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用于机械传感研究的粘弹性聚丙烯酰胺基底的增材制造

Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies.

作者信息

Protick Fardeen Kabir, Amit Sadat Kamal, Amar Kshitij, Nath Shukantu Dev, Akand Rafee, Davis Virginia A, Nilufar Sabrina, Chowdhury Farhan

机构信息

School of Mechanical, Aerospace, and Materials Engineering, Southern Illinois University Carbondale, Carbondale, Illinois 62901, United States.

Samuel Ginn Department of Chemical Engineering, Auburn University, Auburn, Alabama 36849, United States.

出版信息

ACS Omega. 2022 Jul 6;7(28):24384-24395. doi: 10.1021/acsomega.2c01817. eCollection 2022 Jul 19.

Abstract

Polymerized polyacrylamide (PAA) substrates are linearly elastic hydrogels that are widely used in mechanosensing studies due to their biocompatibility, wide range of functionalization capability, and tunable mechanical properties. However, such cellular response on purely elastic substrates, which do not mimic the viscoelastic living tissues, may not be physiologically relevant. Because the cellular response on 2D viscoelastic PAA substrates remains largely unknown, we used stereolithography (SLA)-based additive manufacturing technique to create viscoelastic PAA substrates with tunable mechanical properties that allow us to identify physiologically relevant cellular behaviors. Three PAA substrates of different complex moduli were fabricated by SLA. By embedding fluorescent markers during the additive manufacturing of the substrates, we show a homogeneous and uniform composition throughout, which conventional manufacturing techniques cannot produce. Rheological investigation of the additively manufactured PAA substrates shows a viscoelastic behavior with a 5-10% loss moduli compared to their elastic moduli, mimicking the living tissues. To understand the cell mechanosensing on the dissipative PAA substrates, single live cells were seeded on PAA substrates to establish the basic relationships between cell traction, cytoskeletal prestress, and cell spreading. With the increasing substrate moduli, we observed a concomitant increase in cellular traction and prestress, but not cell spreading, suggesting that cell spreading can be decoupled from traction and intracellular prestress in physiologically relevant environments. Together, additively manufactured PAA substrates fill the void of lacking real tissue like viscoelastic materials that can be used in a variety of mechanosensing studies with superior reproducibility.

摘要

聚合聚丙烯酰胺(PAA)基底是线性弹性水凝胶,因其生物相容性、广泛的功能化能力和可调的机械性能而广泛应用于机械传感研究。然而,细胞在纯弹性基底上的这种反应,无法模拟粘弹性的活组织,可能与生理情况无关。由于细胞在二维粘弹性PAA基底上的反应在很大程度上仍不清楚,我们使用基于立体光刻(SLA)的增材制造技术来制备具有可调机械性能的粘弹性PAA基底,使我们能够识别与生理相关的细胞行为。通过SLA制备了三种具有不同复数模量的PAA基底。通过在基底的增材制造过程中嵌入荧光标记,我们展示了其整体均匀一致的组成,这是传统制造技术无法实现的。对增材制造的PAA基底进行流变学研究表明,其具有粘弹性行为,损耗模量比弹性模量低5 - 10%,模拟了活组织。为了理解细胞在耗散性PAA基底上的机械传感,将单个活细胞接种在PAA基底上,以建立细胞牵引力、细胞骨架预应力和细胞铺展之间的基本关系。随着基底模量的增加,我们观察到细胞牵引力和预应力随之增加,但细胞铺展没有增加,这表明在生理相关环境中,细胞铺展可以与牵引力和细胞内预应力解耦。总之,增材制造的PAA基底填补了缺乏可用于各种机械传感研究且具有卓越重现性的类似真实组织的粘弹性材料的空白。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/526d/9301700/2b5512b412bf/ao2c01817_0002.jpg

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