Literature DB >> 26961803

PELA microspheres with encapsulated arginine-chitosan/pBMP-2 nanoparticles induce pBMP-2 controlled-release, transfected osteoblastic progenitor cells, and promoted osteogenic differentiation.

Xiaolong Xu1, Sujun Qiu1, Yuxian Zhang1, Jie Yin1, Shaoxiong Min1.   

Abstract

Repair of the bone injury remains a challenge in clinical practices. Recent progress in tissue engineering and therapeutic gene delivery systems have led to promising new strategies for successful acceleration of bone repair process. The aim of this study was to create a controlled-release system to slowly release the arginine-chitosan/plasmid DNA nanoparticles encoding BMP-2 gene (Arg-CS/pBMP-2 NPs), efficiently transfect osteoblastic progenitor cells, secrete functional BMP-2 protein, and promote osteogenic differentiation. In this study, chitosan was conjugated with arginine to generate arginine-chitosan polymer (Arg-CS) for gene delivery. Mix the Arg-CS with pBMP-2 to condense pBMP-2 into nano-sized particles. In vitro transfection assays demonstrated that the transfection efficiency of Arg-CS/pBMP-2 nanoparticles and the expression level of BMP-2 was obviously exceed control groups. Further, PELA microspheres as the controlled-release carrier for the nanoparticles were used to encapsulate Arg-CS/pBMP-2 NPs. We demonstrated that the Arg-CS/pBMP-2 NPs could slowly release from the PELA microspheres at least for 42 d. During the co-culture with the PELA microspheres, the content of BMP-2 protein secreted by MC3T3-E1 reached the peak at 7 d. After 21d, the secretion of BMP-2 protein still maintain a higher level. The alkaline phosphatase activity, alizarin red staining, and osteogenesis-related gene expression by real-time quantitative PCR analysis all showed the PELA microspheres entrapping with Arg-CS/pBMP-2 NPs can obviously induce the osteogenic differentiation. The results indicated that the Arg-CS is a suitable gene vector which can promote the gene transfection. And the novel PELA microspheres-nanoparticle controlled-release system has potential clinical application in the future after further research.

Entities:  

Keywords:  Arginine-modified chitosan; DNA nanoparticle; non-viral vector; osteogenic differentiation

Mesh:

Substances:

Year:  2016        PMID: 26961803     DOI: 10.3109/21691401.2016.1153480

Source DB:  PubMed          Journal:  Artif Cells Nanomed Biotechnol        ISSN: 2169-1401            Impact factor:   5.678


  5 in total

1.  [The fabrication and related properties study of chitosan-poly (lactide-co-glycolide) double-walled microspheres loaded with nerve growth factor].

Authors:  Mengyao Rong; Zhen Chang; Jiawei Ou; Songchuan Zhao; Wen Zeng; Qi Liu
Journal:  Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi       Date:  2020-01-15

2.  Can a Biodegradable Implanted Bilayered Drug Delivery System Loaded with BMP-2/BMP-12 Take an Effective Role in the Biological Repair Process of Bone-Tendon Injuries? A Preliminary Report.

Authors:  Baran Komur; Yener Akyuva; Numan Karaslan; Mehmet Isyar; Seyit Ali Gumustas; Ibrahim Yilmaz; Semih Akkaya; Duygu Yasar Sirin; Cagri Ata Mutlu; Ahmet Guray Batmaz; Olcay Guler; Mahir Mahirogullari
Journal:  J Pharm (Cairo)       Date:  2017-06-04

3.  Anti-cancer efficacy of biotinylated chitosan nanoparticles in liver cancer.

Authors:  Mingrong Cheng; Weiping Zhu; Qing Li; Dejian Dai; Yiming Hou
Journal:  Oncotarget       Date:  2017-07-10

4.  Chitosan/hyaluronic acid/plasmid-DNA nanoparticles encoding interleukin-1 receptor antagonist attenuate inflammation in synoviocytes induced by interleukin-1 beta.

Authors:  Rong-Hui Deng; Bo Qiu; Pang-Hu Zhou
Journal:  J Mater Sci Mater Med       Date:  2018-10-01       Impact factor: 3.896

5.  GPR173 agonist phoenixin 20 promotes osteoblastic differentiation of MC3T3-E1 cells.

Authors:  Zhengtao Gu; Denghui Xie; Rui Ding; Caiqiang Huang; Yiyan Qiu
Journal:  Aging (Albany NY)       Date:  2020-11-10       Impact factor: 5.682

  5 in total

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