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利用3D打印纳米光催化杀菌支架定制骨免疫和止血以促进骨再生

Tailoring osteoimmunity and hemostasis using 3D-Printed nano-photocatalytic bactericidal scaffold for augmented bone regeneration.

作者信息

Dutta Sayan Deb, Hexiu Jin, Moniruzzaman Md, Patil Tejal V, Acharya Rumi, Kim Jong Sung, Lim Ki-Taek

机构信息

Department of Biosystems Engineering, Kangwon National University, Chuncheon, 24341, Republic of Korea; Institute of Forest Science, Kangwon National University, Chuncheon, 24341, Republic of Korea; Center for Surgical Bioengineering, Department of Surgery, School of Medicine, University of California Davis, Sacramento, CA, 95817, United States.

Department of Oral and Maxillofacial Surgery, Capital Medical University, Beijing-1000054, China.

出版信息

Biomaterials. 2025 May;316:122991. doi: 10.1016/j.biomaterials.2024.122991. Epub 2024 Dec 6.

Abstract

Bone hemorrhage, infection, and large bone defects following surgical treatment of traumatic bone injury have raised potential concerns, underscoring the urgent need to develop multifunctional therapeutic platforms that can effectively address traumatic bone regeneration. Advancements in three-dimensional (3D) printing technology have propelled the development of several engineering disciplines, such as tissue engineering. Nevertheless, 3D-printed frameworks with conventional materials often lack multifunctional capabilities to promote specific activities for diverse regeneration purposes. In this study, we developed a highly oxidized two-dimensional (2D) graphitic carbon nitride (Ox-gCN) as a nano-photocatalyst to reinforce alginate/gelatin (ALG)-based hydrogel scaffolds (ALG/CN) to achieve an anti-inflammatory and osteo-immunomodulatory niche with superior hemostatic ability for traumatic bone injury repair. Sulfuric acid oxidation enhances the oxygen-containing functional groups of the g-CN surface and promotes cell adhesion and differentiation of human bone marrow-derived mesenchymal stem cells (hBMSCs) in vitro. Moreover, the excellent visible light-activated photocatalytic characteristics of the ALG/CN scaffold were used in antibacterial studies. In addition, the ALG/CN bio/nanocomposite scaffold facilitates M2 polarization of macrophages than did pristine ALG scaffolds. Furthermore, ALG/CN scaffold induced hBMSCs differentiation by upregulating ERK and MAPKs phosphorylation during osteo-immunomodulation. In a rat calvaria defect model, the fabricated ALG/CN scaffolds induced new bone formation through collagen deposition and activation of osteocalcin proteins without inflammation in vivo. These results highlight the potential of 3D-printed functionalized 2D carbon nitrides in regulating the bone immune microenvironment, which may be beneficial for developing advanced tissue constructs, especially for traumatic bone regeneration in clinical settings.

摘要

创伤性骨损伤手术治疗后出现的骨出血、感染和大的骨缺损引发了潜在担忧,凸显了开发能够有效解决创伤性骨再生问题的多功能治疗平台的迫切需求。三维(3D)打印技术的进步推动了包括组织工程在内的多个工程学科的发展。然而,采用传统材料的3D打印框架通常缺乏促进多种再生目的特定活动的多功能能力。在本研究中,我们开发了一种高度氧化的二维(2D)石墨相氮化碳(Ox-gCN)作为纳米光催化剂,以增强基于藻酸盐/明胶(ALG)的水凝胶支架(ALG/CN),从而实现具有卓越止血能力的抗炎和骨免疫调节微环境,用于创伤性骨损伤修复。硫酸氧化增强了g-CN表面的含氧官能团,并在体外促进了人骨髓间充质干细胞(hBMSCs)的细胞黏附和分化。此外,ALG/CN支架优异的可见光激活光催化特性被用于抗菌研究。另外,与原始ALG支架相比,ALG/CN生物/纳米复合支架更有利于巨噬细胞的M2极化。此外,ALG/CN支架在骨免疫调节过程中通过上调ERK和MAPKs磷酸化来诱导hBMSCs分化。在大鼠颅骨缺损模型中,制备的ALG/CN支架在体内通过胶原沉积和骨钙蛋白的激活诱导新骨形成,且无炎症反应。这些结果突出了3D打印功能化二维碳氮化物在调节骨免疫微环境方面的潜力,这可能有利于开发先进的组织构建体,特别是在临床环境中用于创伤性骨再生。

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