Trojani Christophe, Boukhechba Florian, Scimeca Jean-Claude, Vandenbos Fanny, Michiels Jean-François, Daculsi Guy, Boileau Pascal, Weiss Pierre, Carle Georges F, Rochet Nathalie
CNRS/UNSA FRE 2720, IFR50, Faculté de Médecine, Avenue de Valombrose, and Service de Chirurgie Orthopédique, Hôpital l'Archet 2, Centre Hospitalier Universitaire de Nice, 151 route Saint Antoine de Ginestière, 06202 Nice, France.
Biomaterials. 2006 Jun;27(17):3256-64. doi: 10.1016/j.biomaterials.2006.01.057. Epub 2006 Feb 28.
We have used a new synthetic injectable composite constituted of hydroxyapatite/tricalcium phosphate (HA/TCP) particles in suspension in a self-hardening Si-hydroxypropylmethylcellulose (HPMC) hydrogel. The aim of this study was to evaluate in vivo the biocompatibility and the new bone formation efficacy of this scaffold loaded with undifferentiated bone marrow stromal cells (BMSCs). This biomaterial was mixed extemporaneously with BMSCs prepared from C57BL/6 mice, injected in subcutaneous and intramuscular sites and retrieved 4 and 8 weeks after implantation. Dissection of the implants revealed a hard consistency and the absence of a fibrous capsule reflecting a good integration into the host tissues. Histological analysis showed mineralized woven bone in the granule inter-space with numerous active osteoclasts attached to the particles as assessed by the presence of multinucleated cells positively stained for TRAP activity and for the a3 subunit of the V-ATPase. Small vessels were homogenously distributed in the whole implants. Similar results were obtained in SC and IM sites and no bone formation was observed in the control groups when cell-free and particle-free transplants were injected. These results indicate that this injectable biphasic calcium phosphate-hydrogel composite mixed with undifferentiated BMSCs is a new promising osteoinductive bone substitute. It also provides with an original in vivo model of osteoclast differentiation and function.
我们使用了一种新型合成可注射复合材料,它由悬浮于自硬化硅羟丙基甲基纤维素(HPMC)水凝胶中的羟基磷灰石/磷酸三钙(HA/TCP)颗粒构成。本研究的目的是在体内评估这种负载未分化骨髓基质细胞(BMSCs)的支架的生物相容性和新骨形成功效。将这种生物材料与从C57BL/6小鼠制备的BMSCs即时混合,注射到皮下和肌肉部位,并在植入后4周和8周取出。对植入物进行解剖发现其质地坚硬,且没有纤维囊,这反映出它与宿主组织的良好整合。组织学分析显示,在颗粒间隙中有矿化编织骨,通过对TRAP活性和V-ATPase的a3亚基呈阳性染色的多核细胞的存在评估,有大量活跃的破骨细胞附着在颗粒上。小血管均匀分布于整个植入物中。在皮下和肌肉部位均获得了类似结果,当注射无细胞和无颗粒的移植物时,对照组未观察到骨形成。这些结果表明,这种与未分化BMSCs混合的可注射双相磷酸钙 - 水凝胶复合材料是一种有前景的新型骨诱导性骨替代物。它还提供了一种独特的破骨细胞分化和功能的体内模型。