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Published on: January 7, 2019
Development and characterization of prototypes for in vitro and in vivo mouse models of ibrutinib-resistant CLL
Burcu Aslan1, Gorkem Kismali1, Lisa S Chen1
1Department of Experimental Therapeutics.
Abstract:
Although ibrutinib improves the overall survival of patients with chronic lymphocytic leukemia (CLL), some patients still develop resistance, most commonly through point mutations affecting cysteine residue 481 (C481) in Bruton's tyrosine kinase (BTKC481S and BTKC481R). To enhance our understanding of the biological impact of these mutations, we established cell lines that overexpress wild-type or mutant BTK in in vitro and in vivo models that mimic ibrutinib-sensitive and -resistant CLL. MEC-1 cell lines stably overexpressing wild-type or mutant BTK were generated. All cell lines coexpressed GFP, were CD19+ and CD23+, and overexpressed BTK. Overexpression of wild-type or mutant BTK resulted in increased signaling, as evidenced by the induction of p-BTK, p-PLCγ2, and p-extracellular signal-related kinase (ERK) levels, the latter further augmented upon IgM stimulation. In all cell lines, cell cycle profiles and levels of BTK expression were similar, but the RNA sequencing and reverse-phase protein array results revealed that the molecular transcript and protein profiles were distinct. To mimic aggressive CLL, we created xenograft mouse models by transplanting the generated cell lines into Rag2-/-γc-/- mice. Spleens, livers, bone marrow, and peripheral blood were collected. All mice developed CLL-like disease with systemic involvement (engraftment efficiency, 100%). We observed splenomegaly, accumulation of leukemic cells in the spleen and liver, and macroscopically evident necrosis. CD19+ cells accumulated in the spleen, bone marrow, and peripheral blood. The overall survival duration was slightly lower in mice expressing mutant BTK. Our cell lines and murine models mimicking ibrutinib-resistant CLL will serve as powerful tools to test reversible BTK inhibitors and novel, non-BTK-targeted therapeutics.
Insights
New cell lines and mouse models of chronic lymphocytic leukemia (CLL) mimic ibrutinib resistance caused by Bruton's tyrosine kinase (BTK) mutations. These models will aid in testing new therapies for resistant CLL.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- Ibrutinib is effective for chronic lymphocytic leukemia (CLL), but resistance emerges, often due to Bruton's tyrosine kinase (BTK) C481 mutations.
- Understanding the biological impact of BTK mutations is crucial for developing new therapeutic strategies.
Purpose of the Study:
- To establish and characterize in vitro and in vivo models of ibrutinib-resistant CLL using cell lines overexpressing wild-type or mutant BTK.
- To investigate the molecular and cellular consequences of BTK mutations in CLL.
Main Methods:
- Generated MEC-1 cell lines overexpressing wild-type or mutant BTK (C481S, C481R) and confirmed BTK overexpression and CLL markers (CD19+, CD23+).
- Assessed signaling pathways (p-BTK, p-PLCγ2, p-ERK) and molecular profiles (RNA sequencing, RPPA) in cell lines.
- Created xenograft mouse models by transplanting cell lines into Rag2-/-γc-/- mice to mimic aggressive CLL.
Main Results:
- Overexpression of wild-type or mutant BTK increased signaling pathways, with distinct molecular profiles observed despite similar cell cycle and BTK expression levels.
- All mouse models developed systemic CLL-like disease with splenomegaly, leukemic cell accumulation, and necrosis.
- Mice with mutant BTK expression showed slightly reduced overall survival.
Conclusions:
- Established cell lines and murine models accurately mimic ibrutinib-resistant CLL.
- These models provide valuable tools for evaluating novel therapeutics, including reversible BTK inhibitors and non-BTK-targeted agents.

