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Total disc replacement using a tissue-engineered intervertebral disc in vivo: new animal model and initial results

机译:使用体内组织工程化的椎间盘进行全盘置换:新动物模型和初步结果

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>Study type: Basic science>Introduction: Chronic back pain due to degenerative disc disease (DDD) is among the most important medical conditions causing morbidity and significant health care costs. Surgical treatment options include disc replacement or fusion surgery, but are associated with significant short- and long-term risks. Biological tissue-engineering of human intervertebral discs (IVD) could offer an important alternative. Recent in vitro data from our group have shown successful engineering and growth of ovine intervertebral disc composites with circumferentially aligned collagen fibrils in the annulus fibrosus (AF) (). Tissue-engineered composite disc >a Experimental steps to generate composite tissue-engineered IVDs >b Example of different AF formulations on collagen alignment in the AF. Second harmonic generation and two-photon excited fluorescence images of seeded collagen gels (for AF) of 1 and 2.5 mg/ml over time. At seeding, cells and collagen were homogenously distributed in the gels. Over time, AF cells elongated and collagen aligned parallel to cells. Less contraction and less alignment is noted after 3 days in the 2.5 mg/mL gel. >c Imaging-based creation of a virtual disc model that will serve as template for the engineered disc. Total disc dimensions (AF and NP) were retrieved from micro-computer tomography (CT) (left images), and nucleus pulposus (NP) dimensions alone were retrieved from T2-weighted MRI images (right images). Merging of MRI and micro-CT models revealed a composite disc model (middle image)—Software: Microview, GE Healthcare Inc., Princeton, NJ; and slicOmatic v4.3, TomoVision, Montreal, Canada. >d Flow chart describing the process for generating multi-lamellar tissue engineered IVDs. IVDs are produced by allowing cell-seeded collagen layers to contract around a cell-seeded alginate core (NP) over time
机译:>研究类型:基础科学>简介:由于椎间盘退行性疾病(DDD)引起的慢性背痛是导致发病率和医疗费用高昂的最重要医疗条件之一。外科治疗方法包括椎间盘置换或融合手术,但会带来重大的短期和长期风险。 人椎间盘(IVD)的生物组织工程学可以提供重要的替代选择。 我们小组最近的体外数据显示,在纤维环(AF)()中具有周向排列的胶原纤维的绵羊椎间盘复合物的成功工程化和生长。 <!-fig ft0 -> <!-fig mode = article f1-> <!-标题a7->组织工程复合盘> a 生成复合组织工程IVD的实验步骤 > b 不同AF配方对AF中胶原蛋白排列的示例。种子胶原凝胶(用于AF)的二次谐波生成和双光子激发荧光图像随时间变化分别为1和2.5 mg / ml。接种时,细胞和胶原蛋白均匀分布在凝胶中。随着时间的流逝,AF细胞拉长,胶原蛋白与细胞平行排列。在2.5 mg / mL凝胶中放置3天后,收缩和对齐程度降低。 > c 基于映像的虚拟磁盘模型创建,它将用作工程磁盘的模板。从微型计算机断层扫描(CT)中检索出椎间盘的总尺寸(AF和NP)(左图),仅从T2加权MRI图像中检索出髓核(NP)尺寸(右图)。 MRI和micro-CT模型的合并显示了一个合成的光盘模型(中间图像)—软件:Microview,GE Healthcare Inc.,新泽西州普林斯顿;和slicOmatic v4.3,TomoVision,加拿大蒙特利尔。 > d 流程图,描述了生成多层组织工程化IVD的过程。 IVD是通过使细胞接种的胶原蛋白层随时间在细胞接种的藻酸盐核心(NP)周围收缩而产生的

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