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基于过度表达的人工蛛丝蛋白的微流控纺丝喷头用于混合蜘蛛丝的 3D 空气纺丝。

Overexpressed Artificial Spidroin Based Microneedle Spinneret for 3D Air Spinning of Hybrid Spider Silk.

机构信息

School of Pharmaceutical Sciences, College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University, Nanjing 211816, China.

出版信息

ACS Nano. 2024 Sep 17;18(37):25778-25794. doi: 10.1021/acsnano.4c08557. Epub 2024 Sep 2.

Abstract

Efforts have been devoted to developing strategies for converting spider silk proteins (spidroins) into functional silk materials. However, studies mimicking the exact natural spinning process of spiders encounter arduous challenges. In this paper, consistent with the natural spinning process of spiders, we report a high-efficient spinning strategy that enables the mass preparation of multifunctional artificial spider silk at different scales. By simulating the structural stability mechanism of the cross-β-spine of the amyloid polypeptide by computer dynamics, we designed and obtained an artificial amyloid spidroin with a significantly increased yield (13.5 g/L). Using the obtained artificial amyloid spidroin, we fabricated artificial spiders with artificial spinning glands (hollow MNs). Notably, by combining artificial spiders with 3D printing, we perform patterned air spinning at the macro- and microscales, and the resulting patterned artificial spider silk has excellent pump-free liquid flow and conductive and frictional electrical properties. Based on these findings, we used macroscale artificial spider silk to treat rheumatoid arthritis in mice and micro artificial spider silk to prepare wound dressings for diabetic mice. We believe that artificial spider silk based on an exact spinning strategy will provide a high-efficient way to construct and modulate the next generation of smart materials.

摘要

研究人员致力于开发将蜘蛛丝蛋白(丝氨酸)转化为功能性丝材料的策略。然而,模仿蜘蛛精确自然纺丝过程的研究仍面临艰巨挑战。在本文中,我们报告了一种与蜘蛛自然纺丝过程一致的高效纺丝策略,可实现不同尺度的多功能人工蜘蛛丝的大规模制备。通过计算机动力学模拟淀粉样多肽的交叉-β-螺旋的结构稳定性机制,我们设计并获得了一种具有显著提高产量(13.5 g/L)的人工淀粉样丝氨酸。利用获得的人工淀粉样丝氨酸,我们用人工纺丝腺(中空 MN)制造了人工蜘蛛。值得注意的是,通过将人工蜘蛛与 3D 打印相结合,我们在宏观和微观尺度上进行了图案化空气纺丝,得到的图案化人工蜘蛛丝具有出色的无泵液体流动和导电及摩擦电性能。基于这些发现,我们使用宏观人工蜘蛛丝治疗了小鼠的类风湿关节炎,使用微观人工蜘蛛丝为糖尿病小鼠制备了伤口敷料。我们相信,基于精确纺丝策略的人工蜘蛛丝将为构建和调节下一代智能材料提供高效途径。

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