Department of Biomedical Engineering, Columbia University, New York, New York 10027, United States.
Langmuir. 2013 Feb 19;29(7):2265-72. doi: 10.1021/la303792v. Epub 2013 Feb 6.
Isopolar arrays of aligned cytoskeletal filaments are components in a number of designs of hybrid nanodevices incorporating biomolecular motors. For example, a combination of filament arrays and motor arrays can form an actuator or a molecular engine resembling an artificial muscle. Here, isopolar arrays of microtubules are fabricated by flow alignment, and their quality is characterized by their degree of alignment. We find, in agreement with our analytical models, that the degree of alignment is ultimately limited by thermal forces, while the kinetics of the alignment process are influenced by the flow strength, the microtubule stiffness, the gliding velocity, and the tip length. Strong flows remove microtubules from the surface and reduce the filament density, suggesting that there is an optimal flow strength for the fabrication of ordered arrays.
取向的细胞骨架丝的等极阵列是许多结合生物分子马达的混合纳米器件设计的组成部分。例如,细丝阵列和马达阵列的组合可以形成类似于人工肌肉的致动器或分子发动机。在这里,通过流动取向来制造微管的等极阵列,并通过其取向度来表征其质量。我们发现,与我们的分析模型一致,取向度最终受到热作用力的限制,而取向过程的动力学受到流动强度、微管刚度、滑行速度和尖端长度的影响。强流会将微管从表面去除并降低丝密度,这表明对于有序阵列的制造存在最佳的流动强度。