Development of 3D culture scaffolds for directional neuronal growth using 2-photon lithography

IF 8.1 1区 工程技术 Q1 MATERIALS SCIENCE, BIOMATERIALS
Lokesh Agrawal , Menouer Saidani , Laurent Guillaud , Marco Terenzio
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引用次数: 11

Abstract

Conventional applications of transplant technology, applied to severe traumatic injuries of the nervous system, have met limited success in the clinics due to the complexity of restoring function to the damaged tissue. Neural tissue engineering aims to deploy scaffolds mimicking the physiological properties of the extracellular matrix to facilitate the elongation of axons and the repair of damaged nerves. However, the fabrication of ideal scaffolds with precisely controlled thickness, texture, porosity, alignment, and with the required mechanical strength, features needed for effective clinical applications, remains technically challenging. We took advantage of state-of-the-art 2-photon photolithography to fabricate highly ordered and biocompatible 3D nanogrid structures to enhance neuronal directional growth. First, we characterized the physical and chemical properties and proved the biocompatibility of said scaffolds by successfully culturing primary sensory and motor neurons on their surface. Interestingly, axons extended along the fibers with a high degree of alignment to the pattern of the nanogrid, as opposed to the lack of directionality observed on flat glass or polymeric surfaces, and could grow in 3D between different layers of the scaffold. The axonal growth pattern observed is highly desirable for the treatment of traumatic nerve damage occurring during peripheral and spinal cord injuries. Thus, our findings provide a proof of concept and explore the possibility of deploying aligned fibrous 3D scaffold/implants for the directed growth of axons, and could be used in the design of scaffolds targeted towards the restoration and repair of lost neuronal connections.

双光子光刻定向神经元生长三维培养支架的研制
由于恢复受损组织功能的复杂性,传统的移植技术应用于神经系统的严重创伤,在临床中取得了有限的成功。神经组织工程旨在利用模拟细胞外基质生理特性的支架,促进轴突的伸长和受损神经的修复。然而,精确控制厚度、质地、孔隙度、排列和机械强度的理想支架的制造,以及有效临床应用所需的特征,在技术上仍然具有挑战性。我们利用最先进的双光子光刻技术来制造高度有序和生物相容性的3D纳米网格结构,以增强神经元的定向生长。首先,我们通过在支架表面成功培养初级感觉神经元和运动神经元,表征了支架的物理和化学性质,并证明了支架的生物相容性。有趣的是,轴突沿着纤维延伸,与纳米网格的模式高度对齐,而不是在平面玻璃或聚合物表面上观察到的缺乏方向性,并且可以在支架的不同层之间以3D方式生长。观察到的轴突生长模式对于周围和脊髓损伤期间发生的创伤性神经损伤的治疗是非常理想的。因此,我们的研究结果提供了一个概念证明,并探索了为轴突定向生长部署对齐纤维3D支架/植入物的可能性,并可用于修复和修复丢失的神经元连接的支架设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
12.60
自引率
0.00%
发文量
28
审稿时长
3.3 months
期刊介绍: Materials Today is a community committed to fostering the creation and sharing of knowledge and experience in materials science. With the support of Elsevier, this community publishes high-impact peer-reviewed journals, organizes academic conferences, and conducts educational webinars, among other initiatives. It serves as a hub for advancing materials science and facilitating collaboration within the scientific community.
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