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用羟基磷灰石支架的骨保护素基因修饰骨髓间充质干细胞治疗去卵巢骨质疏松大鼠的临界大小下颌骨缺损

Osteoprotegerin gene-modified BMSCs with hydroxyapatite scaffold for treating critical-sized mandibular defects in ovariectomized osteoporotic rats.

作者信息

Liu Xian, Bao Chongyun, Xu Hockin H K, Pan Jian, Hu Jing, Wang Ping, Luo En

机构信息

State Key Laboratory of Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu, Sichuan 610041, China.

Biomaterials & Tissue Engineering Division, Department of Endodontics, Prosthodontics and Operative Dentistry, University of Maryland Dental School, Baltimore, MD 21201, USA; Center for Stem Cell Biology and Regenerative Medicine, University of Maryland School of Medicine, Baltimore, MD 21201, USA; Marlene and Stewart Greenebaum Cancer Center, University of Maryland School of Medicine, Baltimore, MD 21201, USA; Mechanical Engineering Department, University of Maryland, Baltimore County, MD 21250, USA.

出版信息

Acta Biomater. 2016 Sep 15;42:378-388. doi: 10.1016/j.actbio.2016.06.019. Epub 2016 Jun 16.

Abstract

UNLABELLED

Women with postmenopausal osteoporosis are at a high risk for fracture as their bone resorption rate exceeds bone formation rate, resulting in decreased bone mineral density and microarchitectural deterioration. Osteoprotegerin (OPG), a known therapeutic agent capable of inhibiting osteoclastogenesis, has been used in treatment of chronic bone resorptive diseases. On the other hand, bone mesenchymal stem cells (BMSCs) play an important role in bone formation. To inhibit excessive bone resorption and increase bone formation, we developed a novel therapeutic strategy by genetically modifying BMSCs for OPG delivery. The OPG gene-modified BMSCs were seeded on hydroxyapatite (HA) scaffolds to promote bone regeneration in critical-sized mandibular bone defects in ovariectomy (OVX) induced osteoporotic rats. Rat BMSCs were infected with human OPG adenoviruses (OPG-BMSCs). The gene-modified cells expressed higher OPG gene level than the control Ad-BMSCs (p<0.05) and maintained high expression of OPG protein for more than 2weeks. Our in vitro bone resorption experiment demonstrated that OPG-BMSCs were capable to suppress osteoclast differentiation and subsequently inhibit osteoclast-mediated bone resorption. The micro-CT and histological results showed that HA-OPG-BMSC constructs boosted bone formation and reduced osteoclastogenesis in OVX rat mandibular bone defects. In conclusion, the novel OPG-BMSC-HA constructs were demonstrated to be able to orchestrate bone-forming BMSCs and bone-resorbing osteoclasts, with the potential for osteoporotic-related bone defect reconstruction applications.

STATEMENT OF SIGNIFICANCE

Women with postmenopausal osteoporosis are at a high risk for fracture as their bone resorption rate exceeds bone formation rate. Osteoprotegerin (OPG), a known therapeutic agent capable of inhibiting osteoclast cells, has been used in treatment of chronic bone resorptive diseases. To inhibit excessive bone resorption and increase bone formation, we developed a novel therapeutic strategy by genetically modifying bone marrow stem cells (BMSCs) for OPG delivery and seeding the cells on a hydroxyapatite (HA) scaffold for in vivo bone defect repair. The novel OPG-BMSC-HA constructs were able to orchestrate bone-forming BMSCs and bone-resorbing osteoclasts, demonstrating good potential for osteoporosis-related bone defect reconstruction treatments.

摘要

未标记

绝经后骨质疏松症女性因骨吸收速率超过骨形成速率,导致骨矿物质密度降低和微结构恶化,骨折风险很高。骨保护素(OPG)是一种已知的能够抑制破骨细胞生成的治疗药物,已用于治疗慢性骨吸收疾病。另一方面,骨间充质干细胞(BMSCs)在骨形成中起重要作用。为了抑制过度的骨吸收并增加骨形成,我们开发了一种新的治疗策略,即通过基因修饰BMSCs来递送OPG。将OPG基因修饰的BMSCs接种到羟基磷灰石(HA)支架上,以促进去卵巢(OVX)诱导的骨质疏松大鼠临界大小下颌骨缺损的骨再生。用人类OPG腺病毒感染大鼠BMSCs(OPG-BMSCs)。基因修饰的细胞表达的OPG基因水平高于对照Ad-BMSCs(p<0.05),并在2周以上维持OPG蛋白的高表达。我们的体外骨吸收实验表明,OPG-BMSCs能够抑制破骨细胞分化,进而抑制破骨细胞介导的骨吸收。显微CT和组织学结果显示,HA-OPG-BMSC构建体促进了OVX大鼠下颌骨缺损处的骨形成并减少了破骨细胞生成。总之,新型OPG-BMSC-HA构建体被证明能够协调成骨BMSCs和吸收骨的破骨细胞,具有用于骨质疏松相关骨缺损重建应用的潜力。

意义声明

绝经后骨质疏松症女性因骨吸收速率超过骨形成速率,骨折风险很高。骨保护素(OPG)是一种已知的能够抑制破骨细胞的治疗药物,已用于治疗慢性骨吸收疾病。为了抑制过度的骨吸收并增加骨形成,我们开发了一种新的治疗策略,即通过基因修饰骨髓干细胞(BMSCs)来递送OPG,并将细胞接种到羟基磷灰石(HA)支架上进行体内骨缺损修复。新型OPG-BMSC-HA构建体能够协调成骨BMSCs和吸收骨的破骨细胞,显示出在骨质疏松相关骨缺损重建治疗中的良好潜力。

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