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Updated: Mar 31, 2026

Preparation and Characterization of Individual and Multi-drug Loaded Physically Entrapped Polymeric Micelles
Published on: August 28, 2015
cRGD-installed polymeric micelles loading platinum anticancer drugs enable cooperative treatment against lymph node
Jun Makino1, Horacio Cabral2, Yutaka Miura1
1Center for Disease Biology and Integrative Medicine, Graduate School of Medicine, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.
Abstract:
Lymph node metastasis (LNM) is correlated with decreased survival, indicating high tumor malignancy and being a potential source for subsequent fatal metastases. Targeted therapies inhibiting the formation of LNM, while eliminating established metastatic foci, could provide synergistic effects by reducing the incidence and growth of metastasis. Based on the inhibitory activity of cRGD peptide against the development of metastasis, and the LNM targeting ability of systemically injected drug-loaded polymeric micelles, herein, we studied the capability of cRGD-installed polymeric micelles incorporating the platinum anticancer drug (1,2-diaminocylohexane)platinum(II) (DACHPt) for cooperatively inhibiting the formation and progression of LNM. As cRGD-installed DACHPt-loaded micelles (cRGD-DACHPt/m) presented similar size, drug loading and surface charge to non-conjugated micelles (MeO-DACHPt/m), the differences in the biological performance of the micelles were endorsed to the effect of the ligand. In a syngeneic melanoma model, both MeO-DACHPt/m and cRGD-DACHPt/m showed comparable antitumor activity against the primary tumors and the established metastatic foci in lymph nodes. However, cRGD-DACHPt/m significantly enhanced the efficacy against LNM draining from primary tumors through the effective inhibition of the spreading of cancer cells. This improved inhibition was associated with the ability of cRGD-DACHPt/m to reduce the migration of melanoma cells, which was higher than that of MeO-DACHPt/m, free cRGD and their combination. These results support our strategy of using cRGD-installed micelles for attaining cooperative therapies against LNM exploiting the inhibitory function of the peptide and the cytotoxic effect of the micelles.
Insights
This study developed targeted nanoparticles that combine a platinum drug with a cRGD peptide to inhibit lymph node metastasis (LNM). The targeted nanoparticles effectively reduced cancer cell spread and migration, offering a promising strategy for cooperative LNM therapy.
Area of Science:
- Oncology
- Nanotechnology
- Drug Delivery
Background:
- Lymph node metastasis (LNM) significantly correlates with decreased survival and indicates high tumor malignancy.
- Targeted therapies that inhibit LNM formation and eliminate existing metastatic foci can reduce metastasis incidence and growth.
Purpose of the Study:
- To investigate the cooperative inhibition of LNM formation and progression using cRGD-installed polymeric micelles loaded with the platinum anticancer drug (1,2-diaminocylohexane)platinum(II) (DACHPt).
Main Methods:
- Preparation and characterization of cRGD-installed DACHPt-loaded micelles (cRGD-DACHPt/m) and non-conjugated micelles (MeO-DACHPt/m).
- Evaluation of micelle size, drug loading, and surface charge.
- Assessment of antitumor activity against primary tumors and lymph node metastases in a syngeneic melanoma model.
- Analysis of cancer cell migration inhibition.
Main Results:
- cRGD-DACHPt/m and MeO-DACHPt/m showed comparable activity against primary tumors and established lymph node metastases.
- cRGD-DACHPt/m significantly enhanced efficacy against draining LNM by inhibiting cancer cell spread.
- The improved inhibition by cRGD-DACHPt/m was linked to a greater reduction in melanoma cell migration compared to non-conjugated micelles, free cRGD, or their combination.
Conclusions:
- The strategy of using cRGD-installed micelles provides cooperative therapy against LNM.
- This approach leverages the peptide's inhibitory function and the micelles' cytotoxic effect for enhanced LNM treatment.
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