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Targeting BCL-2 in B-cell malignancies and overcoming therapeutic resistance
Isha Kapoor1, Juraj Bodo2, Brian T Hill3
1Department of Cancer Biology, Lerner Research Institute, Cleveland, OH, USA.
Abstract:
Defects in apoptosis can promote tumorigenesis and impair responses of malignant B cells to chemotherapeutics. Members of the B-cell leukemia/lymphoma-2 (BCL-2) family of proteins are key regulators of the intrinsic, mitochondrial apoptotic pathway. Overexpression of antiapoptotic BCL-2 family proteins is associated with treatment resistance and poor prognosis. Thus, inhibition of BCL-2 family proteins is a rational therapeutic option for malignancies that are dependent on antiapoptotic BCL-2 family proteins. Venetoclax (ABT-199, GDC-0199) is a highly selective BCL-2 inhibitor that represents the first approved agent of this class and is currently widely used in the treatment of chronic lymphocytic leukemia (CLL) as well as acute myeloid leukemia (AML). Despite impressive clinical activity, venetoclax monotherapy for a prolonged duration can lead to drug resistance or loss of dependence on the targeted protein. In this review, we provide an overview of the mechanism of action of BCL-2 inhibition and the role of this approach in the current treatment paradigm of B-cell malignancies. We summarize the drivers of de novo and acquired resistance to venetoclax that are closely associated with complex clonal shifts, interplay of expression and interactions of BCL-2 family members, transcriptional regulators, and metabolic modulators. We also examine how tumors initially resistant to venetoclax become responsive to it following prior therapies. Here, we summarize preclinical data providing a rationale for efficacious combination strategies of venetoclax to overcome therapeutic resistance by a targeted approach directed against alternative antiapoptotic BCL-2 family proteins (MCL-1, BCL-xL), compensatory prosurvival pathways, epigenetic modifiers, and dysregulated cellular metabolism/energetics for durable clinical remissions.
Insights
Defects in apoptosis promote cancer. BCL-2 inhibitors like venetoclax treat B-cell malignancies but can cause resistance. Combination therapies may overcome this resistance for lasting remission.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Defects in apoptosis contribute to cancer development and chemotherapy resistance in malignant B cells.
- The B-cell leukemia/lymphoma-2 (BCL-2) protein family regulates apoptosis; overexpressing antiapoptotic members correlates with poor prognosis.
- Venetoclax, a selective BCL-2 inhibitor, is approved for chronic lymphocytic leukemia and acute myeloid leukemia, but prolonged use can lead to resistance.
Purpose of the Study:
- To review the mechanism of BCL-2 inhibition in B-cell malignancies.
- To summarize resistance mechanisms to venetoclax.
- To explore combination strategies to overcome venetoclax resistance.
Main Methods:
- Review of existing literature on BCL-2 inhibition and venetoclax.
- Analysis of mechanisms driving de novo and acquired resistance.
- Examination of preclinical data for combination therapies.
Main Results:
- Venetoclax resistance is linked to clonal shifts, BCL-2 family interactions, transcriptional regulators, and metabolic changes.
- Tumors can regain sensitivity to venetoclax after prior therapies.
- Combination strategies targeting MCL-1, BCL-xL, or metabolic pathways show promise.
Conclusions:
- BCL-2 inhibition is a key strategy for B-cell malignancies.
- Understanding resistance mechanisms is crucial for effective treatment.
- Combination therapies offer a path toward durable remissions in B-cell cancers.
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