4.8 Article

Engineering peptide -targeted liposomal nanoparticles optimized for improved selectivity for HER2-positive breast cancer cells to achieve enhanced in vivo efficacy

期刊

JOURNAL OF CONTROLLED RELEASE
卷 322, 期 -, 页码 530-541

出版社

ELSEVIER
DOI: 10.1016/j.jconrel.2020.04.010

关键词

HER2 targeted nanoparticle; Breast cancer; Peptide targeting; Optimizing targeted nanoparticle formulation

资金

  1. Walther Cancer Research Foundation
  2. American Cancer Society Research Scholar Award
  3. Kelly Cares Foundation
  4. National Institutes of Health [R33CA206922]
  5. National Cancer Institute [R33CA206922]

向作者/读者索取更多资源

Here, we report rationally engineered peptide-targeted liposomal doxorubicin nanoparticles that have an enhanced selectivity for HER2-positive breast tumor cells with high purity, reproducibility, and precision in controlling stoichiometry of targeting peptides. To increase HER2-positive tumor cell selective drug delivery, we optimized the two most important design parameters, peptide density and linker length, via systematic evaluations of their effects on both in vitro cellular uptake and in vivo tumor accumulation and cellular uptake. The optimally designed nanoparticles were finally evaluated for their tumor inhibition efficacy using in vivo MMTVneu transplantation mouse model. In vitro, we demonstrated that similar to 1% peptide density and EG8 linker were optimal parameters for targeted nanoparticle formulations to enhance HER2-positive cancer cellular uptake while preventing non-selectivity. In vivo results demonstrated that at 0.5% peptide density, enhancement of tumor cell uptake over non-targeted nanoparticles was similar to 2.7 fold and similar to 3.4 fold higher for targeted nanoparticles with EG8 and EG18 linker, respectively, while their accumulation levels at tumor tissue were similar to the nontargeted nanoparticles. These results were consistent with in vivo efficacy outcomes that similar to 90% tumor growth inhibition was achieved by Dox-loaded HER2 receptor targeted nanoparticles, TNPHER2pep, over control while all nanoparticle formulations minimized overall systemic toxicity relative to free Dox. This study highlights the significance of understanding and optimizing the effects of liposomal nanoparticle design parameters for enhancement of tumor selectivity to achieve improved in vivo therapeutic outcomes.

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