Department of Physics and Materials Science, The University of Memphis, Memphis, Tennessee 38152, United States.
Department of Biology, The University of Memphis, Memphis, Tennessee 38152, United States.
ACS Appl Mater Interfaces. 2022 Feb 9;14(5):7230-7240. doi: 10.1021/acsami.1c20305. Epub 2022 Jan 27.
Oriented arrays of nanofibers are ubiquitous in nature and have been widely used in recreation of the biological functions such as bone and muscle tissue regenerations. However, it remains a challenge to produce nanofiber arrays with a complex organization by using current fabrication techniques such as electrospinning and extrusion. In this work, we propose a method to fabricate the complex organization of nanofiber structures templated by a spatially varying ordered liquid crystal host, which follows the pattern produced by a maskless projection display system. By programming the synchronization of the rotated polarizer and projected segments with different shapes, various configurations of nanofiber organization ranging from a single to two-dimensional lattice of arbitrary topological defects are created in a deterministic manner. The nanofiber arrays can effectively guide and promote neurite outgrowth. The application of nanofibers with arced profiles and topological defects on neural tissue organization is also demonstrated. This finding, combined with the versatility and programmability of nanofiber structures, suggests that they will help solve challenges in nerve repair, neural regeneration, and other related tissue engineering fields.
取向纳米纤维阵列在自然界中无处不在,并且已被广泛用于模拟骨骼和肌肉组织等生物功能的再生。然而,通过当前的制造技术(例如静电纺丝和挤出)来生产具有复杂组织的纳米纤维阵列仍然是一个挑战。在这项工作中,我们提出了一种通过空间变化的有序液晶主体模板来制造纳米纤维结构的复杂组织的方法,该主体遵循无掩模投影显示系统产生的图案。通过编程旋转偏振器和具有不同形状的投影段的同步,可以以确定的方式创建从单个到任意拓扑缺陷的二维晶格的各种纳米纤维组织配置。纳米纤维阵列可以有效地引导和促进神经突的生长。还展示了在神经组织组织中使用具有弧形轮廓和拓扑缺陷的纳米纤维的应用。这一发现,结合了纳米纤维结构的多功能性和可编程性,表明它们将有助于解决神经修复、神经再生和其他相关组织工程领域的挑战。