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The tyrosine kinase inhibitor LPM4870108 impairs learning and memory and induces transcriptomic and gene‑specific DNA
Sijin Duan1, Chunmei Li1, Yonglin Gao2,3
1School of Pharmacy, Key Laboratory of Molecular Pharmacology and Drug Evaluation (Yantai University), Ministry of Education, Collaborative Innovation Center of Advanced Drug Delivery System and Biotech Drugs in Universities of Shandong, Yantai University, Yantai, 264005, People's Republic of China.
Abstract:
Tyrosine kinase inhibitors (TKIs), which have been developed and approved for cancer treatment in the last few years, are involved in synaptic plasticity of learning and memory. Epigenetic modifications also play crucial roles in the process of learning and memory, but its relationship with TKI-induced learning and memory impairment has not been investigated. We hypothesized that LPM4870108, an effective anti-cancer Trk inhibitor, might affect the learning and memory via epigenetic modifications. In this study, rats were orally administered with LPM4870108 (0, 1.25, 2.5, or 5.0 mg/kg) twice daily for 28 days, after which animals were subjected to a Morris water maze test. LPM4870108 exposure caused learning and memory impairments in this test in a dose-dependent manner and reduced the spine densities. Whole-genome transcriptomic analysis revealed significant differences in the patterns of hippocampal gene expression in LPM4870108-treated rats. These transcriptomic data were combined with next-generation bisulfite sequencing analysis, after which RT-PCR and pyrosequencing were conducted, revealing epigenetic alterations associated with genes (Snx8, Fgfr1, Dusp4, Vav2, and Satb2) known to regulate learning and memory. Increased mRNA and protein expression levels of hippocampal Dnmt1 and Dnmt3a were also observed in these rats. Overall, these data suggest that gene-specific alterations in patterns of DNA methylation can potentially contribute to the incidence of learning and memory deficits associated with exposure to LPM4870108.
Insights
The anti-cancer drug LPM4870108 impairs learning and memory by altering epigenetic modifications in the hippocampus. This Trk inhibitor affects DNA methylation patterns, impacting genes crucial for cognitive function.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Tyrosine kinase inhibitors (TKIs) are used in cancer treatment and impact synaptic plasticity.
- Epigenetic modifications are vital for learning and memory.
- The link between TKI-induced cognitive impairment and epigenetics is unexplored.
Purpose of the Study:
- To investigate if LPM4870108, a Trk inhibitor, affects learning and memory through epigenetic modifications.
- To explore the molecular mechanisms underlying TKI-related cognitive deficits.
Main Methods:
- Rats were treated with varying doses of LPM4870108 for 28 days.
- Behavioral testing using the Morris water maze assessed learning and memory.
- Whole-genome transcriptomics, bisulfite sequencing, RT-PCR, and pyrosequencing analyzed gene expression and DNA methylation.
Main Results:
- LPM4870108 caused dose-dependent learning and memory impairments and reduced spine densities.
- Significant hippocampal gene expression changes were observed.
- Epigenetic alterations in learning/memory-related genes (Snx8, Fgfr1, Dusp4, Vav2, Satb2) and increased Dnmt1/Dnmt3a expression were identified.
Conclusions:
- LPM4870108 induces learning and memory deficits.
- Gene-specific DNA methylation alterations contribute to these cognitive impairments.
- Epigenetic mechanisms are implicated in TKI-associated neurotoxicity.
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