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Tumor environment differentiated "nanodepot" programmed for site-specific drug shuttling and combinative therapy on
Qiuling Dong1, Huaqing Zhang1, Yue Han1
1State Key Laboratory of Natural Medicines, Department of Pharmaceutics, China Pharmaceutical University, 24 Tongjiaxiang, Nanjing 210009, China.
Abstract:
Metastatic cancer is difficult to defeat with current treatments due to lack of etiological therapeutics and efficient delivery platforms. Employing tumor microenvironment in programming intelligent nanosystems has attracted considerable attention for combinative antitumor therapy. Herein, we proposed a core-shell based drug depot consisting of micellar core and crosslinked-gel shell for site-specific shuttling of paclitaxel (PTX) and KIAA1199 specific shRNA (shKIAA). Poly (e-caprolactone) were grafted with branched polyethylenimine (PEI-PCL) as micellar core, into which hydrophobic PTX was embedded; while shKIAA, a reliable RNAi regimen for metastatic cell inhibition was condensed with PEI through electrostatic interaction; and then photo-crosslinked hyaluronic acid (m-HA) was further coated as shell. The nanoscale drug depot shared HAase-triggered charge switching and desirable release profile. Upon reaching tumor region, HA shell was degraded by concentrated HAase, and facilitated drug shuttling to individual subcellular targeting site. Rapid intracellular trafficking of micellar core achieved endo/lysosomal escape and cytoplasmic liberation. The half-maximal inhibitory concentration (IC50) of "nanodepot" toward human breast cancer cell line MDA-MB-231 was 0.016 μg/mL (PTX concentration), approximately 3-fold decrease compared to that of monotherapy group (0.043 μg/mL). The tumor weight inhibition (TWI) is 83.30% in xenografted MDA-MB-231 tumor model and metastasis was effectively inhibited in 4T1 orthotopic tumors. Moreover, knockdown of KIAA1199 via sustainable RNAi affected a broad range of cellular functions including apoptosis, migration and invasion. Collectively, tumor environment differentiated spatiotemporal co-delivery fashion holds a great promise for combinative treatment with enhanced efficacy on metastatic cancer cases.
Insights
This study developed a novel nanodrug delivery system for metastatic cancer, combining chemotherapy and RNA interference to enhance treatment efficacy and reduce side effects. The system effectively targets tumors and inhibits cancer cell growth and spread.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Metastatic cancer presents significant treatment challenges due to limitations in drug delivery and etiological therapies.
- Intelligent nanosystems leveraging the tumor microenvironment offer a promising strategy for combinative antitumor therapy.
Purpose of the Study:
- To develop a core-shell nanodrug depot for site-specific co-delivery of paclitaxel (PTX) and KIAA1199 specific shRNA (shKIAA).
- To investigate the efficacy of this nanodrug depot in inhibiting metastatic cancer growth and spread.
Main Methods:
- Fabrication of a core-shell nanodrug depot using PEI-PCL micellar core encapsulating PTX and condensed shKIAA, with a photo-crosslinked hyaluronic acid (HA) shell.
- Evaluation of HAase-triggered charge switching, drug release profiles, intracellular trafficking, and endo/lysosomal escape.
- Assessment of the nanodrug depot's efficacy in vitro using MDA-MB-231 breast cancer cells and in vivo using xenografted MDA-MB-231 and 4T1 tumor models.
Main Results:
- The nanodrug depot demonstrated a 3-fold lower IC50 compared to monotherapy in MDA-MB-231 cells.
- Significant tumor weight inhibition (83.30%) was observed in xenografted models, with effective inhibition of metastasis in 4T1 orthotopic tumors.
- Knockdown of KIAA1199 via RNAi impacted cancer cell apoptosis, migration, and invasion.
Conclusions:
- The developed nanodrug depot enables spatiotemporal co-delivery of chemotherapeutics and RNAi agents, driven by the tumor microenvironment.
- This combinative treatment strategy shows great promise for enhanced efficacy in treating metastatic cancer.