Kumon Hiroki, Sakuma Shinya, Nakamura Sou, Maruyama Hisataka, Eto Koji, Arai Fumihito
Department of Micro-Nano Mechanical Science and Engineering, Nagoya University, Nagoya 464-8603, Japan.
Department of Mechanical Engineering, Kyushu University, Fukuoka 819-0395, Japan.
Micromachines (Basel). 2021 Oct 15;12(10):1253. doi: 10.3390/mi12101253.
We previously proposed a microfluidic bioreactor with glass-Si-glass layers to evaluate the effect of the fluid force on platelet (PLT) production and fabricated a three-dimensional (3D) microchannel by combining grayscale photolithography and deep reactive ion etching. However, a challenge remains in observing the detailed process of PLT production owing to the low visibility of the microfluidic bioreactor. In this paper, we present a transparent microfluidic bioreactor made of cyclo-olefin polymer (COP) with which to observe the process of platelet-like particle (PLP) production under a bright-field, which allows us to obtain image data at a high sampling rate. We succeeded in fabricating the COP microfluidic bioreactor with a 3D microchannel. We investigated the bonding strength of COP-COP layers and confirmed the effectiveness of the microfluidic bioreactor. Results of on-chip PLP production using immortalized megakaryocyte cell lines (imMKCLs) derived from human-induced pluripotent stem cells show that the average total number of produced PLPs per imMKCL was 17.6 PLPs/imMKCL, which is comparable to that of our previous glass-Si-glass microfluidic bioreactor (17.4 PLPs/imMKCL). We succeeded in observing PLP production under a bright-field using the presented microfluidic bioreactor and confirmed that PLP fragmented in a narrow area of proplatelet-like protrusions.
我们之前提出了一种具有玻璃 - 硅 - 玻璃层的微流控生物反应器,以评估流体力对血小板(PLT)生成的影响,并通过结合灰度光刻和深反应离子刻蚀制造了三维(3D)微通道。然而,由于微流控生物反应器的可视性较低,在观察PLT生成的详细过程方面仍然存在挑战。在本文中,我们展示了一种由环烯烃聚合物(COP)制成的透明微流控生物反应器,用于在明场下观察类血小板颗粒(PLP)的生成过程,这使我们能够以高采样率获取图像数据。我们成功制造了具有3D微通道的COP微流控生物反应器。我们研究了COP - COP层的结合强度,并证实了微流控生物反应器的有效性。使用源自人诱导多能干细胞的永生化巨核细胞系(imMKCLs)进行芯片上PLP生成的结果表明,每个imMKCL产生的PLP平均总数为17.6个PLP/imMKCL,这与我们之前的玻璃 - 硅 - 玻璃微流控生物反应器(17.4个PLP/imMKCL)相当。我们成功地使用所展示的微流控生物反应器在明场下观察到了PLP的生成,并证实PLP在类前血小板样突起的狭窄区域内发生了碎片化。