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Dive into the research topics where Craig T. Jordan is active.

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Featured researches published by Craig T. Jordan.


Journal of Biological Chemistry | 2013

Targeting Aberrant Glutathione Metabolism to Eradicate Human Acute Myelogenous Leukemia Cells

Shanshan Pei; Mohammad Minhajuddin; Kevin P. Callahan; Marlene Balys; John M. Ashton; Sarah J. Neering; Eleni D. Lagadinou; Cheryl Corbett; Haobin Ye; Jane L. Liesveld; Kristen O'Dwyer; Zheng Li; Lei Shi; Patricia Greninger; Jeffrey Settleman; Cyril H. Benes; Fred K. Hagen; Joshua Munger; Peter A. Crooks; Michael W. Becker; Craig T. Jordan

Background: Eradication of primary human leukemia cells represents a major challenge. Therapies have not substantially changed in over 30 years. Results: Using normal versus leukemia specimens enriched for primitive cells, we document aberrant regulation of glutathione metabolism. Conclusion: Aberrant glutathione metabolism is an intrinsic property of human leukemia cells. Significance: Interventions based on modulation of glutathione metabolism represent a powerful means to improve therapy. The development of strategies to eradicate primary human acute myelogenous leukemia (AML) cells is a major challenge to the leukemia research field. In particular, primitive leukemia cells, often termed leukemia stem cells, are typically refractory to many forms of therapy. To investigate improved strategies for targeting of human AML cells we compared the molecular mechanisms regulating oxidative state in primitive (CD34+) leukemic versus normal specimens. Our data indicate that CD34+ AML cells have elevated expression of multiple glutathione pathway regulatory proteins, presumably as a mechanism to compensate for increased oxidative stress in leukemic cells. Consistent with this observation, CD34+ AML cells have lower levels of reduced glutathione and increased levels of oxidized glutathione compared with normal CD34+ cells. These findings led us to hypothesize that AML cells will be hypersensitive to inhibition of glutathione metabolism. To test this premise, we identified compounds such as parthenolide (PTL) or piperlongumine that induce almost complete glutathione depletion and severe cell death in CD34+ AML cells. Importantly, these compounds only induce limited and transient glutathione depletion as well as significantly less toxicity in normal CD34+ cells. We further determined that PTL perturbs glutathione homeostasis by a multifactorial mechanism, which includes inhibiting key glutathione metabolic enzymes (GCLC and GPX1), as well as direct depletion of glutathione. These findings demonstrate that primitive leukemia cells are uniquely sensitive to agents that target aberrant glutathione metabolism, an intrinsic property of primary human AML cells.


Haematologica | 2014

Targeting acute myeloid leukemia stem cells: a review and principles for the development of clinical trials

Daniel A. Pollyea; Jonathan A. Gutman; Lia Gore; Clayton A. Smith; Craig T. Jordan

Despite an increasingly rich understanding of its pathogenesis, acute myeloid leukemia remains a disease with poor outcomes, overwhelmingly due to disease relapse. In recent years, work to characterize the leukemia stem cell population, the disease compartment most difficult to eliminate with conventional therapy and most responsible for relapse, has been undertaken. This, in conjunction with advances in drug development that have allowed for increasingly targeted therapies to be engineered, raises the hope that we are entering an era in which the leukemia stem cell population can be eliminated, resulting in therapeutic cures for acute myeloid leukemia patients. For these therapies to become available, they must be tested in the setting of clinical trials. A long-established clinical trials infrastructure has been employed to shepherd new therapies from proof-of-concept to approval. However, due to the unique features of leukemia stem cells, drugs that are designed to specifically eliminate this population may not be adequately tested when applied to this model. Therefore, in this review article, we seek to identify the relevant features of acute myeloid leukemia stem cells for clinical trialists, discuss potential strategies to target leukemia stem cells, and propose a set of guidelines outlining the necessary elements of clinical trials to allow for the successful testing of stem cell-directed therapies.


Molecular Cancer Therapeutics | 2014

Selective Activity of the Histone Deacetylase Inhibitor AR-42 against Leukemia Stem Cells: A Novel Potential Strategy in Acute Myelogenous Leukemia

Monica L. Guzman; Neng Yang; Krishan K. Sharma; Marlene Balys; Cheryl Corbett; Craig T. Jordan; Michael W. Becker; Ulrich Steidl; Omar Abdel-Wahab; Ross L. Levine; Guido Marcucci; Gail J. Roboz; Duane C. Hassane

Most patients with acute myelogenous leukemia (AML) relapse and die of their disease. Increasing evidence indicates that AML relapse is driven by the inability to eradicate leukemia stem cells (LSC). Thus, it is imperative to identify novel therapies that can ablate LSCs. Using an in silico gene expression–based screen for compounds evoking transcriptional effects similar to the previously described anti-LSC agent parthenolide, we identified AR-42 (OSU-HDAC42), a novel histone deacetylase inhibitor that is structurally similar to phenylbutyrate, but with improved activity at submicromolar concentrations. Here, we report that AR-42 induces NF-κB inhibition, disrupts the ability of Hsp90 to stabilize its oncogenic clients, and causes potent and specific cell death of LSCs but not normal hematopoietic stem and progenitor cells. Unlike parthenolide, the caspase-dependent apoptosis caused by AR-42 occurs without activation of Nrf-2–driven cytoprotective pathways. As AR-42 is already being tested in early clinical trials, we expect that our results can be extended to the clinic. Mol Cancer Ther; 13(8); 1979–90. ©2014 AACR.


JCI insight | 2016

The MERTK/FLT3 inhibitor MRX-2843 overcomes resistance-conferring FLT3 mutations in acute myeloid leukemia

Katherine A. Minson; Catherine C. Smith; Deborah DeRyckere; Clara Libbrecht; Alisa B. Lee-Sherick; Madeline G. Huey; Elisabeth Lasater; Gregory Kirkpatrick; Michael A. Stashko; Weihe Zhang; Craig T. Jordan; Dmitri Kireev; Xiaodong Wang; Stephen V. Frye; H. Shelton Earp; Neil P. Shah; Douglas K. Graham

FMS-like tyrosine kinase 3-targeted (FLT3-targeted) therapies have shown initial promise for the treatment of acute myeloid leukemia (AML) expressing FLT3-activating mutations; however, resistance emerges rapidly. Furthermore, limited options exist for the treatment of FLT3-independent AML, demonstrating the need for novel therapies that reduce toxicity and improve survival. MERTK receptor tyrosine kinase is overexpressed in 80% to 90% of AMLs and contributes to leukemogenesis. Here, we describe MRX-2843, a type 1 small-molecule tyrosine kinase inhibitor that abrogates activation of both MERTK and FLT3 and their downstream effectors. MRX-2843 treatment induces apoptosis and inhibits colony formation in AML cell lines and primary patient samples expressing MERTK and/or FLT3-ITD, with a wide therapeutic window compared with that of normal human cord blood cells. In murine orthotopic xenograft models, once-daily oral therapy prolonged survival 2- to 3-fold over that of vehicle-treated controls. Additionally, MRX-2843 retained activity against quizartinib-resistant FLT3-ITD-mutant proteins with clinically relevant alterations at the D835 or F691 loci and prolonged survival in xenograft models of quizartinib-resistant AML. Together, these observations validate MRX-2843 as a translational agent and support its clinical development for the treatment of AML.


PLOS ONE | 2014

Metabolic effects of acute thiamine depletion are reversed by rapamycin in breast and leukemia cells.

Shuqian Liu; Sumitra Miriyala; Mignon Keaton; Craig T. Jordan; Christina M. Wiedl; Daret K. St. Clair; Jeffrey A. Moscow

Thiamine-dependent enzymes (TDEs) control metabolic pathways that are frequently altered in cancer and therefore present cancer-relevant targets. We have previously shown that the recombinant enzyme thiaminase cleaves and depletes intracellular thiamine, has growth inhibitory activity against leukemia and breast cancer cell lines, and that its growth inhibitory effects were reversed in leukemia cell lines by rapamycin. Now, we first show further evidence of thiaminase therapeutic potential by demonstrating its activity against breast and leukemia xenografts, and against a primary leukemia xenograft. We therefore further explored the metabolic effects of thiaminase in combination with rapamycin in leukemia and breast cell lines. Thiaminase decreased oxygen consumption rate and increased extracellular acidification rate, consistent with the inhibitory effect of acute thiamine depletion on the activity of the TDEs pyruvate dehydrogenase and 2-oxoglutarate dehydrogenase complexes; these effects were reversed by rapamycin. Metabolomic studies demonstrated intracellular thiamine depletion and the presence of the thiazole cleavage product in thiaminase-treated cells, providing validation of the experimental procedures. Accumulation of ribose and ribulose in both cell lines support the thiaminase-mediated suppression of the TDE transketolase. Interestingly, thiaminase suppression of another TDE, branched chain amino ketoacid dehydrogenase (BCKDH), showed very different patterns in the two cell lines: in RS4 leukemia cells it led to an increase in BCKDH substrates, and in MCF-7 breast cancer cells it led to a decrease in BCKDH products. Immunoblot analyses showed corresponding differences in expression of BCKDH pathway enzymes, and partial protection of thiaminase growth inhibition by gabapentin indicated that BCKDH inhibition may be a mechanism of thiaminase-mediated toxicity. Surprisingly, most of thiaminase-mediated metabolomic effects were also reversed by rapamycin. Thus, these studies demonstrate that acute intracellular thiamine depletion by recombinant thiaminase results in metabolic changes in thiamine-dependent metabolism, and demonstrate a previously unrecognized role of mTOR signaling in the regulation of thiamine-dependent metabolism.


Nature Communications | 2018

Characterization and targeting of malignant stem cells in patients with advanced myelodysplastic syndromes

Brett M. Stevens; Nabilah Khan; Angelo D’Alessandro; Travis Nemkov; Amanda C. Winters; Courtney L. Jones; Wei Zhang; Daniel A. Pollyea; Craig T. Jordan

Myelodysplastic syndrome (MDS) is a chronic hematologic disorder that frequently evolves to more aggressive stages and in some cases leads to acute myeloid leukemia (AML). MDS arises from mutations in hematopoietic stem cells (HSCs). Thus, to define optimal therapies, it is essential to understand molecular events driving HSC pathogenesis. In this study, we report that during evolution of MDS, malignant HSCs activate distinct cellular programs that render such cells susceptible to therapeutic intervention. Specifically, metabolic analyses of the MDS stem cell compartment show a profound activation of protein synthesis machinery and increased oxidative phosphorylation. Pharmacological targeting of protein synthesis and oxidative phosphorylation demonstrated potent and selective eradication of MDS stem cells in primary human patient specimens. Taken together, our findings indicate that MDS stem cells are reliant on specific metabolic events and that such properties can be targeted prior to the onset of clinically significant AML, during antecedent MDS.Myelodysplastic syndrome (MDS) arises from mutations in hematopoietic stem cells (HSCs). Here, the authors demonstrate that HSCs in higher-risk MDS express the surface marker CD123 and are characterized by activation of protein synthesis machinery and increased oxidative phosphorylation.


Nature | 2018

Functional genomic landscape of acute myeloid leukaemia.

Jeffrey W. Tyner; Cristina E. Tognon; Daniel Bottomly; Beth Wilmot; Stephen E. Kurtz; Samantha L. Savage; Nicola Long; Anna Reister Schultz; Elie Traer; Melissa L. Abel; Anupriya Agarwal; Aurora S. Blucher; Uma Borate; Jade Bryant; Russell T. Burke; Amy S. Carlos; Richie Carpenter; Joseph Carroll; Bill H. Chang; Cody Coblentz; Amanda d’Almeida; Rachel J. Cook; Alexey V. Danilov; Kim-Hien T. Dao; Michie Degnin; Deirdre Devine; James Dibb; David K. Edwards; Christopher A. Eide; Isabel English

The implementation of targeted therapies for acute myeloid leukaemia (AML) has been challenging because of the complex mutational patterns within and across patients as well as a dearth of pharmacologic agents for most mutational events. Here we report initial findings from the Beat AML programme on a cohort of 672 tumour specimens collected from 562 patients. We assessed these specimens using whole-exome sequencing, RNA sequencing and analyses of ex vivo drug sensitivity. Our data reveal mutational events that have not previously been detected in AML. We show that the response to drugs is associated with mutational status, including instances of drug sensitivity that are specific to combinatorial mutational events. Integration with RNA sequencing also revealed gene expression signatures, which predict a role for specific gene networks in the drug response. Collectively, we have generated a dataset—accessible through the Beat AML data viewer (Vizome)—that can be leveraged to address clinical, genomic, transcriptomic and functional analyses of the biology of AML.Analyses of samples from patients with acute myeloid leukaemia reveal that drug response is associated with mutational status and gene expression; the generated dataset provides a basis for future clinical and functional studies of this disease.


JCI insight | 2018

MERTK inhibition alters the PD-1 axis and promotes anti-leukemia immunity

Alisa B. Lee-Sherick; Kristen M. Jacobsen; Curtis J. Henry; Madeline G. Huey; Rebecca E. Parker; Lauren S. Page; Amanda A. Hill; Xiaodong Wang; Stephen V. Frye; H. Shelton Earp; Craig T. Jordan; Deborah DeRyckere; Douglas K. Graham

MERTK is ectopically expressed and promotes survival in acute lymphoblastic leukemia (ALL) cells and is thus a potential therapeutic target. Here we demonstrate both direct therapeutic effects of MERTK inhibition on leukemia cells and induction of anti-leukemia immunity via suppression of the coinhibitory PD-1 axis. A MERTK-selective tyrosine kinase inhibitor, MRX-2843, mediated therapeutic anti-leukemia effects in immunocompromised mice bearing a MERTK-expressing human leukemia xenograft. In addition, inhibition of host MERTK by genetic deletion (Mertk-/- mice) or treatment with MRX-2843 significantly decreased tumor burden and prolonged survival in immune-competent mice inoculated with a MERTK-negative ALL, suggesting immune-mediated therapeutic activity. In this context, MERTK inhibition led to significant decreases in expression of the coinhibitory ligands PD-L1 and PD-L2 on CD11b+ monocytes/macrophages in the leukemia microenvironment. Furthermore, although T cells do not express MERTK, inhibition of MERTK indirectly decreased PD-1 expression on CD4+ and CD8+ T cells and decreased the incidence of splenic FOXP3+ Tregs at sites of leukemic infiltration, leading to increased T cell activation. These data demonstrate direct and immune-mediated therapeutic activities in response to MERTK inhibition in ALL models and provide validation of a translational agent targeting MERTK for modulation of tumor immunity.


Cancer Research | 2014

Abstract 979: microRNA-mediated leukemia-initiating cell activity

Chinavenmeni S. Velu; Aditya Chaubey; James D. Phelan; Sara E. Meyer; Shane R. Horman; Mark Wunderlich; Monica L. Guzman; Anil G. Jegga; Nancy J. Zeleznik-Le; Jianjun Chen; James C. Mulloy; Jose A. Cancelas; Craig T. Jordan; Bruce J. Aronow; Guido Marcucci; Balkrishen Bhat; Brian Gebelein; H. Leighton Grimes

Proceedings: AACR Annual Meeting 2014; April 5-9, 2014; San Diego, CA The HoxA9 transcription activator and the Gfi1 transcriptional repressor compete for the regulation of common target genes. We exploited HoxA9 versus Gfi1 antagonism to identify the genes encoding microRNA-21 and microRNA-196b as transcriptional targets of Hox-based leukemia oncoproteins. Therapeutic inhibition of microRNA-21 and microRNA-196b significantly inhibits in vitro colony forming activity, and quantitatively depletes in vivo leukemia-initiating-cell activity of Hox-based leukemias leading to leukemia-free survival of murine AML and significant delay in disease onset in xenograft models. A novel microRNA target identification platform both validates therapeutic intervention and reveals biological impact of disrupting microRNA function. These data establish microRNA as functional effectors of endogenous HoxA9 and Hox-based leukemia oncoproteins, provide a concise in vivo platform to test RNA therapeutics, and suggest therapeutic value for microRNA antagonists in AML. Citation Format: Chinavenmeni S. Velu, Aditya Chaubey, James D. Phelan, Sara Meyer, Shane R. Horman, Mark Wunderlich, Monica L. Guzman, Anil G. Jegga, Nancy J. Zeleznik-Le, Jianjun Chen, James C. Mulloy, Jose A. Cancelas, Craig T. Jordan, Bruce J. Aronow, Guido Marcucci, Balkrishen Bhat, Brian Gebelein, H. Leighton Grimes. microRNA-mediated leukemia-initiating cell activity. [abstract]. In: Proceedings of the 105th Annual Meeting of the American Association for Cancer Research; 2014 Apr 5-9; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2014;74(19 Suppl):Abstract nr 979. doi:10.1158/1538-7445.AM2014-979


Blood | 2017

Therapeutic targeting of acute myeloid leukemia stem cells

Daniel A. Pollyea; Craig T. Jordan

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Daniel A. Pollyea

University of Colorado Denver

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Nabilah Khan

University of Colorado Denver

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Peter A. Crooks

University of Arkansas for Medical Sciences

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Alisa B. Lee-Sherick

University of Colorado Boulder

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H. Shelton Earp

University of North Carolina at Chapel Hill

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Marlene Balys

University of Rochester Medical Center

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Stephen V. Frye

University of North Carolina at Chapel Hill

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Xiaodong Wang

University of North Carolina at Chapel Hill

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