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Updated: Feb 28, 2026

Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Tailored design of multifunctional and programmable pH-responsive self-assembling polypeptides as drug delivery
Tzu-Wei Wang1, Chia-Wei Yeh1, Chen-Hsiang Kuan2
1Department of Materials Science and Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan.
Abstract:
Breast cancer has become the second leading cause of cancer-related mortality in female wherein more than 90% of breast cancer-related death results from cancer metastasis to distant organs at advanced stage. The purpose of this study is to develop biodegradable nanoparticles composed of natural polypeptides and calcium phosphate (CaP) with sequential pH-responsivity to tumor microenvironments for active targeted drug delivery. Two different amphiphilic copolymers, poly(ethylene glycol)3400-aconityl linkage-poly(l-glutamic acid)15-poly(l-histidine)10-poly(l-leucine)10 and LyP1-poly(ethylene glycol)1100-poly(l-glutamic acid)15-poly(l-histidine)10-poly(l-leucine)10, were exploited to self-assemble into micelles in aqueous phase. The bio-stable nanoparticles provide three distinct functional domains: the anionic PGlu shell for CaP mineralization, the protonation of PHis segment for facilitating anticancer drug release at target site, and the hydrophobic core of PLeu for encapsulation of anticancer drugs. Furthermore, the hydrated PEG outer corona is used for prolonging circulation time, while the active targeting ligand, LyP-1, is served to bind to breast cancer cells and lymphatic endothelial cells in tumor for inhibiting metastasis. Mineralized DOX-loaded nanoparticles (M-DOX NPs) efficiently prevent the drug leakage at physiological pH value and facilitate the encapsulated drug release at acidic condition when compared to DOX-loaded nanoparticles (DOX NPs). M-DOX NPs with LyP-1 targeting ligand effectively accumulated in MDA-MB-231 breast cancer cells. The inhibition effect on cell proliferation also enhances with time, illustrating the prominent anti-tumor efficacy. Moreover, the in vitro metastatic inhibition model shows the profound inhibition effect of inhibitory nanoparticles. In brief, this self-assembling peptide-based drug delivery nanocarrier with multifunctionality and programmable pH-sensitivity is of great promise and potential for anti-cancer therapy.
Statement Of Significance:
This tailored-design polypeptide-based nanoparticles with self-assembling and programmable stimulus-responsive properties enable to 1) have stable pH in physiological value with a low level of drug loss and effectively release the encapsulated drug with pH variations according to the tumor microenvironment, 2) enhance targeting ability to hard-to-treat breast cancer cells and activate endothelial cells (tumor region), 3) significantly inhibit the growth and prevent from malignant metastasis of cancer cells in consonance with promising anti-tumor efficacy, and 4) make tumors stick to localized position so that these confined solid tumors can be more accessible by different treatment modalities. This work contributes to designing a programmable pH-responsive drug delivery system based on the tailor-designed polypeptides.
Insights
This study developed pH-responsive polypeptide nanoparticles for targeted breast cancer drug delivery. These nanoparticles effectively inhibit tumor growth and metastasis by releasing drugs in acidic tumor environments and targeting cancer cells.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Drug Delivery Systems
Background:
- Breast cancer is a leading cause of cancer mortality, primarily due to metastasis.
- Effective drug delivery systems are crucial for improving treatment outcomes and reducing side effects.
Purpose of the Study:
- To develop biodegradable, pH-responsive nanoparticles for targeted breast cancer drug delivery.
- To create a nanocarrier system that enhances drug efficacy and inhibits metastasis.
Main Methods:
- Self-assembly of amphiphilic copolymers into micelles for drug encapsulation.
- Mineralization with calcium phosphate for pH-responsive drug release.
- Incorporation of LyP-1 ligand for active targeting of breast cancer cells.
Main Results:
- Mineralized nanoparticles (M-DOX NPs) showed minimal drug leakage at physiological pH and enhanced release in acidic conditions.
- LyP-1 targeted nanoparticles effectively accumulated in MDA-MB-231 breast cancer cells.
- Demonstrated significant inhibition of cancer cell proliferation and in vitro metastasis.
Conclusions:
- The developed polypeptide-based nanoparticles offer a multifunctional, pH-sensitive platform for targeted cancer therapy.
- This system shows promise for enhancing anti-tumor efficacy and preventing breast cancer metastasis.
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