利用微地形对多方向肌肉致动器进行建模。

IF 5.8 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Tamara Rossy, Laura Schwendeman, Sonika Kohli, Maheera Bawa, Pavankumar Umashankar, Roi Habba, Oren Tchaicheeyan, Ayelet Lesman, Ritu Raman
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引用次数: 0

摘要

具有精确定位的工程骨骼肌组织对于从药物筛选到生物混合机器人的应用具有重要意义。对齐2D收缩肌肉单层,这与高内容成像兼容,可以部署在平面软体机器人中,通常需要微图案线索。然而,目前在细胞外基质水凝胶中集成微尺度地形特征的方案需要昂贵的微加工设备和多步骤的过程,其中包括容易出错的人工处理步骤。为了解决这一挑战,我们提出了STAMP(通过微地形图案制作执行器的简单模板),这是一种易于获取且具有成本效益的一步方法,可以使用可重复使用的3D打印邮票在水凝胶表面上绘制各种尺寸和配置的微地形。我们证明STAMP能够精确控制小鼠和人类骨骼肌纤维的排列,而不会对其成熟或功能产生负面影响。为了展示我们技术的多功能性,我们设计了一个平面软体机器人,灵感来自虹膜,它利用同心和径向肌肉纤维的空间分离区域来控制瞳孔扩张。光遗传骨骼肌纤维生长在冲压虹膜基底上形成多方向致动器,通过选择性光刺激径向和同心纤维来控制虹膜的功能,包括瞳孔收缩。作为主动双层结构的生物混合机器人的计算模型与实验结果相匹配,证明了STAMP方法在设计、制造和测试具有复杂多自由度运动的平面生物混合机器人方面的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Leveraging microtopography to pattern multi-oriented muscle actuators.

Engineering skeletal muscle tissue with precisely defined alignment is of significant importance for applications ranging from drug screening to biohybrid robotics. Aligning 2D contractile muscle monolayers, which are compatible with high-content imaging and can be deployed in planar soft robots, typically requires micropatterned cues. However, current protocols for integrating microscale topographical features in extracellular matrix hydrogels require expensive microfabrication equipment and multi-step procedures involving error-prone manual handling steps. To address this challenge, we present STAMP (simple templating of actuators via micro-topographical patterning), an easily accessible and cost-effective one-step method to pattern microtopography of various sizes and configurations on the surface of hydrogels using reusable 3D printed stamps. We demonstrate that STAMP enables precisely controlling the alignment of mouse and human skeletal muscle fibers without negatively impacting their maturation or function. To showcase the versatility of our technique, we designed a planar soft robot inspired by the iris, which leverages spatially segregated regions of concentric and radial muscle fibers to control pupil dilation. Optogenetic skeletal muscle fibers grown on a STAMPed iris substrates formed a multi-oriented actuator, and selective light stimulation of the radial and concentric fibers was used to control the function of the iris, including pupil constriction. Computational modeling of the biohybrid robot as an active bilayer matched experimental outcomes, showcasing the robustness of our STAMP method for designing, fabricating, and testing planar biohybrid robots capable of complex multi-DOF motion.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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