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多室支架用于协调牙周组织工程。

Multicompartmental Scaffolds for Coordinated Periodontal Tissue Engineering.

机构信息

Biointerfaces Institute, University of Michigan, Ann Arbor, MI, USA.

Department of Periodontics and Oral Medicine, School of Dentistry, University of Michigan, Ann Arbor, MI, USA.

出版信息

J Dent Res. 2022 Nov;101(12):1457-1466. doi: 10.1177/00220345221099823. Epub 2022 Jun 10.

Abstract

Successful periodontal repair and regeneration requires the coordinated responses from soft and hard tissues as well as the soft tissue-to-bone interfaces. Inspired by the hierarchical structure of native periodontal tissues, tissue engineering technology provides unique opportunities to coordinate multiple cell types into scaffolds that mimic the natural periodontal structure in vitro. In this study, we designed and fabricated highly ordered multicompartmental scaffolds by melt electrowriting, an advanced 3-dimensional (3D) printing technique. This strategy attempted to mimic the characteristic periodontal microenvironment through multicompartmental constructs comprising 3 tissue-specific regions: 1) a bone compartment with dense mesh structure, 2) a ligament compartment mimicking the highly aligned periodontal ligaments (PDLs), and 3) a transition region that bridges the bone and ligament, a critical feature that differentiates this system from mono- or bicompartmental alternatives. The multicompartmental constructs successfully achieved coordinated proliferation and differentiation of multiple cell types in vitro within short time, including both ligamentous- and bone-derived cells. Long-term 3D coculture of primary human osteoblasts and PDL fibroblasts led to a mineral gradient from calcified to uncalcified regions with PDL-like insertions within the transition region, an effect that is challenging to achieve with mono- or bicompartmental platforms. This process effectively recapitulates the key feature of interfacial tissues in periodontium. Collectively, this tissue-engineered approach offers a fundament for engineering periodontal tissue constructs with characteristic 3D microenvironments similar to native tissues. This multicompartmental 3D printing approach is also highly compatible with the design of next-generation scaffolds, with both highly adjustable compartmentalization properties and patient-specific shapes, for multitissue engineering in complex periodontal defects.

摘要

成功的牙周组织修复和再生需要软组织和硬组织以及软组织-骨界面的协调反应。受天然牙周组织分层结构的启发,组织工程技术为协调多种细胞类型到体外模拟天然牙周结构的支架提供了独特的机会。在这项研究中,我们通过熔融静电纺丝设计和制造了高度有序的多腔支架,这是一种先进的 3D 打印技术。该策略试图通过包含 3 个组织特异性区域的多腔结构来模拟特征性牙周微环境:1)具有致密网格结构的骨腔;2)模拟高度排列的牙周韧带(PDL)的韧带腔;3)连接骨和韧带的过渡区,这一特征使该系统有别于单腔或双腔替代物。多腔结构成功地在短时间内实现了多种细胞类型的协调增殖和分化,包括韧带源性细胞和骨源性细胞。原代人成骨细胞和牙周膜成纤维细胞的长期 3D 共培养导致了从钙化区到未钙化区的矿物质梯度,并且在过渡区出现了类似于 PDL 的插入物,这是单腔或双腔平台难以实现的效果。该过程有效地再现了牙周组织界面组织的关键特征。总的来说,这种组织工程方法为具有类似于天然组织的特征性 3D 微环境的牙周组织构建体工程提供了基础。这种多腔 3D 打印方法还与下一代支架的设计高度兼容,具有高度可调节的分区特性和患者特定的形状,适用于复杂牙周缺陷的多组织工程。

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Multicompartmental Scaffolds for Coordinated Periodontal Tissue Engineering.多室支架用于协调牙周组织工程。
J Dent Res. 2022 Nov;101(12):1457-1466. doi: 10.1177/00220345221099823. Epub 2022 Jun 10.

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