Watanabe Uran, Sugiura Shinji, Kakehata Masayuki, Yanagawa Fumiki, Takagi Toshiyuki, Sumaru Kimio, Satoh Taku, Tamura Masato, Hosokawa Yoichiroh, Torizuka Kenji, Kanamori Toshiyuki
Biotechnology Research Institute for Drug Discovery, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki 305-8565, Japan.
School of Integrative and Global Majors, University of Tsukuba, Tsukuba, Ibaraki 305-8577, Japan.
Micromachines (Basel). 2020 Jul 13;11(7):679. doi: 10.3390/mi11070679.
Engineered blood vessels generally recapitulate vascular function in vitro and can be utilized in drug discovery as a novel microphysiological system. Recently, various methods to fabricate vascular models in hydrogels have been reported to study the blood vessel functions ; however, in general, it is difficult to fabricate hollow structures with a designed size and structure with a tens of micrometers scale for blood vessel tissue engineering. This study reports a method to fabricate the hollow structures in photodegradable hydrogels prepared in a microfluidic device. An infrared femtosecond pulsed laser, employed to induce photodegradation via multi-photon excitation, was scanned in the hydrogel in a program-controlled manner for fabricating the designed hollow structures. The photodegradable hydrogel was prepared by a crosslinking reaction between an azide-modified gelatin solution and a dibenzocyclooctyl-terminated photocleavable tetra-arm polyethylene glycol crosslinker solution. After assessing the composition of the photodegradable hydrogel in terms of swelling and cell adhesion, the hydrogel prepared in the microfluidic device was processed by laser scanning to fabricate linear and branched hollow structures present in it. We introduced a microsphere suspension into the fabricated structure in photodegradable hydrogels, and confirmed the fabrication of perfusable hollow structures of designed patterns via the multi-photon excitation process.
工程化血管通常在体外重现血管功能,并且可以作为一种新型的微生理系统用于药物发现。最近,已经报道了各种在水凝胶中制造血管模型以研究血管功能的方法;然而,一般来说,对于血管组织工程而言,制造具有数十微米尺度的设计尺寸和结构的中空结构是困难的。本研究报道了一种在微流控装置中制备的可光降解水凝胶中制造中空结构的方法。通过多光子激发诱导光降解的红外飞秒脉冲激光以程序控制的方式在水凝胶中扫描,以制造设计的中空结构。可光降解水凝胶是通过叠氮化物改性的明胶溶液与二苯并环辛基封端的可光裂解四臂聚乙二醇交联剂溶液之间的交联反应制备的。在从溶胀和细胞粘附方面评估了可光降解水凝胶的组成之后,对在微流控装置中制备的水凝胶进行激光扫描处理,以制造其中存在的线性和分支中空结构。我们将微球悬浮液引入到可光降解水凝胶中的制造结构中,并通过多光子激发过程确认了设计图案的可灌注中空结构的制造。