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Blacklow, Stephen

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Blacklow

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Stephen

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Blacklow, Stephen

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Now showing 1 - 2 of 2
  • Publication

    Mechanical Allostery: Evidence for a Force Requirement in the Proteolytic Activation of Notch

    (Elsevier BV, 2015-06-22) Gordon, Wendy R.; Zimmerman, Brandon; He, Li; Miles, Laura J.; Huang, Jiuhong; Tiyanont, Kittichoat; McArthur, Debbie G.; Aster, Jon; Perrimon, Norbert; Loparo, Joseph; Blacklow, Stephen

    Ligands stimulate Notch receptors by inducing regulated intramembrane proteolysis (RIP) to produce a transcriptional effector. Notch activation requires unmasking of a metalloprotease cleavage site remote from the site of ligand binding, raising the question of how proteolytic sensitivity is achieved. Here, we show that application of physiologically relevant forces to the regulatory switch results in sensitivity to metalloprotease cleavage, and that bound ligands induce Notch signal transduction in cells only in the presence of applied mechanical force. Synthetic receptor-ligand systems that remove the native ligand-receptor interaction also activate Notch by inducing proteolysis of the regulatory switch. Together, these studies show that mechanical force exerted by signal-sending cells is required for ligand-induced Notch activation, and establish that force-induced proteolysis can act as a mechanism of cellular mechanotransduction.

  • Publication

    Complementary Genomic Screens Identify SERCA as a Therapeutic Target in NOTCH1 Mutated Cancer

    (Elsevier BV, 2013-03-18) Roti, Giovanni; Carlton, Anne; Ross, Kenneth; Markstein, Michele; Pajcini, Kostandin; Su, Angela H.; Perrimon, Norbert; Pear, Warren S.; Kung, Andrew L.; Blacklow, Stephen; Aster, Jon; Stegmaier, Kimberly

    Notch1 is a rational therapeutic target in several human cancers, but as a transcriptional regulator, it poses a drug discovery challenge. To identify Notch1 modulators, we performed two cell-based, high-throughput screens for small-molecule inhibitors and cDNA enhancers of a NOTCH1 allele bearing a leukemia-associated mutation. SERCA calcium channels emerged at the intersection of these complementary screens. SERCA inhibition preferentially impairs the maturation and activity of mutated Notch1 receptors and induces a G0/G1 arrest in NOTCH1-mutated human leukemia cells. A small-molecule SERCA inhibitor has on-target activity in two mouse models of human leukemia and interferes with Notch signaling in Drosophila. These studies “credential” SERCA as a therapeutic target in cancers associated with NOTCH1 mutations.