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Temporal profiling of lapatinib-suppressed phosphorylation signals in EGFR/HER2 pathways
Koshi Imami1, Naoyuki Sugiyama, Haruna Imamura
1Institute for Advanced Biosciences, Keio University, Tsuruoka, Yamagata, Japan.
Abstract:
Lapatinib is a clinically potent kinase inhibitor for breast cancer patients because of its outstanding selectivity for epidermal growth factor receptor (EGFR) and EGFR2 (also known as HER2). However, there is only limited information about the in vivo effects of lapatinib on EGFR/HER2 and downstream signaling targets. Here, we profiled the lapatinib-induced time- and dose-dependent phosphorylation dynamics in SKBR3 breast cancer cells by means of quantitative phosphoproteomics. Among 4953 identified phosphopeptides from 1548 proteins, a small proportion (5-7%) was regulated at least twofold by 1-10 μm lapatinib. We obtained a comprehensive phosphorylation map of 21 sites on EGFR/HER2, including nine novel sites on HER2. Among them, serine/threonine phosphosites located in a small region of HER2 (amino acid residues 1049-1083) were up-regulated by the drug, whereas all other sites were down-regulated. We show that cAMP-dependent protein kinase is involved in phosphorylation of this particular region of HER2 and regulates HER2 tyrosine kinase activity. Computational analyses of quantitative phosphoproteome data indicated for the first time that protein-protein networks related to cytoskeletal organization and transcriptional/translational regulation, such as RNP complexes (i.e. hnRNP, snRNP, telomerase, ribosome), are linked to EGFR/HER2 signaling networks. To our knowledge, this is the first report to profile the temporal response of phosphorylation dynamics to a kinase inhibitor. The results provide new insights into EGFR/HER2 regulation through region-specific phosphorylation, as well as a global view of the cellular signaling networks associated with the anti-breast cancer action of lapatinib.
Insights
This study reveals how lapatinib affects breast cancer cells by mapping protein phosphorylation changes. It identifies specific HER2 phosphorylation sites and links cytoskeletal and RNP complex networks to lapatinib
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Lapatinib is a potent kinase inhibitor for breast cancer.
- Limited in vivo data exists on lapatinib's effects on EGFR/HER2 signaling.
- Understanding lapatinib's molecular targets is crucial for optimizing breast cancer treatment.
Purpose of the Study:
- To profile lapatinib-induced phosphorylation dynamics in breast cancer cells.
- To investigate the impact of lapatinib on epidermal growth factor receptor (EGFR) and HER2 signaling.
- To identify novel signaling networks affected by lapatinib.
Main Methods:
- Quantitative phosphoproteomics was employed to analyze SKBR3 breast cancer cells.
- Time- and dose-dependent phosphorylation changes were measured after lapatinib treatment.
- Computational analysis integrated phosphoproteome data with protein-protein interaction networks.
Main Results:
- Lapatinib induced time- and dose-dependent phosphorylation changes in 5-7% of identified phosphopeptides.
- A comprehensive map of 21 EGFR/HER2 phosphorylation sites was generated, including nine novel HER2 sites.
- Region-specific HER2 phosphorylation and links to cytoskeletal and RNP complex networks were identified.
Conclusions:
- Lapatinib regulates HER2 activity through region-specific phosphorylation, involving cAMP-dependent protein kinase.
- Cytoskeletal organization and RNP complexes are newly identified signaling networks linked to EGFR/HER2 pathways.
- This study provides a global view of lapatinib's cellular signaling effects in breast cancer.
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