Jacqueline M. Kraveka
Medical University of South Carolina
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Featured researches published by Jacqueline M. Kraveka.
Journal of Biological Chemistry | 2007
Jacqueline M. Kraveka; Li Li; Zdzislaw M. Szulc; Jacek Bielawski; Besim Ogretmen; Yusuf A. Hannun; Lina M. Obeid; Alicja Bielawska
The role of dihydroceramide desaturase as a key enzyme in the de novo pathway of ceramide generation was investigated in human neuroblastoma cells (SMS-KCNR). A novel assay using water-soluble analogs of dihydroceramide, dihydroceramidoids (d-erythro-dhCCPS analogs), was used to measure desaturase activity in situ. Conversion of d-erythro-2-N-[12′-(1″-pyridinium)-dodecanoyl]-4,5-dihydrosphingosine bromide (C12-dhCCPS) to its 4,5-desaturated counterpart, d-erythro-2-N-[12′-(1″-pyridinium)dodecanoyl]sphingosine bromide (C12-CCPS), was determined by liquid chromatography/mass spectrometry analysis. The validity of the assay was confirmed using C8-cyclopropenylceramide, a competitive inhibitor of dihydroceramide desaturase. A human homolog (DEGS-1) of the Drosophila melanogaster des-1 gene was recently identified and reported to have desaturase activity. Transfection of SMS-KCNR cells with small interfering RNA to DEGS-1 significantly blocked the conversion of C12-dhCCPS to C12-CCPS. The associated accumulation of endogenous dihydroceramides confirmed DEGS-1 as the main active dihydroceramide desaturase in these cells. The partial loss of DEGS-1 inhibited cell growth, with cell cycle arrest at G0/G1. This was accompanied by a significant decrease in the amount of phosphorylated retinoblastoma protein. This hypophosphorylation was inhibited by tautomycin and not by okadaic acid, suggesting the involvement of protein phosphatase 1. Additionally, we found that treatment of SMS-KCNR cells with fenretinide inhibited desaturase activity in a dose-dependent manner. An increase in dihydroceramides (but not ceramides) paralleled this process as measured by liquid chromatography/mass spectrometry. There were no effects on the mRNA or protein levels of DEGS-1, suggesting that fenretinide acts at the post-translational level as an inhibitor of this enzyme. Tautomycin was also able to block the hypophosphorylation of the retinoblastoma protein observed upon fenretinide treatment. These findings suggest a novel biological function for dihydroceramides.
Journal of Biological Chemistry | 2001
Besim Ogretmen; Deborah Schady; Julnar Usta; Rachael Wood; Jacqueline M. Kraveka; Chiara Luberto; Helene Birbes; Yusuf A. Hannun; Lina M. Obeid
This study was designed to analyze whether ceramide, a bioeffector of growth suppression, plays a role in the regulation of telomerase activity in A549 cells. Telomerase activity was inhibited significantly by exogenous C6-ceramide, but not by the biologically inactive analog dihydro-C6-ceramide, in a time- and dose-dependent manner, with 85% inhibition produced by 20 μm C6-ceramide at 24 h. Moreover, analysis of phosphatidylserine translocation from the inner to the outer plasma membrane by flow cytometry and of poly(ADP-ribose) polymerase degradation by Western blotting showed that ceramide treatment (20 μm for 24 h) had no apoptotic effects. Trypan blue exclusion, [3H]thymidine incorporation, and cell cycle analyses, coupled with clonogenic cell survival assay on soft agar, showed that ceramide treatment with a 20 μmconcentration at 24 h resulted in the cell cycle arrest of the majority of the cell population at G0/G1 with no detectable cell death. These results suggest that the inhibition of telomerase by ceramide is not a consequence of cell death but is correlated with growth arrest. Next, to determine the role of endogenous ceramide in telomerase modulation, A549 cells were transiently transfected with an expression vector containing the full-length bacterial sphingomyelinase cDNA (b-SMase). The overexpression of b-SMase, but not exogenously applied purified b-SMase enzyme, resulted in significantly decreased telomerase activity compared with controls, showing that the increased endogenous ceramide is sufficient for telomerase inhibition. Moreover, treatment of A549 cells with daunorubicin at 1 μm for 6 h resulted in the inhibition of telomerase, which correlated with the elevation of endogenous ceramide levels and growth arrest. Finally, stable overexpression of human glucosylceramide synthase, which attenuates ceramide levels by converting ceramide to glucosylceramide, prevented the inhibitory effects of C6-ceramide and daunorubicin on telomerase. Therefore, these results provide novel data showing for the first time that ceramide is a candidate upstream regulator of telomerase.
Journal of Clinical Oncology | 2005
Joseph H. Laver; Jacqueline M. Kraveka; Robert E. Hutchison; Myron Chang; James L. Kepner; Molly Schwenn; Nancy J. Tarbell; Sunil Desai; Sheila Weitzman; Howard J. Weinstein; Sharon B. Murphy
PURPOSE The Pediatric Oncology Group adopted a histology-based approach to non-Hodgkins lymphoma and treated patients with advanced large-cell lymphoma on a separate protocol (doxorubicin, vincristine, prednisone, 6-mercaptopurin, and methotrexate; APO regimen). In this study, we assessed the effects of an intense antimetabolite therapy alternating with APO on overall survival (OS) and event-free survival (EFS) and looked into biologic correlates. PATIENTS AND METHODS From December 1994 to April 2000, we enrolled 180 eligible pediatric patients with stage III/IV large-cell lymphoma (LCL); 90 patients were randomly assigned to the intermediate-dose methotrexate (IDM) and high-dose cytarabine (HiDAC) arm, 85 patients to the APO arm, and five patients directly to the APO arm by study design due to CNS involvement. Planned therapy duration was 12 months. RESULTS The 4-year EFS for all patients was 67.4% (SE, 4.2%), and OS was 80.1% (SE, 3.6%) without any significant difference between the two arms. The 4-year EFS and OS were 71.8% (SE, 6.1%) and 88.1% (SE, 4.4%), respectively, for patients with anaplastic large-cell lymphoma, and 63.8% (SE, 10.3%) and 70.3% (SE, 9.0%), respectively, for patients with diffuse large B-cell lymphoma. Only 11 patients required radiation (due to unresponsive bulky disease or CNS involvement). The IDM/HiDAC arm was associated with more toxicity. CONCLUSION The efficacy of incorporating IDM/HiDAC in the treatment plan of pediatric and adolescent patients with advanced-stage LCL was inconclusive as to its effect on EFS, regardless of the lymphoma phenotype. It cannot be excluded that with a higher number of patients, one treatment could prove superior and future studies will build on these data.
Journal of Biological Chemistry | 2011
Mehrdad Rahmaniyan; Robert W. Curley; Lina M. Obeid; Yusuf A. Hannun; Jacqueline M. Kraveka
The dihydroceramide desaturase (DES) enzyme is responsible for inserting the 4,5-trans-double bond to the sphingolipid backbone of dihydroceramide. We previously demonstrated that fenretinide (4-HPR) inhibited DES activity in SMS-KCNR neuroblastoma cells. In this study, we investigated whether 4-HPR acted directly on the enzyme in vitro. N-C8:0-d-erythro-dihydroceramide (C8-dhCer) was used as a substrate to study the conversion of dihydroceramide into ceramide in vitro using rat liver microsomes, and the formation of tritiated water after the addition of the tritiated substrate was detected and used to measure DES activity. NADH served as a cofactor. The apparent Km for C8-dhCer and NADH were 1.92 ± 0.36 μm and 43.4 ± 6.47 μm, respectively; and the Vmax was 3.16 ± 0.24 and 4.11 ± 0.18 nmol/min/g protein. Next, the effects of 4-HPR and its metabolites on DES activity were investigated. 4-HPR was found to inhibit DES in a dose-dependent manner. At 20 min, the inhibition was competitive; however, longer incubation times demonstrated the inhibition to be irreversible. Among the major metabolites of 4-HPR, 4-oxo-N-(4-hydroxyphenyl)retinamide (4-oxo-4-HPR) showed the highest inhibitory effect with substrate concentration of 0.5 μm, with an IC50 of 1.68 μm as compared with an IC50 of 2.32 μm for 4-HPR. N-(4-Methoxyphenyl)retinamide (4-MPR) and 4-Oxo-N-(4-methoxyphenyl)retinamide (4-oxo-4-MPR) had minimal effects on DES activity. A known competitive inhibitor of DES, C8-cyclopropenylceramide was used as a positive control. These studies define for the first time a direct in vitro target for 4-HPR and suggest that inhibitors of DES may be used as therapeutic interventions to regulate ceramide desaturation and consequent function.
Journal of Biological Chemistry | 2008
Junfei Jin; Qi Hou; Thomas D. Mullen; Youssef H. Zeidan; Jacek Bielawski; Jacqueline M. Kraveka; Alicja Bielawska; Lina M. Obeid; Yusuf A. Hannun; Yi-Te Hsu
Ceramide functions as an important second messenger in apoptosis signaling pathways. In this report, we show that treatment of NT-2 neuronal precursor cells with hypoxia/reoxygenation (H/R) resulted in ceramide up-regulation. This elevation in ceramide was primarily due to the actions of acid sphingomyelinase and ceramide synthase LASS 5, demonstrating the action of the salvage pathway. Hypoxia/reoxygenation treatment led to Bax translocation from the cytoplasm to mitochondria and cytochrome c release from mitochondria. Down-regulation of either acid sphingomyelinase or LASS 5-attenuated ceramide accumulation and H/R-induced Bax translocation to mitochondria. Overall, we have demonstrated that ceramide up-regulation following H/R is pertinent to Bax activation to promote cell death.
Neurochemical Research | 2002
Chiara Luberto; Jacqueline M. Kraveka; Yusuf A. Hannun
One of the characteristics of ceramide-mediated biology is the variety of biological outcomes observed in response to its intracellular accumulation. The molecular mechanisms that govern the cell “decision-making” in response to ceramide remain largely unclear. In this perspective, the study of neural models has begun to provide important insight into the understanding of these mechanisms that regulate differentiation and cell death. Indeed, differentiation and cell death are among the most common effects elicited by ceramide in most cell types and in neural cells, too. Therefore, the lessons we may learn from the study of ceramide regulation of neurobiology would also shed light on the regulation of ceramide-mediated biology in other cellular models. Since increasing evidence links aberrant metabolism of ceramide to different pathologies, the understanding of the mechanisms underlying these events may represent the key to the design of novel therapeutic approaches.
PLOS ONE | 2015
Giselle Saulnier Sholler; Eugene W. Gerner; Genevieve Bergendahl; Robert B. MacArthur; Alyssa VanderWerff; Takamaru Ashikaga; Jeffrey P. Bond; William Ferguson; William Roberts; Randal K. Wada; Don Eslin; Jacqueline M. Kraveka; Joel Kaplan; Deanna Mitchell; Nehal Parikh; Kathleen Neville; Leonard S. Sender; Timothy Higgins; Masao Kawakita; Kyoko Hiramatsu; Shun-suke Moriya; André S. Bachmann
Background Neuroblastoma (NB) is the most common cancer in infancy and most frequent cause of death from extracranial solid tumors in children. Ornithine decarboxylase (ODC) expression is an independent indicator of poor prognosis in NB patients. This study investigated safety, response, pharmacokinetics, genetic and metabolic factors associated with ODC in a clinical trial of the ODC inhibitor difluoromethylornithine (DFMO) ± etoposide for patients with relapsed or refractory NB. Methods and Findings Twenty-one patients participated in a phase I study of daily oral DFMO alone for three weeks, followed by additional three-week cycles of DFMO plus daily oral etoposide. No dose limiting toxicities (DLTs) were identified in patients taking doses of DFMO between 500-1500 mg/m2 orally twice a day. DFMO pharmacokinetics, single nucleotide polymorphisms (SNPs) in the ODC gene and urinary levels of substrates for the tissue polyamine exporter were measured. Urinary polyamine levels varied among patients at baseline. Patients with the minor T-allele at rs2302616 of the ODC gene had higher baseline levels (p=0.02) of, and larger decreases in, total urinary polyamines during the first cycle of DFMO therapy (p=0.003) and had median progression free survival (PFS) that was over three times longer, compared to patients with the major G allele at this locus although this last result was not statistically significant (p=0.07). Six of 18 evaluable patients were progression free during the trial period with three patients continuing progression free at 663, 1559 and 1573 days after initiating treatment. Median progression-free survival was less among patients having increased urinary polyamines, especially diacetylspermine, although this result was not statistically significant (p=0.056). Conclusions DFMO doses of 500-1500mg/m2/day are safe and well tolerated in children with relapsed NB. Children with the minor T allele at rs2302616 of the ODC gene with relapsed or refractory NB had higher levels of urinary polyamine markers and responded better to therapy containing DFMO, compared to those with the major G allele at this locus. These findings suggest that this patient subset may display dependence on polyamines and be uniquely susceptible to therapies targeting this pathway. Trial Registration Clinicaltrials.gov NCT#01059071
Molecular Cancer Therapeutics | 2012
Marisa Meyers-Needham; Jocelyn A. Lewis; Salih Gencer; R. David Sentelle; Sahar A. Saddoughi; Christopher J. Clarke; Yusuf A. Hannun; Haakan R Norell; Telma Martins da Palma; Michael I. Nishimura; Jacqueline M. Kraveka; Zohreh Khavandgar; Monzur Murshed; M. Ozgur Cevik; Besim Ogretmen
Sonic hedgehog (SHh) signaling is important in the pathogenesis of various human cancers, such as medulloblastomas, and it has been identified as a valid target for anticancer therapeutics. The SHh inhibitor cyclopamine induces apoptosis. The bioactive sphingolipid ceramide mediates cell death in response to various chemotherapeutic agents; however, ceramides roles/mechanisms in cyclopamine-induced apoptosis are unknown. Here, we report that cyclopamine mediates ceramide generation selectively via induction of neutral sphingomyelin phosphodiesterase 3, SMPD3 (nSMase2) in Daoy human medulloblastoma cells. Importantly, short interfering RNA-mediated knockdown of nSMase2 prevented cyclopamine-induced ceramide generation and protected Daoy cells from drug-induced apoptosis. Accordingly, ectopic wild-type N-SMase2 caused cell death, compared with controls, which express the catalytically inactive N-SMase2 mutant. Interestingly, knockdown of smoothened (Smo), a target protein for cyclopamine, or Gli1, a downstream signaling transcription factor of Smo, did not affect nSMase2. Mechanistically, our data showed that cyclopamine induced nSMase2 and cell death selectively via increased nitric oxide (NO) generation by neuronal-nitric oxide synthase (n-NOS) induction, in Daoy medulloblastoma, and multiple other human cancer cell lines. Knockdown of n-NOS prevented nSMase2 induction and cell death in response to cyclopamine. Accordingly, N-SMase2 activity-deficient skin fibroblasts isolated from homozygous fro/fro (fragilitas ossium) mice exhibited resistance to NO-induced cell death. Thus, our data suggest a novel off-target function of cyclopamine in inducing apoptosis, at least in part, by n-NOS/NO-dependent induction of N-SMase2/ceramide axis, independent of Smo/Gli inhibition. Mol Cancer Ther; 11(5); 1092–102. ©2012 AACR.
Molecular Cancer Therapeutics | 2015
Heather Venant; Mehrdad Rahmaniyan; E. Ellen Jones; Ping Lu; Michael B. Lilly; Elizabeth Garrett-Mayer; Richard R. Drake; Jacqueline M. Kraveka; Charles D. Smith; Christina Voelkel-Johnson
Despite recent advances in the development of novel therapies against castration-resistant prostate cancer, the advanced form of the disease remains a major treatment challenge. Aberrant sphingolipid signaling through sphingosine kinases and their product, sphingosine-1-phosphate, can promote proliferation, drug resistance, angiogenesis, and inflammation. The sphingosine kinase 2 inhibitor ABC294640 is undergoing clinical testing in cancer patients, and in this study we investigated the effects this first-in-class inhibitor in castration-resistant prostate cancer. In vitro, ABC294640 decreased prostate cancer cell viability as well as the expression of c-Myc and the androgen receptor, while lysosomal acidification increased. ABC294640 also induced a greater than 3-fold increase in dihydroceramides that inversely correlated with inhibition of dihydroceramide desaturase (DEGS) activity. Expression of sphingosine kinase 2 was dispensable for the ABC294640-mediated increase in dihydroceramides. In vivo, ABC294640 diminished the growth rate of TRAMP-C2 xenografts in syngeneic hosts and elevated dihydroceramides within tumors as visualized by MALDI imaging mass spectroscopy. The plasma of ABC294640-treated mice contained significantly higher levels of C16- and C24:1-ceramides (but not dihydro-C16-ceramide) compared with vehicle-treated mice. In summary, our results suggest that ABC294640 may reduce the proliferative capacity of castration-resistant prostate cancer cells through inhibition of both sphingosine kinase 2 and dihydroceramide desaturase, thereby providing a foundation for future exploration of this small-molecule inhibitor for the treatment of advanced disease. Mol Cancer Ther; 14(12); 2744–52. ©2015 AACR.
Biochemical Journal | 2010
Jolanta Idkowiak-Baldys; Aintzane Apraiz; Li Li; Mehrdad Rahmaniyan; Christopher J. Clarke; Jacqueline M. Kraveka; Aintzane Asumendi; Yusuf A. Hannun
Oxidative stress has been implicated previously in the regulation of ceramide metabolism. In the present study, its effects on dihydroceramide desaturase were investigated. To stimulate oxidative stress, HEK (human embyronic kidney)-293, MCF7, A549 and SMS-KCNR cells were treated with H2O2, menadione or tert-butylhydroperoxide. In all cell lines, an increase in dihydroceramide was observed upon oxidative stress as measured by LC (liquid chromatography)/MS. In contrast, total ceramide levels were relatively unchanged. Mechanistically, dihydroceramide desaturase activity was measured by an in situ assay and decreased in a time- and dose-dependent fashion. Interestingly, no detectable changes in the protein levels were observed, suggesting that oxidative stress does not induce degradation of dihydroceramide desaturase. In summary, oxidative stress leads to potent inhibition of dihydroceramide desaturase resulting in significant elevation in dihydroceramide levels in vivo.