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Featured researches published by Jun Chen.


Nature Medicine | 2013

ABT-199, a potent and selective BCL-2 inhibitor, achieves antitumor activity while sparing platelets

Andrew J. Souers; Joel D. Leverson; Erwin R. Boghaert; Scott L. Ackler; Nathaniel D. Catron; Jun Chen; Brian D Dayton; H. Ding; Sari H. Enschede; Wayne J. Fairbrother; David C. S. Huang; Sarah G. Hymowitz; Sha Jin; Seong Lin Khaw; Peter Kovar; Lloyd T. Lam; Jackie Lee; Heather Maecker; Kennan Marsh; Kylie D. Mason; Michael J. Mitten; Paul Nimmer; Anatol Oleksijew; Chang H. Park; Cheol-Min Park; Darren C. Phillips; Andrew W. Roberts; Deepak Sampath; John F. Seymour; Morey L. Smith

Proteins in the B cell CLL/lymphoma 2 (BCL-2) family are key regulators of the apoptotic process. This family comprises proapoptotic and prosurvival proteins, and shifting the balance toward the latter is an established mechanism whereby cancer cells evade apoptosis. The therapeutic potential of directly inhibiting prosurvival proteins was unveiled with the development of navitoclax, a selective inhibitor of both BCL-2 and BCL-2–like 1 (BCL-XL), which has shown clinical efficacy in some BCL-2–dependent hematological cancers. However, concomitant on-target thrombocytopenia caused by BCL-XL inhibition limits the efficacy achievable with this agent. Here we report the re-engineering of navitoclax to create a highly potent, orally bioavailable and BCL-2–selective inhibitor, ABT-199. This compound inhibits the growth of BCL-2–dependent tumors in vivo and spares human platelets. A single dose of ABT-199 in three patients with refractory chronic lymphocytic leukemia resulted in tumor lysis within 24 h. These data indicate that selective pharmacological inhibition of BCL-2 shows promise for the treatment of BCL-2–dependent hematological cancers.


Cancer Research | 2008

ABT-263: A Potent and Orally Bioavailable Bcl-2 Family Inhibitor

Christin Tse; Alexander R. Shoemaker; Jessica Adickes; Mark G. Anderson; Jun Chen; Sha Jin; Eric F. Johnson; Kennan Marsh; Michael J. Mitten; Paul Nimmer; Lisa R. Roberts; Stephen K. Tahir; Yu Xiao; Xiufen Yang; Haichao Zhang; Stephen W. Fesik; Saul H. Rosenberg; Steven W. Elmore

Overexpression of the prosurvival Bcl-2 family members (Bcl-2, Bcl-xL, and Mcl-1) is commonly associated with tumor maintenance, progression, and chemoresistance. We previously reported the discovery of ABT-737, a potent, small-molecule Bcl-2 family protein inhibitor. A major limitation of ABT-737 is that it is not orally bioavailable, which would limit chronic single agent therapy and flexibility to dose in combination regimens. Here we report the biological properties of ABT-263, a potent, orally bioavailable Bad-like BH3 mimetic (K(i)s of <1 nmol/L for Bcl-2, Bcl-xL, and Bcl-w). The oral bioavailability of ABT-263 in preclinical animal models is 20% to 50%, depending on formulation. ABT-263 disrupts Bcl-2/Bcl-xL interactions with pro-death proteins (e.g., Bim), leading to the initiation of apoptosis within 2 hours posttreatment. In human tumor cells, ABT-263 induces Bax translocation, cytochrome c release, and subsequent apoptosis. Oral administration of ABT-263 alone induces complete tumor regressions in xenograft models of small-cell lung cancer and acute lymphoblastic leukemia. In xenograft models of aggressive B-cell lymphoma and multiple myeloma where ABT-263 exhibits modest or no single agent activity, it significantly enhances the efficacy of clinically relevant therapeutic regimens. These data provide the rationale for clinical trials evaluating ABT-263 in small-cell lung cancer and B-cell malignancies. The oral efficacy of ABT-263 should provide dosing flexibility to maximize clinical utility both as a single agent and in combination regimens.


Nature | 1999

NMR structure and mutagenesis of the inhibitor-of-apoptosis protein XIAP

Chaohong Sun; Mengli Cai; Angelo Gunasekera; Robert P. Meadows; Hong Wang; Jun Chen; Haichao Zhang; Wei Wu; Nan Xu; Shi-Chung Ng; Stephen W. Fesik

The inhibitor-of-apoptosis (IAP) family of proteins, originally identified in baculoviruses, regulate programmed cell death in a variety of organisms. IAPs inhibit specific enzymes (caspases) in the death cascade and contain one to three modules of a common 70-amino-acid motif called the BIR domain. Here we describe the nuclear magnetic resonance structure of a region encompassing the second BIR domain (BIR2) of a human IAP family member, XIAP (also called hILP or MIHA). The structure of the BIR domain consists of a three-stranded antiparallel β-sheet and four α-helices and resembles a classical zinc finger. Unexpectedly, conserved amino acids within the linker region between the BIR1 and BIR2 domains were found to be critical for inhibiting caspase-3. The absence or presence of these residues may explain the differences in caspase inhibition observed for different truncated and full-length IAPs. Our data further indicate that these residues may bind to the active site and that the BIR domain may interact with an adjacent site on the enzyme.


Cancer Research | 2007

Influence of Bcl-2 Family Members on the Cellular Response of Small-Cell Lung Cancer Cell Lines to ABT-737

Stephen K. Tahir; Xiufen Yang; Mark G. Anderson; Susan E. Morgan-Lappe; Aparna V. Sarthy; Jun Chen; Robert Warner; Shi-Chung Ng; Stephen W. Fesik; Steve W. Elmore; Saul H. Rosenberg; Christin Tse

ABT-737 is a novel and potent Bcl-2 antagonist with single-agent activity against small-cell lung cancer (SCLC) cell lines. Here, we evaluated the contribution of Bcl-2 family members to the in vitro cellular response of several SCLC cell lines to ABT-737. Relatively higher levels of Bcl-2, Bcl-X(L), Bim and Noxa, and lower levels of Mcl-1 characterized naïve SCLC cell lines that were sensitive to ABT-737. Conversely, a progressive decrease in the relative levels of Bcl-2 and Noxa and a progressive increase in Mcl-1 levels characterized the increased resistance of H146 cells following chronic exposure to ABT-737. Knockdown of Mcl-1 with small interfering RNA sensitized two resistant SCLC cell lines H196 and DMS114 to ABT-737 by enhancing the induction of apoptosis. Likewise, up-regulation of Noxa sensitized H196 cells to ABT-737. Combination treatment with DNA-damaging agents was extremely synergistic with ABT-737 and was associated with the down-regulation of Mcl-1 and the up-regulation of Noxa, Puma, and Bim in H196 cells. Thus, SCLC cells sensitive to ABT-737 expressed the target proteins Bcl-2 and Bcl-X(L), whereas Mcl-1 and factors regulating Mcl-1 function seem to contribute to the overall resistance of SCLC cells to ABT-737. Overall, these observations provide further insight as to the mechanistic bases for ABT-737 efficacy in SCLC and will be helpful for profiling patients and aiding in the rational design of combination therapies.


Pain | 2011

Selective blockade of TRPA1 channel attenuates pathological pain without altering noxious cold sensation or body temperature regulation

Jun Chen; Shailen K. Joshi; Richard J. Perner; Joe Mikusa; Donna M. Gauvin; Jason A. Segreti; Ping Han; Xu-Feng Zhang; Wende Niforatos; Bruce R. Bianchi; Scott J. Baker; Chengmin Zhong; Gricelda Simler; Heath A. McDonald; Robert G. Schmidt; Steve McGaraughty; Katharine L. Chu; Connie R. Faltynek; Michael E. Kort; Regina M. Reilly; Philip R. Kym

&NA; Despite the increasing interest in TRPA1 channel as a pain target, its role in cold sensation and body temperature regulation is not clear; the efficacy and particularly side effects resulting from channel blockade remain poorly understood. Here we use a potent, selective, and bioavailable antagonist to address these issues. A‐967079 potently blocks human (IC50: 51 nmol/L, electrophysiology, 67 nmol/L, Ca2+ assay) and rat TRPA1 (IC50: 101 nmol/L, electrophysiology, 289 nmol/L, Ca2+ assay). It is >1000‐fold selective over other TRP channels, and is >150‐fold selective over 75 other ion channels, enzymes, and G‐protein‐coupled receptors. Oral dosing of A‐967079 produces robust drug exposure in rodents, and exhibits analgesic efficacy in allyl isothiocyanate‐induced nocifensive response and osteoarthritic pain in rats (ED50: 23.2 mg/kg, p.o.). A‐967079 attenuates cold allodynia produced by nerve injury but does not alter noxious cold sensation in naive animals, suggesting distinct roles of TRPA1 in physiological and pathological states. Unlike TRPV1 antagonists, A‐967079 does not alter body temperature. It also does not produce locomotor or cardiovascular side effects. Collectively, these data provide novel insights into TRPA1 function and suggest that the selective TRPA1 blockade may present a viable strategy for alleviating pain without untoward side effects. Selective blockade of TRPA1 channel attenuates pathological pain without altering noxious cold sensation or body temperature regulation.


Science Translational Medicine | 2015

Exploiting selective BCL-2 family inhibitors to dissect cell survival dependencies and define improved strategies for cancer therapy

Joel D. Leverson; Darren C. Phillips; Michael J. Mitten; Erwin R. Boghaert; Stephen K. Tahir; Lisa D. Belmont; Paul Nimmer; Yu Xiao; Xiaoju Max Ma; Kym N. Lowes; Peter Kovar; Jun Chen; Sha Jin; Morey L. Smith; John Xue; Haichao Zhang; Anatol Oleksijew; Terrance J. Magoc; Kedar S. Vaidya; Daniel H. Albert; Jacqueline M. Tarrant; Nghi La; Le Wang; Zhi-Fu Tao; Michael D. Wendt; Deepak Sampath; Saul H. Rosenberg; Chris Tse; David C. S. Huang; Wayne J. Fairbrother

Selective inhibition of BCL-XL synergizes with docetaxel to inhibit the growth of solid tumors but does not inhibit granulopoiesis. A more refined antitumor strategy The BCL-2 family is a group of related proteins that regulate apoptosis in a variety of ways. The success of anticancer treatments often hinges on the ability to induce cancer cell death by apoptosis. As a result, there has been a great deal of interest in developing drugs that can inhibit the antiapoptotic members of the BCL-2 pathway. Unfortunately, some of these drugs are also associated with dose-limiting hematologic toxicities, such as neutropenia. Now, Leverson et al. have used a toolkit of BCL-2 family inhibitors with different specificities to show that specifically inhibiting BCL-XL (one member of this protein family) is effective for killing tumors, but without the common side effects seen with less selective drugs. The BCL-2/BCL-XL/BCL-W inhibitor ABT-263 (navitoclax) has shown promising clinical activity in lymphoid malignancies such as chronic lymphocytic leukemia. However, its efficacy in these settings is limited by thrombocytopenia caused by BCL-XL inhibition. This prompted the generation of the BCL-2–selective inhibitor venetoclax (ABT-199/GDC-0199), which demonstrates robust activity in these cancers but spares platelets. Navitoclax has also been shown to enhance the efficacy of docetaxel in preclinical models of solid tumors, but clinical use of this combination has been limited by neutropenia. We used venetoclax and the BCL-XL–selective inhibitors A-1155463 and A-1331852 to assess the relative contributions of inhibiting BCL-2 or BCL-XL to the efficacy and toxicity of the navitoclax-docetaxel combination. Selective BCL-2 inhibition suppressed granulopoiesis in vitro and in vivo, potentially accounting for the exacerbated neutropenia observed when navitoclax was combined with docetaxel clinically. By contrast, selectively inhibiting BCL-XL did not suppress granulopoiesis but was highly efficacious in combination with docetaxel when tested against a range of solid tumors. Therefore, BCL-XL–selective inhibitors have the potential to enhance the efficacy of docetaxel in solid tumors and avoid the exacerbation of neutropenia observed with navitoclax. These studies demonstrate the translational utility of this toolkit of selective BCL-2 family inhibitors and highlight their potential as improved cancer therapeutics.


Molecular Cell | 2000

Crystal Structure and Mutagenic Analysis of the Inhibitor-of-Apoptosis Protein Survivin

Steven W. Muchmore; Jun Chen; Clarissa G. Jakob; Dorothy Zakula; Edmund D. Matayoshi; Wei Wu; Haichao Zhang; Fengzhi Li; Shi-Chung Ng; Dario C. Altieri

The coupling of apoptosis (programmed cell death) to the cell division cycle is essential for homeostasis and genomic integrity. Here, we report the crystal structure of survivin, an inhibitor of apoptosis, which has been implicated in both control of cell death and regulation of cell division. In addition to a conserved N-terminal Zn finger baculovirus IAP repeat, survivin forms a dimer through a symmetric interaction with an intermolecularly bound Zn atom located along the molecular dyad axis. The interaction of the dimer-related C-terminal alpha helices forms an extended surface of approximately 70 A in length. Mutagenesis analysis revealed that survivin dimerization and an extended negatively charged surface surrounding Asp-71 are required to counteract apoptosis and preserve ploidy. These findings may provide a structural basis for a dual role of survivin in inhibition of apoptosis and regulation of cell division.


Nature Communications | 2013

Species differences and molecular determinant of TRPA1 cold sensitivity

Jun Chen; Dawon Kang; Jing Xu; Marc R. Lake; James O. Hogan; Chaohong Sun; Karl Walter; Betty Yao; Donghee Kim

TRPA1 is an ion channel and has been proposed as a thermosensor across species. In invertebrate and ancestral vertebrates such as fly, mosquito, frog, lizard and snakes, TRPA1 serves as a heat receptor, a sensory input utilized for heat avoidance or infrared detection. However, in mammals, whether TRPA1 is a receptor for noxious cold is highly controversial, as channel activation by cold was observed by some groups but disputed by others. Here we attribute the discrepancy to species differences. We show that cold activates rat and mouse TRPA1 but not human or rhesus monkey TRPA1. At the molecular level, a single residue within the S5 transmembrane domain (G878 in rodent but V875 in primate) accounts for the observed difference in cold sensitivity. This residue difference also underlies the species-specific effects of menthol. Together, our findings identify the species-specific cold activation of TRPA1 and reveal a molecular determinant of cold-sensitive gating.


Molecular Pain | 2009

Pore dilation occurs in TRPA1 but not in TRPM8 channels

Jun Chen; Donghee Kim; Bruce R. Bianchi; Eric J. Cavanaugh; Connie R. Faltynek; Philip R Kym; Regina M. Reilly

Abundantly expressed in pain-sensing neurons, TRPV1, TRPA1 and TRPM8 are major cellular sensors of thermal, chemical and mechanical stimuli. The function of these ion channels has been attributed to their selective permeation of small cations (e.g., Ca2+, Na+ and K+), and the ion selectivity has been assumed to be an invariant fingerprint to a given channel. However, for TRPV1, the notion of invariant ion selectivity has been revised recently. When activated, TRPV1 undergoes time and agonist-dependent pore dilation, allowing permeation of large organic cations such as Yo-Pro and NMDG+. The pore dilation is of physiological importance, and has been exploited to specifically silence TRPV1-positive sensory neurons. It is unknown whether TRPA1 and TRPM8 undergo pore dilation. Here we show that TRPA1 activation by reactive or non-reactive agonists induces Yo-Pro uptake, which can be blocked by TRPA1 antagonists. In outside-out patch recordings using NMDG+ as the sole external cation and Na+ as the internal cation, TRPA1 activation results in dynamic changes in permeability to NMDG+. In contrast, TRPM8 activation does not produce either Yo-Pro uptake or significant change in ion selectivity. Hence, pore dilation occurs in TRPA1, but not in TRPM8 channels.


Chemical Biology & Drug Design | 2007

Discovery and Design of Novel HSP90 Inhibitors Using Multiple Fragment-based Design Strategies

Jeffrey R. Huth; Chang Park; Andrew M. Petros; Aaron R. Kunzer; Michael D. Wendt; Xilu Wang; Christopher L. Lynch; Jamey Mack; Kerry M. Swift; Russell A. Judge; Jun Chen; Paul L. Richardson; Sha Jin; Stephen K. Tahir; Edward D. Matayoshi; Sarah A. Dorwin; Uri S. Ladror; Jean M. Severin; Karl A. Walter; Diane Bartley; Stephen W. Fesik; Steven W. Elmore; Philip J. Hajduk

The molecular chaperone HSP90 has been shown to facilitate cancer cell survival by stabilizing key proteins responsible for a malignant phenotype. We report here the results of parallel fragment‐based drug design approaches in the design of novel HSP90 inhibitors. Initial aminopyrimidine leads were elaborated using high‐throughput organic synthesis to yield nanomolar inhibitors of the enzyme. Second site leads were also identified which bound to HSP90 in two distinct conformations, an ‘open’ and ‘closed’ form. Intriguingly, linked fragment approaches targeting both of these conformations were successful in producing novel, micromolar inhibitors. Overall, this study shows that, with only a few fragment hits, multiple lead series can be generated for HSP90 due to the inherent flexibility of the active site. Thus, ample opportunities exist to use these lead series in the development of clinically useful HSP90 inhibitors for the treatment of cancers.

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Stephen K. Tahir

University of Pennsylvania

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Joel D. Leverson

Salk Institute for Biological Studies

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Philip R. Kym

University of Texas at Austin

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Michael E. Kort

University of Wisconsin-Madison

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