口腔种植研究的革命性变革:三维体外模型系统综述

IF 2.7 4区 医学 Q3 CELL & TISSUE ENGINEERING Tissue engineering. Part C, Methods Pub Date : 2024-04-08 DOI:10.1089/ten.tec.2023.0380
Ghannaa Shayya, Clémentine Benedetti, Lise Chagot, Marie-Laure Stachowicz, Olivier Chassande, Sylvain Catros
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引用次数: 0

摘要

种植牙已在临床上应用了近五十年,成功率很高。用于种植牙的体外研究模型仅限于二维实验,这种实验具有可重复性,能很好地评估单一参数,但不能再现临床环境的复杂性。相反,使用动物的体内研究模型具有与人类相似的组织学和解剖学特征,组织愈合可以接近临床情况,但这些模型通常伴随着伦理问题,而且由于物种间的差异,其结果不能推断到人类身上。因此,开发新型体外模型来再现牙科种植体植入过程中发生的生理事件对目前的牙科研究具有特别重要的意义。此外,还可以通过设置病理环境(种植体周围炎)来挑战这些模型,从而更好地了解疾病,并最终将其作为评估新型治疗模式的平台。本系统性文献综述旨在涵盖所有可用于种植牙研究的体外三维(3D)复杂模型。为此,我们使用特定的关键词以及纳入/排除标准对 Scopus 和 PubMed 数据库中的文献进行了全面检索。在找到的 1334 篇文章中,我们最终将 27 篇发表于 2001 年至 2022 年之间的文章纳入了本综述。在这些文章中,三维模型旨在研究骨或牙龈组织中的组织-种植体界面行为。这些文章的重点是模拟种植体的整合、评估不同条件对种植体整合的影响或开发种植体整合过程的感染模型。所使用的方法涉及种植体材料和以特定三维结构组织的细胞。所开发的三维模型能够模拟牙科种植体骨与软组织的整合过程,其结果可与传统的体外和体内模型相媲美。获得的文章数量相对有限,这表明这是一个新兴领域,高度依赖于生物技术和组织工程学的进步,还需要进一步研究,以改进这些三维体外模型。
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Revolutionizing Dental Implant Research: A Systematic Review on Three-Dimensional In Vitro Models.
Dental implants have been clinically used for almost five decades with high success rates. In vitro research models used in implant dentistry are limited to two-dimensional experiments, which are reproducible and well adapted to evaluate a single parameter but do not reproduce the complexity of clinical settings. On the contrary, the in vivo research models using animals offer similar histological and anatomical features to humans, and tissue healing can be close to a clinical situation, but those models are usually accompanied with ethical concerns, and their outcomes could not be extrapolated to humans because of interspecies variabilities. This makes the development of novel in vitro models that recapitulate physiological events occurring during dental implant placement of particular interest for current research in dentistry. Also, such models could be challenged by setting a pathological environment (peri-implantitis) to better understand the disease and eventually serve as a platform to evaluate novel treatment modalities. The aim of this systematic literature review was to cover all the in vitro three-dimensional (3D) complex models available for research in implant dentistry. To accomplish this, a comprehensive search of the literature present on Scopus and PubMed databases was done using specific keywords, as well as inclusion/exclusion criteria. Out of 1334 articles found, we have finally included 27 articles in this review with publication dates between 2001 and 2022. In those articles, the 3D models were designed to study tissue-implant interface behavior in bone or gingival tissue. The articles focused on simulating implant integration, evaluating the effect of different conditions on implant integration, or developing an infection model for the implant integration process. The methods used involved implant material and cells organized in a specific 3D structure. The 3D models developed were able to simulate the process of dental implant osseo- and soft tissue integration and lead to results comparable with conventional in vitro and in vivo models. A relatively limited number of articles were obtained, which indicates that this is an emerging field, highly dependent on progresses made in biotechnologies and tissue engineering, and that further investigation is needed to enhance these 3D in vitro models.
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来源期刊
Tissue engineering. Part C, Methods
Tissue engineering. Part C, Methods Medicine-Medicine (miscellaneous)
CiteScore
5.10
自引率
3.30%
发文量
136
期刊介绍: Tissue Engineering is the preeminent, biomedical journal advancing the field with cutting-edge research and applications that repair or regenerate portions or whole tissues. This multidisciplinary journal brings together the principles of engineering and life sciences in the creation of artificial tissues and regenerative medicine. Tissue Engineering is divided into three parts, providing a central forum for groundbreaking scientific research and developments of clinical applications from leading experts in the field that will enable the functional replacement of tissues. Tissue Engineering Methods (Part C) presents innovative tools and assays in scaffold development, stem cells and biologically active molecules to advance the field and to support clinical translation. Part C publishes monthly.
期刊最新文献
Autoinduction-Based Quantification of In Situ TGF-β Activity in Native and Engineered Cartilage. Development and Biocompatibility Assessment of Decellularized Porcine Uterine Extracellular Matrix-Derived Grafts. Synthetic Bone Blocks Produced by Additive Manufacturing in the Repair of Critical Bone Defects. Tissue-Engineered Oral Epithelium for Dental Material Testing: Toward In Vitro Biomimetic Models. Growth Differentiation Factor 5-Induced Mesenchymal Stromal Cells Enhance Tendon Healing.
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