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Nutrient Channels Aid the Growth of Articular Surface-Sized Engineered Cartilage Constructs

机译:营养通道有助于关节表面大小的工程软骨构建体的生长。

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摘要

Symptomatic osteoarthritic lesions span large regions of joint surfaces and the ability to engineer cartilage constructs at clinically relevant sizes would be highly desirable. We previously demonstrated that nutrient transport limitations can be mitigated by the introduction of channels in 10 mm diameter cartilage constructs. In this study, we scaled up our previous system to cast and cultivate 40 mm diameter constructs (2.3 mm overall thickness); 4 mm diameter and channeled 10 mm diameter constructs were studied for comparison. Furthermore, to assess whether prior results using primary bovine cells are applicable for passaged cells—a more clinically realistic scenario—we cast constructs of each size with primary or twice-passaged cells. Constructs were assessed mechanically for equilibrium compressive Young's modulus (EY), dynamic modulus at 0.01 Hz (G*), and friction coefficient (μ); they were also assessed biochemically, histologically, and immunohistochemically for glycosaminoglycan (GAG) and collagen contents. By maintaining open channels, we successfully cultured robust constructs the size of entire human articular cartilage layers (growing to ∼52 mm in diameter, 4 mm thick, mass of 8 g by day 56), representing a 100-fold increase in scale over our 4 mm diameter constructs, without compromising their functional properties. Large constructs reached EY of up to 623 kPa and GAG contents up to 8.9%/ww (% of wet weight), both within native cartilage ranges, had G* >2 MPa, and up to 3.5%/ww collagen. Constructs also exhibited some of the lowest μ reported for engineered cartilage (0.06–0.11). Passaged cells produced tissue of lower quality, but still exhibited native EY and GAG content, similar to their smaller controls. The constructs produced in this study are, to our knowledge, the largest engineered cartilage constructs to date which possess native EY and GAG, and are a testament to the effectiveness of nutrient channels in overcoming transport limitations in cartilage tissue engineering.
机译:有症状的骨关节炎病变跨越关节表面的大区域,因此非常需要能够以临床相关尺寸改造软骨构造的能力。我们先前证明,通过在直径10mm的软骨构造中引入通道可以缓解营养物质运输的局限性。在这项研究中,我们扩大了以前的系统,以铸造和种植直径40毫米的结构(总厚度为2.3毫米)。为了比较,研究了直径为4mm的通道和直径为10mm的通道。此外,为了评估使用原代牛细胞的先前结果是否适用于传代细胞(在临床上更现实的情况),我们使用原代或两次传代细胞铸造了每种大小的构建体。机械评估构造物的平衡压缩杨氏模量(EY),0.01 Hz的动态模量(G *)和摩擦系数(μ);还对它们进行了生化,组织学和免疫组化的糖胺聚糖(GAG)和胶原蛋白含量评估。通过保持开放的通道,我们成功地培养了坚固的构建体,整个人关节软骨层的大小(直径增长到约52 mm,厚4 mm,到第56天质量为8 g),代表规模超过我们的100倍直径为4mm的结构,而不会影响其功能特性。大型构建物的EY高达623PakPa,GAG含量高达8.9%/ ww(湿重的%),均在天然软骨范围内,G *> 2 MPa,胶原蛋白高达3.5%/ ww。构造物还显示出工程软骨的最低μ值(0.06-0.11)。传代细胞产生的组织质量较低,但仍显示出天然的EY和GAG含量,类似于其较小的对照。据我们所知,本研究中产生的构建体是迄今为止最大的工程软骨构建体,它们具有天然的EY和GAG,证明了营养通道在克服软骨组织工程中的运输限制方面的有效性。

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