0 database with this pharmacophore model yielded 142 compounds that could potentially disrupt these interactions. Thirteen structurally diverse compounds with favorable in silico ADME/Toxicity profiles have been retrieved from this set. Extensive testing of these compounds using cell-based and cell-free systems identified lead compounds that confer considerable protection against PUMA-dependent and radiation-induced apoptosis, and inhibit the interaction between PUMA and Bcl-xL.

Original languageEnglish
Pages (from-to)281-290
Number of pages10
JournalCurrent Topics in Medicinal Chemistry
Volume11
Issue number3
DOIs
StatePublished - 2011

Keywords

  • Bcl-2 protein family
  • Bh3 domain
  • Druggability
  • Inhibition of puma-induced apoptosis
  • Pharmacophore modeling
  • Protein-protein interactions
  • Virtual screening of libraries of small compounds

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