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Lung Cancer-Targeting Peptides with Multi-subtype Indication for Combinational Drug Delivery and Molecular Imaging
Yi-Hsuan Chi1,2, Jong-Kai Hsiao3, Ming-Huang Lin4
1Institute of Cellular and Organismic Biology, Academia Sinica, Taipei, Taiwan.
Abstract:
Lung cancer is the leading cause of cancer-related death worldwide. Most targeted drugs approved for lung cancer treatment are tyrosine kinase inhibitors (TKIs) directed against EGFR or ALK, and are used mainly for adenocarcinoma. At present, there is no effective or tailored targeting agent for large cell carcinoma (LCC) or small cell lung cancer (SCLC). Therefore, we aimed to identify targeting peptides with diagnostic and therapeutic utility that possess broad subtype specificity for SCLC and non-small cell lung cancer (NSCLC). We performed phage display biopanning of H460 LCC cells to select broad-spectrum lung cancer-binding peptides, since LCC has recently been categorized as an undifferentiated tumor type within other histological subcategories of lung cancer. Three targeting phages (HPC1, HPC2, and HPC4) and their respective displayed peptides (HSP1, HSP2, and HSP4) were able to bind to both SCLC and NSCLC cell lines, as well as clinical specimens, but not to normal pneumonic tissues. In vivo optical imaging of phage homing and magnetic resonance imaging (MRI) of peptide-SPIONs revealed that HSP1 was the most favorable probe for multimodal molecular imaging. Using HSP1-SPION, the T2-weighted MR signal of H460 xenografts was decreased up to 42%. In contrast to the tight binding of HSP1 to cancer cell surfaces, HSP4 was preferentially endocytosed and intracellular drug delivery was thereby effected, significantly improving the therapeutic index of liposomal drug in vivo. Liposomal doxorubicin (LD) conjugated to HSP1, HSP2, or HSP4 had significantly greater therapeutic efficacy than non-targeting liposomal drugs in NSCLC (H460 and H1993) animal models. Combined therapy with an HSP4-conjugated stable formulation of liposomal vinorelbine (sLV) further improved median overall survival (131 vs. 84 days; P = 0.0248), even in aggressive A549 orthotopic models. Overall, these peptides have the potential to guide a wide variety of tailored theranostic agents for targeting therapeutics, non-invasive imaging, or clinical detection of SCLC and NSCLC.
Insights
Researchers identified novel peptides that target both small cell lung cancer (SCLC) and non-small cell lung cancer (NSCLC). These peptides show promise for developing new diagnostic and therapeutic agents for broad lung cancer subtype specificity.
Area of Science:
- Oncology
- Molecular Imaging
- Drug Delivery
Background:
- Lung cancer remains a leading cause of cancer mortality globally.
- Current targeted therapies, primarily tyrosine kinase inhibitors (TKIs), are mainly effective for adenocarcinoma and lack options for large cell lung carcinoma (LCC) and small cell lung cancer (SCLC).
- There is a critical need for broadly applicable diagnostic and therapeutic agents for diverse lung cancer subtypes.
Purpose of the Study:
- To identify targeting peptides with broad subtype specificity for SCLC and NSCLC.
- To evaluate the diagnostic and therapeutic utility of these peptides for lung cancer.
- To develop novel theranostic agents for multimodal molecular imaging and targeted drug delivery.
Main Methods:
- Phage display biopanning was employed using H460 LCC cells to select broad-spectrum lung cancer-binding peptides.
- Selected peptides (HSP1, HSP2, HSP4) were tested for binding to SCLC and NSCLC cell lines and clinical specimens.
- In vivo optical imaging and magnetic resonance imaging (MRI) with peptide-SPIONs were used to assess targeting and imaging capabilities. Therapeutic efficacy was evaluated using liposomal drug conjugates in animal models.
Main Results:
- Three peptides (HSP1, HSP2, HSP4) demonstrated specific binding to both SCLC and NSCLC cell lines and clinical specimens, with no binding to normal tissues.
- HSP1-SPIONs enabled effective multimodal molecular imaging, significantly reducing MR signal in xenografts.
- HSP4 facilitated preferential endocytosis and intracellular drug delivery, enhancing the therapeutic index. Peptide-drug conjugates showed superior efficacy in NSCLC models, with combined therapy improving survival.
Conclusions:
- The identified peptides (HSP1, HSP2, HSP4) offer broad subtype specificity for SCLC and NSCLC.
- These peptides are promising candidates for developing advanced theranostic agents for targeted therapeutics and non-invasive imaging.
- The findings support the potential for tailored diagnostic and therapeutic strategies across various lung cancer subtypes.
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