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Evaluating the efficacy and cardiotoxicity of EGFR-TKI AC0010 with a novel multifunctional biosensor
Deming Jiang1,2,3, Xinwei Wei4, Yuxuan Zhu1
1Biosensor National Special Laboratory, Key Laboratory for Biomedical Engineering of Education Ministry, Department of Biomedical Engineering, Zhejiang University, Hangzhou, Zhejiang, 310027 China.
Abstract:
Non-small cell lung cancer (NSCLC) is a leading cause of cancer mortality worldwide. Although epidermal growth factor receptor tyrosine kinase inhibitors (EGFR-TKIs) have dramatically improved the life expectancy of patients with NSCLC, concerns about TKI-induced cardiotoxicities have increased. AC0010, a novel third-generation TKI, was developed to overcome drug resistance induced by EGFR-T790M mutation. However, the cardiotoxicity of AC0010 remains unclear. To evaluate the efficacy and cardiotoxicity of AC0010, we designed a novel multifunctional biosensor by integrating microelectrodes (MEs) and interdigital electrodes (IDEs) to comprehensively evaluate cell viability, electrophysiological activity, and morphological changes (beating of cardiomyocytes). The multifunctional biosensor can monitor AC0010-induced NSCLC inhibition and cardiotoxicity in a quantitative, label-free, noninvasive, and real-time manner. AC0010 was found to significantly inhibit NCI-H1975 (EGFR-L858R/T790M mutation), while weak inhibition was found for A549 (wild-type EGFR). Negligible inhibition was found in the viabilities of HFF-1 (normal fibroblasts) and cardiomyocytes. With the multifunctional biosensor, we found that 10 μM AC0010 significantly affected the extracellular field potential (EFP) and mechanical beating of cardiomyocytes. The amplitude of EFP continuously decreased after AC0010 treatment, while the interval decreased first and then increased. We analyzed the change in the systole time (ST) and diastole time (DT) within a beating interval and found that the DT and DT/beating interval rate decreased within 1 h after AC0010 treatment. This result probably indicated that the relaxation of cardiomyocytes was insufficient, which may further aggravate the dysfunction. Here, we found that AC0010 significantly inhibited EGFR-mutant NSCLC cells and impaired cardiomyocyte function at low concentrations (10 μM). This is the first study in which the risk of AC0010-induced cardiotoxicity was evaluated. In addition, novel multifunctional biosensors can comprehensively evaluate the antitumor efficacy and cardiotoxicity of drugs and candidate compounds.
Insights
A new biosensor reveals that AC0010, a drug for non-small cell lung cancer (NSCLC), effectively targets cancer cells but also impairs heart cell function. This study highlights potential cardiotoxicity risks associated with AC0010 at low concentrations.
Area of Science:
- Biomedical Engineering
- Oncology
- Cardiology
Background:
- Non-small cell lung cancer (NSCLC) remains a major global cancer mortality cause.
- Epidermal growth factor receptor tyrosine kinase inhibitors (EGFR-TKIs) improve NSCLC patient survival but raise concerns about cardiotoxicity.
- AC0010, a third-generation EGFR-TKI, targets EGFR-T790M mutations, but its cardiotoxicity is unknown.
Purpose of the Study:
- To evaluate the efficacy and cardiotoxicity of the novel third-generation EGFR-TKI, AC0010.
- To develop and utilize a multifunctional biosensor for real-time, label-free assessment of drug effects on cancer cells and cardiomyocytes.
Main Methods:
- A novel multifunctional biosensor integrating microelectrodes (MEs) and interdigital electrodes (IDEs) was designed.
- The biosensor assessed cell viability, electrophysiological activity (extracellular field potential), and mechanical beating of cardiomyocytes.
- AC0010's effects on NSCLC cell lines (NCI-H1975, A549) and normal cells (HFF-1, cardiomyocytes) were evaluated.
Main Results:
- AC0010 significantly inhibited NCI-H1975 (EGFR-T790M mutation) NSCLC cells, with weak inhibition on A549 (wild-type EGFR) cells.
- Negligible cytotoxicity was observed in normal fibroblasts (HFF-1) and cardiomyocytes at tested concentrations.
- At 10 μM, AC0010 significantly altered cardiomyocyte electrophysiology and mechanical beating, indicated by decreased extracellular field potential amplitude and impaired diastolic relaxation.
Conclusions:
- AC0010 demonstrates significant antitumor efficacy against EGFR-mutant NSCLC cells.
- AC0010 impairs cardiomyocyte function at low concentrations (10 μM), suggesting potential cardiotoxicity.
- The developed multifunctional biosensor offers a comprehensive platform for evaluating drug efficacy and cardiotoxicity in real-time.
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