Int J Oral Maxillofac Implants. 2013 Nov-Dec;28(6):e472-7. doi: 10.11607/jomi.te27.
Periodontitis is a chronic inflammatory disease associated with loss of periodontal attachment, collagen, and alveolar bone. Regeneration of periodontal tissues can be supported by the local application of enamel matrix derivative (EMD). However, periodontal regeneration remains a major and often unpredictable challenge as the result of a number of unknown factors. The authors' in vitro studies revealed that EMD stimulated the wound fill rate, proliferation, and adhesion of periodontal ligament (PDL) cells. However, in the presence of an inflammatory environment or biomechanical loading, the beneficial effects of EMD decreased significantly. EMD also stimulated the synthesis of growth factors and collagen, as well as calcium deposition, in PDL cell cultures. These beneficial effects of EMD on PDL cells were also significantly diminished by inflammation and biomechanical forces, respectively. The findings suggest that critical PDL cell functions pertinent to periodontal regeneration are reduced in an inflammatory environment and under biomechanical loading. Therefore, effective anti-infectious and anti-inflammatory periodontal treatment before the application of EMD may be critical to ensure the full regenerative capacity of the PDL tissue. Furthermore, occlusal loading of EMD-treated teeth, at least immediately following surgery, should be minimized to obtain optimal regenerative healing results. A better understanding of the interactions of growth factors and biomechanical signals will result in more powerful regenerative therapeutic strategies.
牙周炎是一种与牙周附着丧失、胶原和牙槽骨丧失有关的慢性炎症性疾病。釉基质衍生物 (EMD) 的局部应用可以支持牙周组织的再生。然而,由于许多未知因素,牙周再生仍然是一个主要的、往往不可预测的挑战。作者的体外研究表明,EMD 刺激牙周膜 (PDL) 细胞的伤口填充率、增殖和黏附。然而,在炎症环境或生物力学负荷存在的情况下,EMD 的有益作用显著降低。EMD 还刺激 PDL 细胞培养物中生长因子和胶原的合成以及钙沉积。炎症和生物力学力分别显著减弱了 EMD 对 PDL 细胞的这些有益作用。这些发现表明,与牙周再生相关的关键 PDL 细胞功能在炎症环境和生物力学负荷下减少。因此,在应用 EMD 之前,进行有效的抗感染和抗炎性牙周治疗可能对于确保 PDL 组织的完全再生能力至关重要。此外,在手术后,应尽量减少 EMD 处理的牙齿的咬合负荷,以获得最佳的再生愈合效果。更好地理解生长因子和生物力学信号的相互作用将产生更强大的再生治疗策略。