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Time-Dependent Pulsing of Microfluidic Pumps to Enhance 3D Bioprinting of Peptide Bioinks

机译:微流体泵的时间依赖性脉冲,以增强肽生物肽的3D生物印刷

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Using bioinks for 3D bioprinting of cellular constructs remains a challenge due to factors including viscosity, fluid dynamics and shear stress. The encapsulation of cells within the bioinks directly affects the quality of 3D bioprinting and microfluidic pumping is a commonly used supporting approach. The accuracy of microfluidic pumps can be further improved by introducing various mixing techniques. However, many of these techniques introduce complex geometries or external fields. In this study, we used a simple control technique of time-dependent pulsing for instant gelation of the peptide bioinks and observed its effect during the bioprinting process. Various time-dependent periodic signals are imposed on to a stable flow cycle and the effects are analyzed. The microfluidic pumps are programmed with different flow patterns represented by low frequency sinusoidal pulses, ramp inputs, and duty cycle pulses. Different combinations of these pulses are tested to achieve an optimal pulse for improved quality of printed constructs. Time-varied pulsing of microfluidic pumps, particularly as square waveforms, is found to provide better continuous flow and avoid material buildup within the extruder unit when compared to pumping at a constant flow rate with manual tuning. Clogging is avoided since the gelation rate is periodically reduced which avoids gel clumps in the printed constructs. This study substantially improves the use of suitable peptide bioinks, standardizes the 3D bioprinting process, and reduces clogging and clumping during printing. Our findings allow for printing of more accurate and complex constructs for applications in tissue engineering, such as skin grafting, and other regenerative medical applications.
机译:由于包括粘度,流体动力学和剪切应力的因素,使用用于3D生物膜的生物链仍然是一个挑战。生物链内的细胞的封装直接影响3D生物监测和微流体泵送的质量是常用的支撑方法。通过引入各种混合技术,可以进一步提高微流体泵的准确性。然而,许多这些技术引入了复杂的几何形状或外部领域。在这项研究中,我们利用了一种简单的控制技术的时间依赖性脉冲,用于肽生物链的即时凝胶化,并在生物制造工艺过程中观察其效果。施加各种时间依赖的周期性信号,施加到稳定的流循环,并分析效果。微流体泵用由低频正弦脉冲,斜坡输入和占空比脉冲表示的不同流动模式。测试这些脉冲的不同组合以实现最佳脉冲,以改善印刷构造的质量。发现微流体泵的时间变化脉冲,特别是作为方形波形,以提供更好的连续流动,并在与手动调谐的恒定流速以恒定的流速泵送时,避免挤出机单元内的材料积聚。避免了堵塞,因为周期性地降低了凝胶化速率,这避免了印刷构造中的凝胶团块。该研究基本上改善了合适的肽生物链的使用,标准化了3D生物监测过程,并在印刷期间减少堵塞和块状。我们的研究结果允许打印更准确和复杂的构建体,用于组织工程,如皮肤移植和其他再生医学应用。

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