Draenert F G, Huetzen D, Neff A, Mueller W E G
Clinic for Oral & Maxillofacial Surgery, University of Marburg, 35033, Marburg, Germany; ERC Advanced Investigator Grant Research Group at the Institute for Physiological Chemistry, University Medical Center of the Johannes Gutenberg University, Duesbergweg 6, Mainz, Mainz, 55128, Germany.
J Biomed Mater Res A. 2014 May;102(5):1605-13. doi: 10.1002/jbm.a.34812. Epub 2013 Jun 11.
An appropriate bony situation is essential for dental implant placement and bony support of soft tissues (pink esthetic). Loss of teeth often results in complex horizontal and vertical alveolar ridge defects. They demand advanced bone augmentation techniques for reconstruction. We present the different techniques and materials used in complex bone augmentation. Clinical cases show the application of the methods in the clinical setting. We present current techniques and materials used in complex bone augmentations. Clinical cases show the application of the methods in the clinical setting. Applied techniques include stabilized-guided bone regeneration (GBR), autologous local block augmentation, modified techniques such as Gellrich shell technique including piezosurgery, pelvic bone blocks, complex materials such as graft-derived bone blocks and their unique handling problems. Successful basic principles are reduction of cortical bone healing due to long remodeling time and possible late loss; extended application of materials with interconnecting porous system and particulate material resulting in fast healing analogous to cancellous bone; mechanical stabilization of the augmentation to allow bony healing in vertical defect situations. GBR and autologous bone blocks with minimal cortical thickness and a high volume of particulated material are most favorable techniques.
合适的骨条件对于牙种植体植入和软组织的骨支持(粉色美学)至关重要。牙齿缺失常导致复杂的水平和垂直牙槽嵴缺损。这需要先进的骨增量技术来进行重建。我们介绍了复杂骨增量中使用的不同技术和材料。临床病例展示了这些方法在临床环境中的应用。我们介绍了复杂骨增量中使用的当前技术和材料。临床病例展示了这些方法在临床环境中的应用。应用的技术包括稳定引导骨再生(GBR)、自体局部块状增量、改良技术如包括压电手术的盖尔里希壳技术、骨盆骨块、复杂材料如移植衍生骨块及其独特的处理问题。成功的基本原则是减少由于长时间重塑和可能的后期丧失导致的皮质骨愈合;扩展应用具有相互连接的多孔系统的材料和颗粒材料,以实现类似于松质骨的快速愈合;对增量进行机械稳定,以允许在垂直缺损情况下实现骨愈合。GBR和具有最小皮质厚度和大量颗粒材料的自体骨块是最有利的技术。