骨整合的三维理论:材料、地形和时间作为骨植入体整合的相互依赖的决定因素。

IF 4 3区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE
Takahiro Ogawa, Makoto Hirota, Rune Shibata, Takanori Matsuura, Keiji Komatsu, Juri Saruta, Wael Att
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引用次数: 0

摘要

尽管植牙在临床上取得了广泛的成功,但仍有几个基本问题尚未解决:骨整合(一种不同于传统骨愈合的生物学现象)究竟是如何发生的?为什么植骨接触从未达到100%?为什么在过去的三十年里,商业植入体表面的创新很少?为什么失败率稳定在8%左右?这篇综述介绍了骨整合的三维理论,该理论将种植体整合概念化为三个相互依存的动态决定因素:材料成分(维度1),表面形貌/粗糙度(维度2)和时间,它们对种植体表面的物理化学性质(维度3)产生重要影响。对于维度1,各种金属的生物相容性已经得到了广泛的研究,商业纯钛和钛合金已牢固地确立为种植牙的金标准。维度3强调了长期以来被忽视的时间影响,特别是由碳氢化合物积累和亲水性丧失引起的钛表面生物老化,这大大降低了骨导电性。重要的是,最近的研究发现,这种依赖时间的退化,曾经被视为不可避免的限制,实际上是完全可逆的。紫外线光功能化恢复表面亲水性,去除碳氢化合物污染物,恢复钛的生物活性。这一突破不仅解决了长期存在的最佳骨整合障碍,而且还建立了关键物理化学参数(如碳含量和表面润湿性)的定量阈值。因此,维度1和维度3——材料和物理化学性质——在优化方面趋于成熟。相比之下,尽管经过几十年的研究,微孔表面在临床上取得了成功,但第2维度,即表面形貌,仍然相对不发达。既然UV光功能化有效地缓解了生物老化并释放了植入物表面的全部物理化学势,那么表面形貌的进步将成为下一个关键前沿。这篇综述批判性地考察了每个维度,它们之间的相互作用,以及当前地形设计的局限性。它倡导从经验到机制驱动的种植体表面工程的转变,并强调需要在所有三个维度上有意协同。骨整合的3D理论为未来的种植体设计和研究提供了一个结构化的框架,旨在更好地控制和优化整合的生物过程,同时承认仍有待充分解决的复杂性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The 3D theory of osseointegration: material, topography, and time as interdependent determinants of bone-implant integration.

The 3D theory of osseointegration: material, topography, and time as interdependent determinants of bone-implant integration.

The 3D theory of osseointegration: material, topography, and time as interdependent determinants of bone-implant integration.

The 3D theory of osseointegration: material, topography, and time as interdependent determinants of bone-implant integration.

Despite widespread clinical success of dental implants, several fundamental questions remain unresolved: How does osseointegration-a biological phenomenon distinct from conventional bone healing-actually occur? Why does bone-implant contact never reach 100%? Why has there been minimal innovation in commercial implant surfaces over the past three decades? And why has the failure rate plateaued at around 8%? This review introduces the 3D Theory of Osseointegration, which conceptualizes implant integration as governed by three interdependent and dynamic determinants: material composition (Dimension 1), surface topography/roughness (Dimension 2), and time, which critically influences the physicochemical properties of implant surfaces (Dimension 3). For Dimension 1, the biocompatibility of various metals has been extensively studied, with commercially pure titanium and titanium alloys firmly established as the gold standard for dental implants. Dimension 3 underscores the long-overlooked impact of time-specifically, the biological aging of titanium surfaces caused by hydrocarbon accumulation and the loss of hydrophilicity-which significantly diminishes osteoconductivity. Importantly, recent studies have uncovered that this time-dependent degradation, once seen as an inevitable limitation, is in fact fully reversible. UV photofunctionalization restores surface hydrophilicity and removes hydrocarbon contaminants, revitalizing the bioactivity of titanium. This breakthrough not only resolves a long-standing barrier to optimal osseointegration but also establishes quantitative thresholds for key physicochemical parameters-such as carbon content and surface wettability. As a result, Dimensions 1 and 3-material and physicochemical properties-are approaching maturity in terms of optimization. In contrast, Dimension 2, surface topography, remains relatively underdeveloped despite decades of research and the clinical success of microrough surfaces. Now that UV photofunctionalization effectively mitigates biological aging and unlocks the full physicochemical potential of implant surfaces, the advancement of surface topography becomes the next critical frontier. This review critically examines each dimension, their interactions, and the limitations of current topographical design. It advocates for a shift from empirical to mechanism-driven engineering of implant surfaces and underscores the need for intentional synergy across all three dimensions. The 3D Theory of Osseointegration offers a structured framework to inform future implant design and research, aiming to better control and optimize the biological process of integration while acknowledging the complexities that still remain to be fully addressed.

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来源期刊
International Journal of Implant Dentistry
International Journal of Implant Dentistry DENTISTRY, ORAL SURGERY & MEDICINE-
CiteScore
1.70
自引率
7.40%
发文量
53
审稿时长
13 weeks
期刊介绍: The International Journal of Implant Dentistry is a peer-reviewed open access journal published under the SpringerOpen brand. The journal is dedicated to promoting the exchange and discussion of all research areas relevant to implant dentistry in the form of systematic literature or invited reviews, prospective and retrospective clinical studies, clinical case reports, basic laboratory and animal research, and articles on material research and engineering.
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