Department of Oral and Maxillofacial Surgery, University Medical Center Mainz, Augustusplatz 2, 55131 Mainz, Germany.
Department of Otorhinolaryngology, University Medical Center Mainz, Langenbeck Str. 1, 55131 Mainz, Germany.
Int J Mol Sci. 2023 Mar 21;24(6):5936. doi: 10.3390/ijms24065936.
Periodontitis is a chronic biofilm-associated inflammatory disease of the tooth-supporting tissues that causes tooth loss. It is strongly associated with anaerobic bacterial colonization and represents a substantial global health burden. Due to a local hypoxic environment, tissue regeneration is impaired. Oxygen therapy has shown promising results as a potential treatment of periodontitis, but so far, local oxygen delivery remains a key technical challenge. An oxygen (O)-releasing hyaluronic acid (HA)-based dispersion with a controlled oxygen delivery was developed. Cell viability of primary human fibroblasts, osteoblasts, and HUVECs was demonstrated, and biocompatibility was tested using a chorioallantoic membrane assay (CAM assay). Suppression of anaerobic growth of was shown using the broth microdilution assay. In vitro assays showed that the O-releasing HA was not cytotoxic towards human primary fibroblasts, osteoblasts, and HUVECs. In vivo, angiogenesis was enhanced in a CAM assay, although not to a statistically significant degree. Growth of was inhibited by CaO concentrations higher than 256 mg/L. Taken together, the results of this study demonstrate the biocompatibility and selective antimicrobial activity against for the developed O-releasing HA-based dispersion and the potential of O-releasing biomaterials for periodontal tissue regeneration.
牙周炎是一种与牙支持组织相关的慢性生物膜相关性炎症疾病,可导致牙齿脱落。它与厌氧细菌定植密切相关,是全球健康的重大负担。由于局部缺氧环境,组织再生受到损害。氧疗已显示出作为治疗牙周炎的一种有前途的治疗方法,但到目前为止,局部供氧仍然是一个关键的技术挑战。开发了一种具有受控氧输送的含氧透明质酸(HA)分散体。证明了原代人成纤维细胞、成骨细胞和 HUVEC 的细胞活力,并使用绒毛尿囊膜试验(CAM 试验)测试了生物相容性。使用肉汤微量稀释试验显示该分散体抑制了 的厌氧生长。体外试验表明,释放氧的 HA 对人原代成纤维细胞、成骨细胞和 HUVEC 没有细胞毒性。在体内,CAM 试验中血管生成得到增强,但没有达到统计学显著程度。CaO 浓度高于 256mg/L 时, 生长受到抑制。总之,本研究结果表明,所开发的含氧透明质酸分散体具有生物相容性和对 的选择性抗菌活性,以及释放氧的生物材料在牙周组织再生中的潜力。