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Updated: Jun 30, 2026

Site-Specific Lysine Lactylation via Genetic Code Expansion in E. coli and Mammalian Cells
Published on: February 24, 2026
Lactate metabolism and epigenetic reprogramming drive c-KIT hyperactivation to mediate Gilteritinib resistance:
Yanli Zhao1, Yubo Wang1, Ning Liu1
1The State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy, Nankai University, Tianjin 300071, China.
Abstract:
Kinase inhibitors targeting FLT3-ITD, such as Gilteritinib, have emerged as promising targeted therapies. However, recent clinical trials have shown disappointing overall survival (OS) outcomes in acute myeloid leukemia (AML) patients, primarily due to disease recurrence following treatment. We uncovered a potential mechanism underlying Gilteritinib resistance. Gilteritinib treatment induced reprogramming of lactic acid metabolism in AML cells, leading to increased H3K27 lactylation that continuously amplified c-KIT expression and signaling in AML cells. This mechanism enriched leukemia stem cells (LSCs), driving drug resistance and disease relapse. Notably, c-KIT kinase inhibitors failed to effectively counteract the progression of relapsed and refractory AML, as c-KIT overexpression results in amplification of its signaling. To address this issue, a dual degrader targeting both FLT3-ITD and c-KIT was identified. Beyond exhibiting stronger efficacy than Gilteritinib in inhibiting AML cell proliferation, this PROTAC also demonstrates a significant ability to induce cell differentiation. In cell line-derived xenograft (CDX) models, the degrader significantly suppressed FLT3-ITD+ AML recurrence and prolonged the survival of experimental mice. Furthermore, in PDX model established using AML cells from Gilteritinib-resistant patients, the degrader showed significantly superior therapeutic efficacy compared to the combination treatment of Gilteritinib and Imatinib. As a candidate drug molecule, this degrader exhibits promising potential for clinical translation.
Insights
Gilteritinib resistance in acute myeloid leukemia (AML) is linked to lactic acid metabolism and c-KIT amplification. A novel dual degrader targeting FLT3-ITD and c-KIT shows promise in overcoming resistance and improving survival in AML.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- FLT3-ITD inhibitors like Gilteritinib show limited overall survival in acute myeloid leukemia (AML) due to disease recurrence.
- Gilteritinib resistance may stem from induced lactic acid metabolism, increasing H3K27 lactylation, c-KIT expression, and leukemia stem cell enrichment.
Purpose of the Study:
- To elucidate the mechanism of Gilteritinib resistance in AML.
- To identify and evaluate a novel therapeutic strategy to overcome Gilteritinib resistance.
Main Methods:
- Investigated the metabolic reprogramming and signaling pathways in AML cells.
- Developed and tested a dual degrader targeting FLT3-ITD and c-KIT in vitro and in vivo models.
- Utilized cell line-derived xenograft (CDX) and patient-derived xenograft (PDX) models.
Main Results:
- Gilteritinib treatment induced lactic acid metabolism, H3K27 lactylation, and c-KIT amplification, driving resistance and relapse.
- A novel dual degrader targeting FLT3-ITD and c-KIT demonstrated superior efficacy over Gilteritinib in inhibiting AML proliferation and inducing differentiation.
- The dual degrader suppressed AML recurrence in CDX models and showed superior therapeutic efficacy in a Gilteritinib-resistant PDX model compared to Gilteritinib plus Imatinib.
Conclusions:
- Targeting lactic acid metabolism and c-KIT amplification is crucial for overcoming Gilteritinib resistance in AML.
- The developed dual degrader represents a promising therapeutic candidate for relapsed and refractory AML, with potential for clinical translation.
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