Development of a Supermolecular Radionuclide-Drug Conjugate System for Integrated Radiotheranostics for Non-small Cell Lung Cancer.
Xinmiao LuYunyun ZhuXiaohui DengFei KongChuang XiQuanyong LuoXinyuan ZhuPublished in: Journal of medicinal chemistry (2024)
Radionuclide-drug conjugates (RDCs) designed from small molecule or nanoplatform shows complementary characteristics. We constructed a new RDC system with integrated merits of small molecule and nanoplatform-based RDCs. Erlotinib was labeled with 131 I to construct the bulk of RDC ( 131 I-ER). Floxuridine was mixed with 131 I-ER to develop a hydrogen bond-driving supermolecular RDC system ( 131 I-ER-Fu NPs). The carrier-free 131 I-ER-Fu NPs supermolecule not only demonstrated integrated merits of small molecule and nanoplatform-based RDC, including clear structure definition, stable quality control, prolonged circulation lifetime, enhanced tumor specificity and retention, and rapidly nontarget clearance, but also exhibited low biological toxicity and stronger antitumor effects. In vivo imaging also revealed its application for tumor localization of nonsmall cell lung cancer (NSCLC) and screening of patients suitable for epidermal growth factor receptor-tyrosine kinase inhibitor (EGFR-TKI) therapy. We considered that 131 I-ER-Fu NPs showed potentials as an integrated platform for the radiotheranostics of NSCLC.
Keyphrases
- epidermal growth factor receptor
- small molecule
- advanced non small cell lung cancer
- tyrosine kinase
- cancer therapy
- endoplasmic reticulum
- estrogen receptor
- small cell lung cancer
- breast cancer cells
- quality control
- photodynamic therapy
- protein protein
- end stage renal disease
- single cell
- ejection fraction
- cell therapy
- drug delivery
- oxide nanoparticles
- oxidative stress
- emergency department
- prognostic factors
- mesenchymal stem cells
- pet ct
- patient reported
- structural basis
- chronic myeloid leukemia