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A NOVEL AUTOMATION SYSTEM FOR MICROPLASMA SURFACE PATTERNING AND BIOLOGICS PRINTING

机译:一种新型的微血管表面图案化自动化系统和生物学印刷

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In the field of tissue engineering, regenerative medicine, and life sciences, the topological biochemical cues regulate cell attachment and alignment within the construct. In a native biological system, these cues are inherent. However, most of the biological materials utilized in the fabrication of tissue construct do not possess the appropriate cues required to develop an architecture to support the cell attachment and growth of a functional tissue Therefore the ability to manipulate structural and biochemical cues plays an important role in biofabrication process, and it is a key element to evaluate a engineered cellular model. Plasma surface functionalization and biologies printing have been investigated and validated as two effective techniques to guide cell functions by creating microenvironments. The objective of this work is to develop a novel dual functional platform for freeform microplasma surface patterning and biologies printing process as well as to study the underlying process science and the process induced cellular functions. The microplasma jet system was assembled by two parts. The upper part is a plastic NPT connector surrounding an extending high voltage copper electrode. The lower part is a dielectric Pasteur pipette connected with a capillary micro-scale nozzle tip. The lower part is interchangeable and the diameter of the tip ranges from 50 μm to 1 mm. With up to 20 kV output capability, a high-voltage power supply was connected to the copper electrode through the NPT connector which also served as gas inlet. A high-voltage probe linked to an oscilloscope is used to monitor the real time voltage. The whole microplasma jet system was set up on automation platform, which allows X-Y-Z motion control and switch control. This integrated system operates at atmospheric pressured environment. All tissue constructs could be fabricated at room temperature without the use of a mask. Clear polystyrene microplates were used as plasma treatment substrates. After O_2-He mixed microplasma treatment, 7F2 mouse osteoblastic cells were cultured in the microplates for cell biology studies. We demonstrated the capability of our dual functional platform by applying microplasma in the polystyrene wells and control group (without any treatment) in other wells of the same microplate substrate. The results show that the microplasma treatment changed the surface properties and improved cell attachment. This dual functional freeform system allows for surface patterning and printing of cells, proteins, growth factors, etc. to fabricate three-dimensional tissue constructs.
机译:在组织工程,再生医学和生命科学领域,拓扑生化提示调节细胞附着和构建体内的对准。在本地生物系统中,这些提示是固有的。然而,制造组织构建体中使用的大多数生物材料不具有所需的适当提示,以开发建筑以支持细胞附着,并且功能组织的生长因此操纵结构和生物化学线索的能力在生物制作过程,并且它是评估工程化蜂窝模型的关键要素。已经研究了等离子体表面官能化和生物学印刷,并验证了通过产生微环境来引导细胞功能的两种有效技术。这项工作的目的是开发一种新型功能平台,用于自由形状微血管表面图案化和生物学印刷过程,以及研究潜在的过程科学和过程诱导的细胞功能。将导管喷射系统组装成两部分。上部是围绕延伸的高压铜电极的塑料NPT连接器。下部是与毛细管微级喷嘴尖端连接的电介质巴氏炮液。下部可互换,尖端的直径范围为50μm至1mm。具有高达20kV的输出能力,高压电源通过NPT连接器连接到铜电极,该连接器也用作气体入口。连接到示波器的高压探头用于监测实时电压。整个显微基质喷射系统在自动化平台上设置,允许X-Y-Z运动控制和开关控制。该集成系统在大气压下运行。在不使用面罩的情况下,可以在室温下制造所有组织构建体。透明聚苯乙烯微孔板用作等离子体处理基材。在O_2-HE混合的显微血模床后,将7F2小鼠骨细胞细胞在微孔板中培养以进行细胞生物学研究。我们通过在相同微孔板基底的其他孔中施加聚苯乙烯孔和对照组(无需任何处理)来证明我们的双功能平台的能力。结果表明,微血导治疗改变了表面性质和改进的电池附着。这种双功能自由形式系统允许表面图案化和印刷细胞,蛋白质,生长因子等来制造三维组织构建体。

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