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Secondary mutations as mediators of resistance to targeted therapy in leukemia
Naval Daver1, Jorge Cortes1, Farhad Ravandi1
1Department of Leukemia and.
Abstract:
The advent of small molecule-based targeted therapy has improved the treatment of both acute and chronic leukemias. Resistance to small molecule inhibitors has emerged as a common theme. The most frequent mode of acquired resistance is the acquisition of point mutations in the kinase domain. FLT3 inhibitors have improved response rates in FLT3-mutated acute myeloid leukemia (AML). The occurrence of the ATP-binding site and activation loop mutations confers varying degrees of resistance to the individual FLT3 inhibitors. Second-generation FLT3 inhibitors such as crenolanib may overcome the resistance of these mutations. Furthermore, nonmutational mechanisms of resistance such as prosurvival pathways and bone marrow signaling may be upregulated in FLT3 inhibitor-resistant AML with secondary kinase domain mutations. More recently, point mutations conferring resistance to the Bruton tyrosine kinase inhibitor ibrutinib in chronic lymphocytic leukemia, arsenic trioxide in acute promyelocytic leukemia, and the BH3-mimetic ABT199 in lymphoma have been identified. In chronic myeloid leukemia, the emergence of tyrosine kinase domain mutations has historically been the dominant mechanism of resistance. The early identification of secondary point mutations and their downstream effects along with the development of second- or third-generation inhibitors and rationally designed small molecule combinations are potential strategies to overcome mutation-mediated resistance.
Insights
Targeted therapies for leukemia show promise, but resistance often develops through mutations. New strategies, including next-generation inhibitors and drug combinations, are crucial for overcoming this resistance in leukemia treatment.
Area of Science:
- Hematology
- Oncology
- Pharmacology
Background:
- Small molecule targeted therapy has advanced leukemia treatment.
- Acquired resistance, primarily through kinase domain point mutations, is a significant challenge.
- FLT3 inhibitors show efficacy in FLT3-mutated acute myeloid leukemia (AML), but resistance occurs.
Purpose of the Study:
- To review mechanisms of resistance to small molecule inhibitors in leukemia.
- To explore strategies for overcoming mutation-mediated resistance.
- To highlight the role of second-generation inhibitors and drug combinations.
Main Methods:
- Literature review of resistance mechanisms in various leukemias.
- Analysis of mutation types and their impact on inhibitor efficacy.
- Discussion of non-mutational resistance pathways.
Main Results:
- Point mutations in the kinase domain are a frequent cause of resistance.
- Specific mutations confer varying resistance to FLT3 inhibitors, with second-generation inhibitors like crenolanib showing potential.
- Non-mutational mechanisms, including prosurvival pathways, can also drive resistance.
- Resistance mutations have been identified for other targeted therapies, including ibrutinib, arsenic trioxide, and ABT199.
Conclusions:
- Mutation-mediated resistance is a critical hurdle in targeted leukemia therapy.
- Early identification of resistance mutations and development of next-generation inhibitors are key.
- Combination therapies and understanding non-mutational resistance are vital for sustained treatment efficacy.
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