结合 "废物利用 "和 "组织到组织 "策略,加速骨修复中的血管形成

IF 5.9 1区 医学 Q1 ORTHOPEDICS Journal of Orthopaedic Translation Pub Date : 2024-07-01 DOI:10.1016/j.jot.2024.04.002
Zexi Li , Huan Wang , Kexin Li , Weishan Wang , Jinjin Ma , Zhao Liu , Bin Li , Jiaying Li , Fengxuan Han , Can Xiao
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引用次数: 0

摘要

背景组织再生成功的关键在于建立足够的血管。利用供体的自体组织移植物具有双重优势,既能降低疾病传播的风险,又能避免移植后的免疫抑制,因此是血管化策略的典范。在各种潜在的自体供体中,脂肪组织因其来源广泛、成分丰富而成为特别理想的来源。值得注意的是,脂肪衍生微血管片段(ad-MVFs)是一种很有希望的血管化候选材料。ad-MVFs可在短时间内从脂肪组织中分离出来,并显示出很高的血管化能力。在这项研究中,我们从脂肪组织中提取了 ad-MVFs,并利用其强大的血管生成能力,通过促进血管生成来加速骨修复。为了保持血管的完整性,选择了明胶甲基丙烯酰(GelMA)水凝胶作为三维(3D)培养 ad-MVFs 的载体。作为对照,广告-MVFs 直接在孔板上进行二维(2D)培养。在二维和三维培养条件下均观察了广告-MVFs的形态,并评估了两种培养条件下血管内皮生长因子(VEGF)和骨形态发生蛋白2(BMP-2)的释放水平。体外研究调查了 ad-MVFs/GelMA 水凝胶对大鼠骨髓间充质干细胞(rBMSCs)的毒性、成骨活性和矿化的影响,以及成骨基因和蛋白质的表达情况。体内实验包括将 ad-MVFs/GelMA 水凝胶植入大鼠临界大小的颅骨缺损处,并通过放射学和组织学方法评估其成骨能力。在二维条件下培养时,ad-MVFs 表现出逐渐崩解并失去原有的血管形态。与二维培养相比,广告-MVFs 在三维培养条件下不仅能保持原有的血管形态,还能在水凝胶中连接成网状。此外,VEGF 和 BMP-2 的释放水平明显高于二维培养。此外,ad-MVFs/GelMA 水凝胶还表现出卓越的骨诱导活性。将广告-MVFs/GelMA 水凝胶植入大鼠颅骨缺损处后,其血管生成和骨生成效果明显。预计未来的临床应用将把废弃的脂肪组织转化为个性化组织修复的宝贵资源,从而实现这一丰富生物材料利用模式的转变。
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Combining "waste utilization" and "tissue to tissue" strategies to accelerate vascularization for bone repair

Background

A pivotal determinant for the success of tissue regeneration lies in the establishment of sufficient vasculature. Utilizing autologous tissue grafts from donors offers the dual advantage of mitigating the risk of disease transmission and circumventing the necessity for post-transplant immunosuppression, rendering it an exemplary vascularization strategy. Among the various potential autologous donors, adipose tissue emerges as a particularly auspicious source, being both widely available and compositionally rich. Notably, adipose-derived microvascular fragments (ad-MVFs) are a promising candidate for vascularization. ad-MVFs can be isolated from adipose tissue in a short period of time and show high vascularized capacity. In this study, we extracted ad-MVFs from adipose tissue and utilized their strong angiogenic ability to accelerate bone repair by promoting vascularization.

Methods

ad-MVFs were extracted from the rat epididymis using enzymatic hydrolysis. To preserve the integrity of the blood vessels, gelatin methacryloyl (GelMA) hydrogel was chosen as the carrier for ad-MVFs in three-dimensional (3D) culture. The ad-MVFs were cultured directly on the well plates for two-dimensional (2D) culture as a control. The morphology of ad-MVFs was observed under both 2D and 3D cultures, and the release levels of vascular endothelial growth factor (VEGF) and bone morphogenetic protein 2 (BMP-2) were assessed under both culture conditions. In vitro studies investigated the impact of ad-MVFs/GelMA hydrogel on the toxicity, osteoblastic activity, and mineralization of rat bone marrow mesenchymal stem cells (rBMSCs), along with the examination of osteogenic gene and protein expression. In vivo experiments involved implanting the ad-MVFs/GelMA hydrogel into critical-size skull defects in rats, and its osteogenic ability was evaluated through radiographic and histological methods.

Results

ad-MVFs were successfully isolated from rat adipose tissue. When cultured under 2D conditions, ad-MVFs exhibited a gradual disintegration and loss of their original vascular morphology. Compared with 2D culture, ad-MVFs can not only maintain the original vascular morphology, but also connect into a network in hydrogel under 3D culture condition. Moreover, the release levels of VEGF and BMP-2 were significantly higher than those in 2D culture. Moreover, the ad-MVFs/GelMA hydrogel exhibited superior osteoinductive activity. After implanting into the skull defect of rats, the ad-MVFs/GelMA hydrogel showed obvious effects for angiogenesis and osteogenesis.

The translational potential of this article

The utilization of autologous adipose tissue as a donor presents a more direct route toward clinical translation. Anticipated future clinical applications envision the transformation of discarded adipose tissue into a valuable resource for personalized tissue repair, thereby realizing a paradigm shift in the utilization of this abundant biological material.

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来源期刊
Journal of Orthopaedic Translation
Journal of Orthopaedic Translation Medicine-Orthopedics and Sports Medicine
CiteScore
11.80
自引率
13.60%
发文量
91
审稿时长
29 days
期刊介绍: The Journal of Orthopaedic Translation (JOT) is the official peer-reviewed, open access journal of the Chinese Speaking Orthopaedic Society (CSOS) and the International Chinese Musculoskeletal Research Society (ICMRS). It is published quarterly, in January, April, July and October, by Elsevier.
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