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A Novel in vivo Gene Transfer Technique and in vitro Cell Based Assays for the Study of Bone Loss in Musculoskeletal Disorders
Published on: June 8, 2014
A delivery system specifically approaching bone resorption surfaces to facilitate therapeutic modulation of microRNAs
Jin Liu1, Lei Dang1, Defang Li1
1Institute for Advancing Translational Medicine in Bone & Joint Diseases, School of Chinese Medicine, Hong Kong Baptist University, Hong Kong, China; Academician Chen Xinzi Workroom for Advancing Translational Medicine in Bone & Joint Diseases, Kunshan RNAi Institute, Kunshan Industrial Technology Research Institute, Kunshan, Jiangsu 215347, China; Institute of Integrated Bioinformatic Medicine and Translational Sciences, HKBU Shenzhen Research Institute and Continuing Education, Shenzhen 518057, China; Shum Yiu Foon Shum Bik Chuen Memorial Centre for Cancer and Inflammation Research, HKBU Shenzhen Research Institute and Continuing Education, Shenzhen 518057, China; Hong Kong Baptist University - Northwestern Polytechnical University Joint Research Centre for Translational Medicine on Musculoskeletal Health in Space, Shenzhen, 518057, China.
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.
Insights
A novel D-Asp8 peptide-liposome system targets osteoclasts, delivering microRNA modulators to treat skeletal diseases like osteoporosis by reducing bone resorption and improving bone architecture.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Skeletal Biology
Background:
- Dysregulated microRNAs in osteoclasts are implicated in skeletal diseases.
- Targeted delivery of microRNA modulators to osteoclasts is crucial for effective therapy.
- Osteoclasts reside on hydroxyapatite-rich bone resorption surfaces.
Purpose of the Study:
- To develop an osteoclast-targeting delivery system for microRNA modulators.
- To evaluate the efficacy of the D-Asp8-liposome-antagomir-148a system in vivo.
- To assess the safety profile of the targeted delivery system.
Main Methods:
- Conjugation of D-Asp8 peptide to liposomes for hydroxyapatite binding.
- Encapsulation of antagomir-148a (a miR-148a inhibitor) within the D-Asp8-liposome.
- In vivo administration in osteoporotic mouse models.
- Assessment of miR-148a levels, bone resorption, and bone architecture.
Main Results:
- D-Asp8 facilitated targeted delivery and enrichment of antagomir-148a in osteoclasts.
- Significant down-regulation of miR-148a was observed in osteoclasts.
- Reduced bone resorption and improved trabecular architecture in osteoporotic mice.
- No detectable liver or kidney toxicity was observed.
Conclusions:
- D-Asp8-liposome is a promising osteoclast-targeting delivery system.
- This system enables effective delivery of microRNA modulators to bone resorption sites.
- The approach holds potential for clinical translation in treating osteoclast-dysfunction-induced skeletal diseases.
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