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1.
Blood ; 137(2): 185-189, 2021 01 14.
Article in English | MEDLINE | ID: mdl-33259596

ABSTRACT

Vaccinations are effective in preventing infections; however, it is unknown if patients with chronic lymphocytic leukemia (CLL) who are treatment naïve (TN) or receiving Bruton tyrosine kinase inhibitors (BTKi's) respond to novel adjuvanted vaccines. Understanding the effect of BTKi's on humoral immunity is timely because BTKi's are widely used and vaccination against coronavirus disease 2019 is urgently needed. In 2 open-label, single-arm clinical trials, we measured the effect of BTKi's on de novo immune response against recombinant hepatitis B vaccine (HepB-CpG) and recall response against recombinant zoster vaccine (RZV) in CLL patients who were TN or on BTKi. The primary end point was serologic response to HepB-CpG (anti-hepatitis B surface antibodies ≥10 mIU/mL) and RZV (≥fourfold increase in anti-glycoprotein E). The response rate to HepB-CpG was lower in patients on BTKi (3.8%; 95% confidence interval [CI], 0.7-18.9) than patients who were TN (28.1%; 95% CI, 15.6-45.4; P = .017). In contrast, the response rate to RZV did not differ significantly between the BTKi (41.5%; 95% CI, 27.8-56.6) and TN cohorts (59.1%; 95% CI, 38.7-76.7; P = .2). BTKi's were associated with a decreased de novo immune response following HepB-CpG, whereas recall immune response following RZV was not significantly affected by BTKi therapy. These trials were registered at www.clinicaltrials.gov as #NCT03685708 (Hep-CpG) and #NCT03702231 (RZV).


Subject(s)
Hepatitis B Vaccines/immunology , Herpes Zoster Vaccine/immunology , Immunity , Leukemia, Lymphocytic, Chronic, B-Cell/immunology , Protein Kinase Inhibitors/adverse effects , Vaccines, Synthetic/immunology , Adjuvants, Immunologic , Agammaglobulinaemia Tyrosine Kinase/antagonists & inhibitors , Aged , Female , Humans , Leukemia, Lymphocytic, Chronic, B-Cell/drug therapy , Male , Middle Aged , Patient Outcome Assessment , Protein Kinase Inhibitors/pharmacology , Protein Kinase Inhibitors/therapeutic use , Vaccination
2.
Clin Cancer Res ; 23(11): 2831-2841, 2017 Jun 01.
Article in English | MEDLINE | ID: mdl-27903679

ABSTRACT

Purpose: Acalabrutinib (ACP-196) is a novel, potent, and highly selective Bruton tyrosine kinase (BTK) inhibitor, which binds covalently to Cys481 in the ATP-binding pocket of BTK. We sought to evaluate the antitumor effects of acalabrutinib treatment in two established mouse models of chronic lymphocytic leukemia (CLL).Experimental Design: Two distinct mouse models were used, the TCL1 adoptive transfer model where leukemic cells from Eµ-TCL1 transgenic mice are transplanted into C57BL/6 mice, and the human NSG primary CLL xenograft model. Mice received either vehicle or acalabrutinib formulated into the drinking water.Results: Utilizing biochemical assays, we demonstrate that acalabrutinib is a highly selective BTK inhibitor as compared with ibrutinib. In the human CLL NSG xenograft model, treatment with acalabrutinib demonstrated on-target effects, including decreased phosphorylation of PLCγ2, ERK, and significant inhibition of CLL cell proliferation. Furthermore, tumor burden in the spleen of the mice treated with acalabrutinib was significantly decreased compared with vehicle-treated mice. Similarly, in the TCL1 adoptive transfer model, decreased phosphorylation of BTK, PLCγ2, and S6 was observed. Most notably, treatment with acalabrutinib resulted in a significant increase in survival compared with mice receiving vehicle.Conclusions: Treatment with acalabrutinib potently inhibits BTK in vivo, leading to on-target decreases in the activation of key signaling molecules (including BTK, PLCγ2, S6, and ERK). In two complementary mouse models of CLL, acalabrutinib significantly reduced tumor burden and increased survival compared with vehicle treatment. Overall, acalabrutinib showed increased BTK selectivity compared with ibrutinib while demonstrating significant antitumor efficacy in vivo on par with ibrutinib. Clin Cancer Res; 23(11); 2831-41. ©2016 AACR.


Subject(s)
Benzamides/administration & dosage , Leukemia, Lymphocytic, Chronic, B-Cell/drug therapy , Protein-Tyrosine Kinases/antagonists & inhibitors , Proto-Oncogene Proteins/genetics , Pyrazines/administration & dosage , Adenine/analogs & derivatives , Adoptive Transfer/methods , Agammaglobulinaemia Tyrosine Kinase , Animals , Antineoplastic Combined Chemotherapy Protocols/administration & dosage , Apoptosis/drug effects , Disease Models, Animal , Humans , Leukemia, Lymphocytic, Chronic, B-Cell/genetics , Leukemia, Lymphocytic, Chronic, B-Cell/pathology , Mice , Mice, Transgenic , Piperidines , Protein Kinase Inhibitors/administration & dosage , Protein-Tyrosine Kinases/genetics , Pyrazoles/administration & dosage , Pyrimidines/administration & dosage , Xenograft Model Antitumor Assays
4.
Semin Oncol ; 43(2): 222-32, 2016 Apr.
Article in English | MEDLINE | ID: mdl-27040700

ABSTRACT

In the last decade our understanding of chronic lymphocytic leukemia (CLL) biology and pathogenesis has increased substantially. These insights have led to the development of several new agents with novel mechanisms of action prompting a change in therapeutic approaches from chemotherapy-based treatments to targeted therapies. Multiple preclinical models for drug development in CLL are available; however, with the advent of these targeted agents, it is becoming clear that not all models and surrogate readouts of efficacy are appropriate for all drugs. In this review we discuss in vitro and in vivo preclinical models, with a particular focus on the benefits and possible pitfalls of different model systems in the evaluation of novel therapeutics for the treatment of CLL.


Subject(s)
Antineoplastic Agents/pharmacology , Antineoplastic Agents/therapeutic use , Leukemia, Lymphocytic, Chronic, B-Cell/drug therapy , Leukemia, Lymphocytic, Chronic, B-Cell/pathology , Animals , Animals, Genetically Modified , Disease Models, Animal , Dogs , Drug Evaluation, Preclinical/methods , Humans , In Vitro Techniques , Leukemia, Lymphocytic, Chronic, B-Cell/etiology , Mice , Tumor Microenvironment , Xenograft Model Antitumor Assays
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