Three-Dimensional Printing Bioceramic Scaffolds Using Direct-Ink-Writing for Craniomaxillofacial Bone Regeneration.

IF 2.7 4区 医学 Q3 CELL & TISSUE ENGINEERING
Vasudev Vivekanand Nayak, Blaire V Slavin, Edmara T P Bergamo, Andrea Torroni, Christopher M Runyan, Roberto L Flores, F Kurtis Kasper, Simon Young, Paulo G Coelho, Lukasz Witek
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Abstract

Defects characterized as large osseous voids in bone, in certain circumstances, are difficult to treat, requiring extensive treatments which lead to an increased financial burden, pain, and prolonged hospital stays. Grafts exist to aid in bone tissue regeneration (BTR), among which ceramic-based grafts have become increasingly popular due to their biocompatibility and resorbability. BTR using bioceramic materials such as β-tricalcium phosphate has seen tremendous progress and has been extensively used in the fabrication of biomimetic scaffolds through the three-dimensional printing (3DP) workflow. 3DP has hence revolutionized BTR by offering unparalleled potential for the creation of complex, patient, and anatomic location-specific structures. More importantly, it has enabled the production of biomimetic scaffolds with porous structures that mimic the natural extracellular matrix while allowing for cell growth-a critical factor in determining the overall success of the BTR modality. While the concept of 3DP bioceramic bone tissue scaffolds for human applications is nascent, numerous studies have highlighted its potential in restoring both form and function of critically sized defects in a wide variety of translational models. In this review, we summarize these recent advancements and present a review of the engineering principles and methodologies that are vital for using 3DP technology for craniomaxillofacial reconstructive applications. Moreover, we highlight future advances in the field of dynamic 3D printed constructs via shape-memory effect, and comment on pharmacological manipulation and bioactive molecules required to treat a wider range of boney defects.

利用直接油墨书写技术三维打印生物陶瓷支架,用于颅颌面骨再生。
在某些情况下,以骨质大空洞为特征的骨缺损很难治疗,需要进行大量治疗,从而导致经济负担加重、疼痛和住院时间延长。现有的移植物可以帮助骨组织再生(BTR),其中以陶瓷为基础的移植物因其生物相容性和可吸收性而越来越受欢迎。使用生物陶瓷材料(如β-磷酸三钙)的骨组织再生技术取得了巨大进步,并通过三维打印(3DP)工作流程广泛应用于仿生支架的制造。因此,3DP 为制造复杂的、针对患者和特定解剖位置的结构提供了无与伦比的潜力,从而彻底改变了 BTR。更重要的是,3DP 能够制造出具有多孔结构的仿生支架,这种支架既能模拟天然细胞外基质,又能促进细胞生长--这是决定 BTR 方式能否取得全面成功的关键因素。虽然 3DP 生物陶瓷骨组织支架在人类应用中的概念尚处于萌芽阶段,但许多研究都强调了它在各种转化模型中恢复严重大小缺损的形态和功能的潜力。在这篇综述中,我们总结了这些最新进展,并对将 3DP 技术用于颅颌面整形应用所必需的工程原理和方法进行了综述。此外,我们还重点介绍了通过形状记忆效应实现动态 3D 打印结构领域的未来进展,并对治疗更广泛骨缺损所需的药理操作和生物活性分子进行了评论。
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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.
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