TY - JOUR
T1 - 3D bioprinting of human neural tissues with functional connectivity
AU - Yan, Yuanwei
AU - Li, Xueyan
AU - Gao, Yu
AU - Mathivanan, Sakthikumar
AU - Kong, Linghai
AU - Tao, Yunlong
AU - Dong, Yi
AU - Li, Xiang
AU - Bhattacharyya, Anita
AU - Zhao, Xinyu
AU - Zhang, Su Chun
N1 - Publisher Copyright:
© 2023 The Author(s)
PY - 2024/2/1
Y1 - 2024/2/1
N2 - Probing how human neural networks operate is hindered by the lack of reliable human neural tissues amenable to the dynamic functional assessment of neural circuits. We developed a 3D bioprinting platform to assemble tissues with defined human neural cell types in a desired dimension using a commercial bioprinter. The printed neuronal progenitors differentiate into neurons and form functional neural circuits within and between tissue layers with specificity within weeks, evidenced by the cortical-to-striatal projection, spontaneous synaptic currents, and synaptic response to neuronal excitation. Printed astrocyte progenitors develop into mature astrocytes with elaborated processes and form functional neuron-astrocyte networks, indicated by calcium flux and glutamate uptake in response to neuronal excitation under physiological and pathological conditions. These designed human neural tissues will likely be useful for understanding the wiring of human neural networks, modeling pathological processes, and serving as platforms for drug testing.
AB - Probing how human neural networks operate is hindered by the lack of reliable human neural tissues amenable to the dynamic functional assessment of neural circuits. We developed a 3D bioprinting platform to assemble tissues with defined human neural cell types in a desired dimension using a commercial bioprinter. The printed neuronal progenitors differentiate into neurons and form functional neural circuits within and between tissue layers with specificity within weeks, evidenced by the cortical-to-striatal projection, spontaneous synaptic currents, and synaptic response to neuronal excitation. Printed astrocyte progenitors develop into mature astrocytes with elaborated processes and form functional neuron-astrocyte networks, indicated by calcium flux and glutamate uptake in response to neuronal excitation under physiological and pathological conditions. These designed human neural tissues will likely be useful for understanding the wiring of human neural networks, modeling pathological processes, and serving as platforms for drug testing.
KW - 3D bioprinting
KW - functional neural network
KW - human pluripotent stem cells
UR - https://www.scopus.com/pages/publications/85183453862
U2 - 10.1016/j.stem.2023.12.009
DO - 10.1016/j.stem.2023.12.009
M3 - 文章
C2 - 38306994
AN - SCOPUS:85183453862
SN - 1934-5909
VL - 31
SP - 260-274.e7
JO - Cell Stem Cell
JF - Cell Stem Cell
IS - 2
ER -