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result(s) for
"Kaza, Niroop"
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Use of ferrets for electrophysiologic monitoring of ion transport
by
Cadillac, Joan M.
,
Kaza, Niroop
,
Tang, Liping
in
Anatomy
,
Anesthesiology
,
Animal experimentation
2017
Limited success achieved in translating basic science discoveries into clinical applications for chronic airway diseases is attributed to differences in respiratory anatomy and physiology, poor approximation of pathologic processes, and lack of correlative clinical endpoints between humans and laboratory animal models. Here, we discuss advantages of using ferrets (Mustela putorus furo) as a model for improved understanding of human airway physiology and demonstrate assays for quantifying airway epithelial ion transport in vivo and ex vivo, and establish air-liquid interface cultures of ferret airway epithelial cells as a complementary in vitro model for mechanistic studies. We present data here that establishes the feasibility of measuring these human disease endpoints in ferrets. Briefly, potential difference across the nasal and the lower airway epithelium in ferrets could be consistently assessed, were highly reproducible, and responsive to experimental interventions. Additionally, ferret airway epithelial cells were amenable to primary cell culture methods for in vitro experiments as was the use of ferret tracheal explants as an ex vivo system for assessing ion transport. The feasibility of conducting multiple assessments of disease outcomes supports the adoption of ferrets as a highly relevant model for research in obstructive airway diseases.
Journal Article
BNIP3 Regulates AT101 (-)-Gossypol Induced Death in Malignant Peripheral Nerve Sheath Tumor Cells
by
Kaza, Niroop
,
Carroll, Steven L.
,
Graham, Christopher D.
in
Antineoplastic Agents, Phytogenic - pharmacology
,
Antineoplastic Agents, Phytogenic - therapeutic use
,
Apoptosis
2014
Malignant peripheral nerve sheath tumors (MPNSTs) are aggressive Schwann cell-derived sarcomas and are the leading cause of mortality in patients with neurofibromatosis type 1 (NF1). Current treatment modalities have been largely ineffective, resulting in a high rate of MPNST recurrence and poor five-year patient survival. This necessitates the exploration of alternative chemotherapeutic options for MPNST patients. This study sought to assess the cytotoxic effect of the BH3-mimetic AT101 [(-)-gossypol] on MPNST cells in vitro and to identify key regulators of AT101-induced MPNST cell death. We found that AT101 caused caspase-independent, non-apoptotic MPNST cell death, which was accompanied by autophagy and was mediated through HIF-1α induced expression of the atypical BH3-only protein BNIP3. These effects were mediated by intracellular iron chelation, a previously unreported mechanism of AT101 cytotoxicity.
Journal Article
Effects of Cellular Methylation on Transgene Expression and Site-Specific Integration of Adeno-Associated Virus
2017
DNA methylation is a major epigenetic event that affects not only cellular gene expression but that also has the potential to influence bacterial and viral DNA in their host-dependent functions. Adeno-associated virus (AAV) genome contains a high degree of CpG sequences capable of methylation in its terminal repeat sequences, which are the sole elements retained in AAV-based vectors used in gene therapy. The present study determined the influence of methylation status of the host cell on wild type (wt) AAV integration and recombinant (r) AAV transgene expression in HeLa cells. Results of the study indicated that hypo-methylation significantly enhanced both wtAAV chromosomal integration and transgene expression of rAAV. A direct influence of methylation on AAV integration was further confirmed by methylating the AAVS1 integration sites prior to viral infection with DNA trans-complementation assay. These results signify the importance of epigenetic status of target cells as one of the key factors in long-term transgene expression in AAV gene therapy.
Journal Article
BNIP3 regulates AT101 (-)-gossypol induced death in malignant peripheral nerve sheath tumor cells
2014
Malignant peripheral nerve sheath tumors (MPNSTs) are aggressive Schwann cell-derived sarcomas and are the leading cause of mortality in patients with neurofibromatosis type 1 (NF1). Current treatment modalities have been largely ineffective, resulting in a high rate of MPNST recurrence and poor five-year patient survival. This necessitates the exploration of alternative chemotherapeutic options for MPNST patients. This study sought to assess the cytotoxic effect of the BH3-mimetic AT101 [(-)-gossypol] on MPNST cells in vitro and to identify key regulators of AT101-induced MPNST cell death. We found that AT101 caused caspase-independent, non-apoptotic MPNST cell death, which was accompanied by autophagy and was mediated through HIF-1α induced expression of the atypical BH3-only protein BNIP3. These effects were mediated by intracellular iron chelation, a previously unreported mechanism of AT101 cytotoxicity.Malignant peripheral nerve sheath tumors (MPNSTs) are aggressive Schwann cell-derived sarcomas and are the leading cause of mortality in patients with neurofibromatosis type 1 (NF1). Current treatment modalities have been largely ineffective, resulting in a high rate of MPNST recurrence and poor five-year patient survival. This necessitates the exploration of alternative chemotherapeutic options for MPNST patients. This study sought to assess the cytotoxic effect of the BH3-mimetic AT101 [(-)-gossypol] on MPNST cells in vitro and to identify key regulators of AT101-induced MPNST cell death. We found that AT101 caused caspase-independent, non-apoptotic MPNST cell death, which was accompanied by autophagy and was mediated through HIF-1α induced expression of the atypical BH3-only protein BNIP3. These effects were mediated by intracellular iron chelation, a previously unreported mechanism of AT101 cytotoxicity.
Journal Article
Mechanisms of AT101 (-)-gossypol induced cytotoxicity in malignant peripheral nerve sheath tumors
by
Kaza, Niroop
in
Pathology
2014
Malignant peripheral nerve sheath tumors (MPNSTs) are aggressive Schwann cell-derived sarcomas and are the leading cause of mortality in patients with neurofibromatosis type 1 (NF1). Current treatment modalities have been largely ineffective resulting in a high rate of MPNST recurrence and poor five year patient survival. This necessitates the exploration of alternative chemotherapeutic options for MPNST patients. By evading apoptosis and utilizing protective mechanisms such as autophagy, cancer cells develop resistance to chemo- and radio-therapy. The overall goal of my thesis studies is to evaluate chemotherapeutic agents that can modulate both apoptosis and autophagy, thus target both cell death pathways and cell survival mechanisms. BH3 mimetics are a novel class of drugs that can induce both apoptosis and autophagy and thus can be effective in MPNST therapy. My studies elucidate the cytotoxic mechanisms of AT101 [(-)-gossypol], a BH3 mimetic, in MPNSTs and further identify key modulators and pathways involved. These studies aim to advance the current knowledge about this new drug and how to harness its cytotoxic capabilities to formulate effective chemotherapy for MPNSTs. Since MPNSTs overexpress anti-apoptotic BCL2 proteins which mediate resistance to chemotherapy, my studies sought to assess the effect of the AT101 on MPNST cells in vitro. My studies demonstrate that AT101 caused caspase-independent MPNST cell death, which was mediated in part by cytotoxic autophagy and HIF-1α induced expression of the atypical BH3-only protein BNIP3. These effects were mediated by intracellular iron chelation, a previously unreported mechanism of AT101 cytotoxicity. Additionally, I also found that AT101 could modulate the CXCL12/CXCR4 autocrine signaling axis in MPNSTs. Recent studies have shown that MPNST cells express CXCL12 and utilize it in an autocrine fashion to promote survival and proliferation. Therefore, the CXCL12-CXCR4 signaling pathway is a viable target for chemotherapy in MPNSTs. My studies also demonstrate that by suppressing CXCL12 expression and downregulating its downstream mediators, cyclin D1 and β-catenin, AT101 can significantly inhibit proliferation of MPNST cells. These novel properties of AT101 along with its significant effect on MPNST cell proliferation and cell death suggest that it may be particularly effective in these hard to treat tumors.
Dissertation