低剪切模拟微重力在三维细胞生物学和组织工程中的应用。

Stephen Navran
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引用次数: 42

摘要

细胞培养的方法100年来几乎没有变化。直到最近,生命科学家还只能满足于二维细胞培养技术。显然,生物不是在二维空间中构建的,因此人们普遍认为,体外培养系统必须成为三维的,才能正确地模拟体内生物学。尝试修改传统的二维培养技术以适应三维细胞生长,如将细胞嵌入细胞外基质中,已经证明了概念的优越性。然而,这种方法存在严重的缺点,包括有限的大规模运输和缺乏可扩展性。最近,美国国家航空航天局开发了一种新的细胞培养技术,用于研究微重力对细胞的影响,该技术解决了3d细胞培养的许多问题。该技术,旋转壁容器(RWV)是由一个充满流体的圆柱形水平旋转培养容器组成的单轴回转器。放置在这种环境中的细胞被重力、离心力和科里奥利力的分辨率所悬浮,机械剪切极低。这些条件被称为“低剪切模拟微重力”,使细胞能够聚集成类似组织的聚集体,大量运输营养物质、氧气和废物。讨论了RWV在基础细胞生物学研究和组织工程应用中的应用实例。
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The application of low shear modeled microgravity to 3-D cell biology and tissue engineering.

The practice of cell culture has been virtually unchanged for 100 years. Until recently, life scientists have had to content themselves with two-dimensional cell culture technology. Clearly, living creatures are not constructed in two dimensions and thus it has become widely recognized that in vitro culture systems must become three dimensional to correctly model in vivo biology. Attempts to modify conventional 2-D culture technology to accommodate 3-D cell growth such as embedding cells in extracellular matrix have demonstrated the superiority of concept. Nevertheless, there are serious drawbacks to this approach including limited mass transport and lack of scalability. Recently, a new cell culture technology developed at NASA to study the effects of microgravity on cells has emerged to solve many of the problems of 3-D cell culture. The technology, the Rotating Wall Vessel (RWV) is a single axis clinostat consisting of a fluid-filled, cylindrical, horizontally rotating culture vessel. Cells placed in this environment are suspended by the resolution of the gravitational, centrifugal and Coriolis forces with extremely low mechanical shear. These conditions, which have been called "low shear modeled microgravity", enable cells to assemble into tissue-like aggregates with high mass transport of nutrients, oxygen and wastes. Examples of the use of the RWV for basic cell biology research and tissue engineering applications are discussed.

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