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具有可调节机械性能和双光子3D打印导电功能的生物相容性聚合物。

Biocompatible polymers with tunable mechanical properties and conductive functionality on two-photon 3D printing.

作者信息

Men Lijun, Wang Kemin, Hu Ningning, Wang Fule, Deng Yucheng, Zhang Wenjun, Yin Ruixue

机构信息

Shanghai University, School of Mechanical and Electrical Engineering No. 99, Shangda Road, Baoshan District Shanghai China.

Mingche Biotechnology Co., Ltd No. 18, Jinfang Road Suzhou China.

出版信息

RSC Adv. 2023 Mar 14;13(13):8586-8593. doi: 10.1039/d2ra07464h.

Abstract

Two-photon polymerization (TPP)-based 3D printing technology utilizes the two-photon absorption process of near-infrared radiation, enabling the fabrication of micro- and nano-scale three-dimensional structures with extremely high resolution. It has been widely applied in scientific fields closely related to living organisms, such as tissue engineering, drug delivery, and biosensors. Nevertheless, the existing photoresist materials have poor mechanical tunability and are hardly able to be doped with functional materials, resulting in constraints on the preparation of functional devices with micro-nano structures. In this paper, TPP printable polymer formulas with good mechanical tunability, high resolution, strong functional scalability, and excellent biocompatibility are proposed, by using the synergistic effects of a hydroxyl group-containing photocurable resin prepolymer, UV acrylate monomer, long-chain hydrophilic crosslinking monomer and photo-initiator. This can ensure the printability and help to improve the flexibility of the printed polymer, thereby solving the problem the photosensitive materials suitable for two-photon 3D printing in previous research had in balancing the formability and flexibility. The results of nanoindenter analysis showed that the Young's modulus of the printed structure can be adjusted between 0.3 GPa and 1.43 GPa, realizing mechanical tunability. Also, complex structures, such as micro-scaffold structures and high aspect ratio hollow microneedles were printed to explore the structural stability as well as the feasibility of biodevice application. Meanwhile, the proposed polymer formula can be functionalized to be conductive by doping with functional nanomaterial MXene. Finally, the biocompatibility of the proposed polymer formula was studied by culturing with human normal lung epithelial cells. The results indicated a good potential for biodevice applications.

摘要

基于双光子聚合(TPP)的3D打印技术利用近红外辐射的双光子吸收过程,能够制造具有极高分辨率的微米和纳米级三维结构。它已广泛应用于与生物体密切相关的科学领域,如组织工程、药物递送和生物传感器。然而,现有的光致抗蚀剂材料机械可调性差,几乎无法掺杂功能材料,这限制了微纳结构功能器件的制备。本文通过含羟基光固化树脂预聚物、紫外丙烯酸酯单体、长链亲水性交联单体和光引发剂的协同作用,提出了具有良好机械可调性、高分辨率、强功能可扩展性和优异生物相容性的TPP可打印聚合物配方。这可以确保可打印性,并有助于提高打印聚合物的柔韧性,从而解决了先前研究中适用于双光子3D打印的光敏材料在可成型性和柔韧性平衡方面存在的问题。纳米压痕分析结果表明,打印结构的杨氏模量可在0.3 GPa至1.43 GPa之间调节,实现了机械可调性。此外,还打印了复杂结构,如微支架结构和高纵横比空心微针,以探索结构稳定性以及生物器件应用的可行性。同时,通过掺杂功能纳米材料MXene,可将所提出的聚合物配方功能化以实现导电。最后,通过与人正常肺上皮细胞共培养研究了所提出的聚合物配方的生物相容性。结果表明其在生物器件应用方面具有良好的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10ce/10013736/7752cac4879e/d2ra07464h-f1.jpg

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