Aaron D. Schuler
Fred Hutchinson Cancer Research Center
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Featured researches published by Aaron D. Schuler.
Cancer Research | 2006
Birgit Heltweg; Tonibelle Gatbonton; Aaron D. Schuler; Jeff Posakony; Hongzhe Li; Sondra Goehle; Ramya Kollipara; Ronald A. DePinho; Yansong Gu; Julian A. Simon; Antonio Bedalov
SIRT1 and other NAD-dependent deacetylases have been implicated in control of cellular responses to stress and in tumorigenesis through deacetylation of important regulatory proteins, including p53 and the BCL6 oncoprotein. Hereby, we describe the identification of a compound we named cambinol that inhibits NAD-dependent deacetylase activity of human SIRT1 and SIRT2. Consistent with the role of SIRT1 in promoting cell survival during stress, inhibition of SIRT1 activity with cambinol during genotoxic stress leads to hyperacetylation of key stress response proteins and promotes cell cycle arrest. Treatment of BCL6-expressing Burkitt lymphoma cells with cambinol as a single agent induced apoptosis, which was accompanied by hyperacetylation of BCL6 and p53. Because acetylation inactivates BCL6 and has the opposite effect on the function of p53 and other checkpoint pathways, the antitumor activity of cambinol in Burkitt lymphoma cells may be accomplished through a combined effect of BCL6 inactivation and checkpoint activation. Cambinol was well tolerated in mice and inhibited growth of Burkitt lymphoma xenografts. Inhibitors of NAD-dependent deacetylases may constitute novel anticancer agents.
Journal of Medicinal Chemistry | 2014
Sumit S. Mahajan; Michele Scian; Smitha Sripathy; Jeff Posakony; Uyen Lao; Taylor Loe; Vid Leko; Angel Thalhofer; Aaron D. Schuler; Antonio Bedalov; Julian A. Simon
Sirtuins are a family of NAD+-dependent protein deacetylases that play critical roles in epigenetic regulation, stress responses, and cellular aging in eukaryotic cells. In an effort to identify small molecule inhibitors of sirtuins for potential use as chemotherapeutics as well as tools to modulate sirtuin activity, we previously identified a nonselective sirtuin inhibitor called cambinol (IC50 ≈ 50 μM for SIRT1 and SIRT2) with in vitro and in vivo antilymphoma activity. In the current study, we used saturation transfer difference (STD) NMR experiments with recombinant SIRT1 and 20 to map parts of the inhibitor that interacted with the protein. Our ongoing efforts to optimize cambinol analogues for potency and selectivity have resulted in the identification of isoform selective analogues: 17 with >7.8-fold selectivity for SIRT1, 24 with >15.4-fold selectivity for SIRT2, and 8 with 6.8- and 5.3-fold selectivity for SIRT3 versus SIRT1 and SIRT2, respectively. In vitro cytotoxicity studies with these compounds as well as EX527, a potent and selective SIRT1 inhibitor, suggest that antilymphoma activity of this compound class may be predominantly due to SIRT2 inhibition.
Journal of Medicinal Chemistry | 2014
Dean Y. Maeda; Angela M. Peck; Aaron D. Schuler; Mark T. Quinn; Liliya N. Kirpotina; Winston N. Wicomb; Guo Huang Fan; John A. Zebala
The G protein-coupled chemokine receptors CXCR1 and CXCR2 play key roles in inflammatory diseases and carcinogenesis. In inflammation, they activate and recruit polymorphonuclear cells (PMNs) through binding of the chemokines CXCL1 (CXCR1) and CXCL8 (CXCR1 and CXCR2). Structure–activity studies that examined the effect of a novel series of S-substituted 6-mercapto-N-phenyl-nicotinamides on CXCL1-stimulated Ca2+ flux in whole human PMNs led to the discovery of 2-[5-(4-fluorophenylcarbamoyl)pyridin-2-ylsulfanylmethyl]phenylboronic acid (SX-517), a potent noncompetitive boronic acid CXCR1/2 antagonist. SX-517 inhibited CXCL1-induced Ca2+ flux (IC50 = 38 nM) in human PMNs but had no effect on the Ca2+ flux induced by C5a, fMLF, or PAF. In recombinant HEK293 cells that stably expressed CXCR2, SX-517 antagonized CXCL8-induced [35S]GTPγS binding (IC50 = 60 nM) and ERK1/2 phosphorylation. Inhibition was noncompetitive, with SX-517 unable to compete the binding of [125I]-CXCL8 to CXCR2 membranes. SX-517 (0.2 mg/kg iv) significantly inhibited inflammation in an in vivo murine model. SX-517 is the first reported boronic acid chemokine antagonist and represents a novel pharmacophore for CXCR1/2 antagonism.
Bioorganic & Medicinal Chemistry Letters | 2015
Aaron D. Schuler; Courtney A. Engles; Dean Y. Maeda; Mark T. Quinn; Liliya N. Kirpotina; Winston N. Wicomb; S. Nicholas Mason; Richard L. Auten; John A. Zebala
The chemokine receptors CXCR1 and CXCR2 are important pharmaceutical targets due to their key roles in inflammatory diseases and cancer progression. We have previously identified 2-[5-(4-fluoro-phenylcarbamoyl)-pyridin-2-ylsulfanylmethyl]-phenylboronic acid (SX-517) and 6-(2-boronic acid-5-trifluoromethoxy-benzylsulfanyl)-N-(4-fluoro-phenyl)-nicotinamide (SX-576) as potent non-competitive boronic acid-containing CXCR1/2 antagonists. Herein we report the synthesis and evaluation of aminopyridine and aminopyrimidine analogs of SX-517 and SX-576, identifying (2-{(benzyl)[(5-boronic acid-2-pyridyl)methyl]amino}-5-pyrimidinyl)(4-fluorophenylamino)formaldehyde as a potent chemokine antagonist with improved aqueous solubility and oral bioavailability.
Nature Structural & Molecular Biology | 2004
Tanja Kortemme; Lukasz A Joachimiak; Alex N. Bullock; Aaron D. Schuler; Barry L. Stoddard; David Baker
Archive | 2011
Dean Y. Maeda; John A. Zebala; Aaron D. Schuler
Archive | 2014
Dean Y. Maeda; John A. Zebala; Aaron D. Schuler
Blood Cells Molecules and Diseases | 2007
Jutong Si; LeMoyne Mueller; Aaron D. Schuler; Julian A. Simon; Steven J. Collins
Bioorganic & Medicinal Chemistry Letters | 2015
Dean Y. Maeda; Angela M. Peck; Aaron D. Schuler; Mark T. Quinn; Liliya N. Kirpotina; Winston N. Wicomb; Richard L. Auten; Rambabu Gundla; John A. Zebala
Archive | 2013
Dean Y. Maeda; John A. Zebala; Aaron D. Schuler