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Jessica Anderson

Publications and source records attributed to Jessica Anderson.

3 recordsLinked to original sources

Bcl2's flexible loop domain regulates p53 binding and survival.

p53 not only functions as a transcription factor but also has a direct, apoptogenic role at the mitochondria. We have discovered that DNA damage-induced p53-Bcl2 binding is associated with decreased Bcl2-Bax interaction and increased apoptotic cell death in a mechanism regulated by Bcl2's flexible loop regulatory domain (FLD), since purified p53 protein can disrupt the Bcl2/Bax complex by directly binding to a negative regulatory region of the FLD (amino acids [aa] 32 to 68). Deletion of the negative regulatory region (Delta32-68) abolishes Bcl2-p53 binding and enhances Bcl2's antiapoptotic function. Conversely, removal of a positive regulatory region (aa 69 to 87) of the FLD, which contains the Bcl2 phosphorylation site(s) T69, S70, and S87, enhances Bcl2-p53 binding and significantly abrogates Bcl2's survival activity. The phospho-mimetic T69E/S70E/S87E (EEE) but not the nonphosphorylatable T69A/S70A/S87A (AAA) Bcl2 mutant displays a reduced capacity to bind p53 and potently inhibits p53-induced cytochrome c release from isolated mitochondria. Furthermore, the FLD-only aa32-87 and aa32-68 peptides but not the aa69-87 peptide can directly bind p53 in vitro. p53-induced cytochrome c release occurs through a mechanism involving Bax's integral insertion into the outer mitochondrial membrane. Either DNA damage to cells or expression of p53 selectively targeted to the mitochondria results in Bcl2-p53 binding followed by exposure of Bcl2's BH3 domain in association with inactivation of Bcl2's antiapoptotic function, indicating a conformational change in Bcl2 can occur upon direct ligation of p53. Thus, Bcl2's FLD contains both positive and negative regulatory regions which functionally regulate Bcl2's antiapoptotic activity by affecting Bax or p53 binding.

Animals↗

Risk factors and kinetics of thrombocytopenia associated with bortezomib for relapsed, refractory multiple myeloma.

Bortezomib, a proteasome inhibitor with efficacy in multiple myeloma, is associated with thrombocytopenia, the cause and kinetics of which are different from those of standard cytotoxic agents. We assessed the frequency, kinetics, and mechanism of thrombocytopenia following treatment with bortezomib 1.3 mg/m2 in 228 patients with relapsed and/or refractory myeloma in 2 phase 2 trials. The mean platelet count decreased by approximately 60% during treatment but recovered rapidly between treatments in a cyclic fashion. Among responders, the pretreatment platelet count increased significantly during subsequent cycles of therapy. The mean percent reduction in platelets was independent of baseline platelet count, M-protein concentration, and marrow plasmacytosis. Plasma thrombopoietin levels inversely correlated with platelet count. Murine studies demonstrated a reduction in peripheral platelet count following a single bortezomib dose without negative effects on megakaryocytic cellularity, ploidy, or morphology. These data suggest that bortezomib-induced thrombocytopenia is due to a reversible effect on megakaryocytic function rather than a direct cytotoxic effect on megakaryocytes or their progenitors. The exact mechanism underlying bortezomib-induced thrombocytopenia remains unknown but it is unlikely to be related to marrow injury or decreased thrombopoietin production.

Adult↗

Bortezomib in recurrent and/or refractory multiple myeloma. Initial clinical experience in patients with impared renal function.

BACKGROUND: Bortezomib is a potent, reversible proteasome inhibitor that has been approved for the treatment of recurrent and/or refractory multiple myeloma, but its activity in patients with renal impairment has not been studied to date. METHODS: Response rates, safety, and 20S proteasome activity were assessed in relation to baseline creatinine clearance (CrCl) among patients with recurrent and/or refractory myeloma (n = 256 patients) who were treated with bortezomib in 2 Phase II trials. Bortezomib was administered by intravenous bolus on Days 1, 4, 8, and 11 of a 21-day cycle at 2 doses, 1.0 mg/m2 (n = 28 patients) and 1.3 mg/m2 (n = 228 patients). RESULTS: Of 10 patients with CrCl < or = 30 mL/minute, 7 patients completed the protocol-specified 8 cycles of treatment; 4 patients received the 1.3 mg/m2 bortezomib dose, and 3 patients received the 1.0 mg/m2 bortezomib dose. Using the European Group for Blood and Marrow Transplantation criteria, responses were assigned by an independent committee to 3 of the 10 patients (2 partial responses and 1 minimal response), a response rate similar to that of the overall treated population. Patients with CrCl > 80 mL/minute (n = 105 patients), 51-80 mL/minute (n = 99 patients), and < or = 50 mL/minute (n = 52 patients) had similar rates of discontinuation and similar adverse event profiles. Renal function did not appear to affect the 1-hour postdose proteasome inhibition or its recovery. CONCLUSIONS: Clinical experience in a limited number of patients with impaired renal function suggests that bortezomib provides clinical benefit with manageable toxicities in this high-risk population.

Adult↗