| Literature DB >> 25818421 |
Jin Liu1, Lei Dang1, Defang Li1, Chao Liang2, Xiaojuan He3, Heng Wu4, Airong Qian5, Zhijun Yang6, Doris W T Au7, Michael W L Chiang7, Bao-Ting Zhang8, Quanbin Han6, Kevin K M Yue6, Hongqi Zhang6, Changwei Lv9, Xiaohua Pan10, Jiake Xu11, Zhaoxiang Bian6, Peng Shang12, Weihong Tan13, Zicai Liang14, Baosheng Guo15, Aiping Lu16, Ge Zhang17.
Abstract
Dysregulated microRNAs in osteoclasts could cause many skeletal diseases. The therapeutic manipulation of these pathogenic microRNAs necessitates novel, efficient delivery systems to facilitate microRNAs modulators targeting osteoclasts with minimal off-target effects. Bone resorption surfaces characterized by highly crystallized hydroxyapatite are dominantly occupied by osteoclasts. Considering that the eight repeating sequences of aspartate (D-Asp8) could preferably bind to highly crystallized hydroxyapatite, we developed a targeting system by conjugating D-Asp8 peptide with liposome for delivering microRNA modulators specifically to bone resorption surfaces and subsequently encapsulated antagomir-148a (a microRNA modulator suppressing the osteoclastogenic miR-148a), i.e. (D-Asp8)-liposome-antagomir-148a. Our results demonstrated that D-Asp8 could facilitate the enrichment of antagomir-148a and the subsequent down-regulation of miR-148a in osteoclasts in vivo, resulting in reduced bone resorption and attenuated deterioration of trabecular architecture in osteoporotic mice. Mechanistically, the osteoclast-targeted delivery depended on the interaction between bone resorption surfaces and D-Asp8. No detectable liver and kidney toxicity was found in mice after single/multiple dose(s) treatment of (D-Asp8)-liposome-antagomir-148a. These results indicated that (D-Asp8)-liposome as a promising osteoclast-targeting delivery system could facilitate clinical translation of microRNA modulators in treating those osteoclast-dysfunction-induced skeletal diseases.Entities:
Keywords: Bone resorption; MicroRNA; Osteoclast; Targeted delivery system
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Year: 2015 PMID: 25818421 DOI: 10.1016/j.biomaterials.2015.02.007
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479