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The EGFR, HER2, and HER4 kinase domains are the intracellular catalytic components of the ErbB family of receptor tyrosine kinases, which are critical regulators of cell growth, survival, and differentiation [1, 10, 12]. These domains exhibit intrinsic tyrosine kinase activity that is activated upon ligand-induced or mutation-driven receptor dimerization, leading to the phosphorylation of downstream signaling cascades such as the PI3K/Akt and MAPK/ERK pathways [7, 12, 17]. Overexpression or activating mutations in these kinase domains are frequently observed in various cancers, including non-small cell lung cancer and HER2-positive breast cancer, driving aggressive tumor progression [4, 9, 15]. Therapeutic strategies often employ pan-HER inhibitors, such as afatinib and neratinib, which are small molecules designed to bind to the ATP-binding pockets of these domains, thereby blocking their catalytic activity and suppressing oncogenic signaling [1, 3, 14]. While effective, the simultaneous inhibition of multiple ErbB family members can lead to significant side effects, most notably gastrointestinal and dermatological toxicities, due to the inhibition of wild-type receptors in normal tissues [16, 21, 22].
Irreversible or reversible inhibition of tyrosine kinase activity by binding to the ATP-binding pocket of the intracellular kinase domains, preventing autophosphorylation and downstream signaling [1, 2, 14].
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