4.8 Article

Thailandepsin A-loaded and octreotide-functionalized unimolecular micelles for targeted neuroendocrine cancer therapy

Journal

BIOMATERIALS
Volume 91, Issue -, Pages 1-10

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2016.03.010

Keywords

Targeted drug delivery; Unimolecular micelles; Octreotide; Neuroendocrine cancer; Thailandepsin A; Histone deacetylase inhibitor

Funding

  1. NIH [R01 CA121115, 1K25CA166178]
  2. American Cancer Society [120319-RPM-11-080-01-TBG, RSGM TBE-121413]
  3. Caring for Carcinoids Foundation
  4. AACR [14-60-33-CHEN]

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Due to the overexpression of somatostatin receptors in neuroendocrine (NE) cancers, drug nanocarriers conjugated with somatostatin analogs, such as octreotide (OCT), for targeted NE cancer therapy may offer increased therapeutic efficacies and decreased adverse effects. In this study, OCT-functionalized unimolecular micelles were prepared using individual hyperbranched polymer molecules consisting of a hyperbranched polymer core (Boltorn (R) H40) and approximately 25 amphiphilic polylactide-poly(-ethlyene glycol) (PLA-PEG) block copolymer arms (H40-PLA-PEG-OCH3/OCT). The resulting micelles, exhibiting a uniform core-shell shape and an average hydrodynamic diameter size of 66 nm, were loaded with thailandepsin-A (TDP-A), a relatively new naturally produced histone deacetylase (HDAC) inhibitor. In vitro studies using flow cytometry and confocal laser scanning microscopy (CLSM) demonstrated that OCT conjugation enhanced the cellular uptake of the unimolecular micelles. Consequently, TOP-A-loaded and OCT-conjugated micelles exhibited the highest cytotoxicity and caused the highest reduction of NE tumor markers. Finally, the in vivo studies on NE cancer bearing nude mice demonstrated that TDP-A-loaded and OCT-conjugated micelles possessed superior anticancer activity in comparison with other TDP-A formulations or drug alone, while showing no detectable systemic toxicity. Thus, these TDP-A-loaded and OCT-conjugated micelles offer a promising approach for targeted NE cancer therapy. (c) 2016 Elsevier Ltd. All rights reserved.

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