Bai Yunpeng, Kanno Takahiro, Tatsumi Hiroto, Miyamoto Kenichi, Sha Jingjing, Hideshima Katsumi, Matsuzaki Yumi
Department of Oral and Maxillofacial Surgery, Shimane University Faculty of Medicine, 89-1 Enya-Cho, Izumo, Shimane 693-8501, Japan.
Division of Oral and Maxillofacial Surgery, Oki Hospital, 355 Johokumachi, Okinoshima-Cho, Oki-Gun, Shimane 685-0016, Japan.
Materials (Basel). 2018 Oct 20;11(10):2047. doi: 10.3390/ma11102047.
This study evaluated the feasibility of a novel three-dimensional (3D) porous composite of uncalcined and unsintered hydroxyapatite (u-HA) and poly-d/l-lactide (PDLLA) (3D-HA/PDLLA) for the bony regenerative biomaterial in maxillofacial surgery, focusing on cellular activities and osteoconductivity properties in vitro and in vivo. In the in vitro study, we assessed the proliferation and ingrowth of preosteoblastic cells (MC3T3-E1 cells) in 3D-HA/PDLLA biomaterials using 3D cell culture, and the results indicated enhanced bioactive proliferation. After osteogenic differentiation of those cells on 3D-HA/PDLLA, the osteogenesis marker genes runt-related transcription factor-2 (Runx2), and Sp7 (Osterix) were upregulated. For the in vivo study, we evaluated the utility of 3D-HA/PDLLA biomaterials compared to the conventional bone substitute of beta-tricalcium phosphate (β-TCP) in rats with critical mandibular bony defects. The implantation of 3D-HA/PDLLA biomaterials resulted in enhanced bone regeneration, by inducing high osteoconductivity as well as higher β-TCP levels. Our study thus showed that the novel composite, 3D-HA/PDLLA, is an excellent bioactive/bioresorbable biomaterial for use as a cellular scaffold, both in vitro and in vivo, and has utility in bone regenerative therapy, such as for patients with irregular maxillofacial bone defects.
本研究评估了一种新型的未煅烧和未烧结羟基磷灰石(u-HA)与聚-d/l-丙交酯(PDLLA)的三维(3D)多孔复合材料(3D-HA/PDLLA)作为颌面外科骨再生生物材料的可行性,重点关注其在体外和体内的细胞活性及骨传导性能。在体外研究中,我们使用3D细胞培养评估了前成骨细胞(MC3T3-E1细胞)在3D-HA/PDLLA生物材料中的增殖和向内生长情况,结果表明其生物活性增殖增强。这些细胞在3D-HA/PDLLA上进行成骨分化后,成骨标记基因 runt相关转录因子-2(Runx2)和Sp7(Osterix)上调。在体内研究中,我们在患有严重下颌骨骨缺损的大鼠中,将3D-HA/PDLLA生物材料与传统的骨替代物β-磷酸三钙(β-TCP)进行了比较。3D-HA/PDLLA生物材料的植入通过诱导高骨传导性以及更高的β-TCP水平,促进了骨再生。我们的研究表明,新型复合材料3D-HA/PDLLA在体外和体内都是一种优异的生物活性/可生物吸收生物材料,可作为细胞支架,在骨再生治疗中具有实用性,例如用于治疗颌面骨不规则缺损的患者。