Generation of Interconnected Neural Clusters in Multiscale Scaffolds from Human-Induced Pluripotent Stem Cells

被引:13
作者
Huang, Boxin [1 ]
Peng, Juan [1 ]
Huang, Xiaochen [1 ]
Liang, Feng [1 ]
Wang, Li [2 ]
Shi, Jian [2 ]
Yamada, Ayako [1 ]
Chen, Yong [1 ]
机构
[1] Sorbonne Univ, PSL Univ, Dept Chim, PASTEUR,CNRS,Ecole Normale Super, F-75005 Paris, France
[2] MesoBioTech, F-75001 Paris, France
关键词
hiPSC; multiscale scaffolds; nanofibers; neural clusters; neurovascular unit; BLOOD-BRAIN-BARRIER; NEURONAL NETWORKS; ELECTROSPUN NANOFIBERS; DIFFERENTIATION;
D O I
10.1021/acsami.1c18465
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The development of in vitro neural networks depends to a large extent on the scaffold properties, including the scaffold stiffness, porosity, and dimensionality. Herein, we developed a method to generate interconnected neural clusters in a multiscale scaffold consisting of a honeycomb microframe covered on both sides with a monolayer of cross-linked gelatin nanofibers. Cortical neural precursor cells were first produced from human-induced pluripotent stem cells and then loaded into the scaffold for a long period of differentiation toward cortical neural cells. As a result, neurons and astrocytes self-organized in the scaffold to form clusters in each of the honeycomb compartments with remarkable inter-cluster connections. These cells highly expressed neuron- and astrocyte-specific proteins, including NF200, tau, synapsin I, and glial fibrillary acidic protein, and showed spatially correlated neural activities. Two types of neural clusters, that is, spheroid-like and hourglass-like clusters, were found, indicating the complexity of neural-scaffold interaction and the variability of three-dimensional neural organization. Furthermore, we incorporated a reconstituted basement membrane into the scaffold and performed co-culture of the neural network with brain microvascular endothelial cells. As a proof of concept, an improved neurovascular unit model was tested, showing large astrocytic end-feet on the back side of the endothelium.
引用
收藏
页码:55939 / 55952
页数:14
相关论文
共 66 条
[1]   Microengineered human blood-brain barrier platform for understanding nanoparticle transport mechanisms [J].
Ahn, Song Ih ;
Sei, Yoshitaka J. ;
Park, Hyun-Ji ;
Kim, Jinhwan ;
Ryu, Yujung ;
Choi, Jeongmoon J. ;
Sung, Hak-Joon ;
MacDonald, Tobey J. ;
Levey, Allan, I ;
Kim, YongTae .
NATURE COMMUNICATIONS, 2020, 11 (01)
[2]   From blood-brain barrier to blood-brain interface: new opportunities for CNS drug delivery [J].
Banks, William A. .
NATURE REVIEWS DRUG DISCOVERY, 2016, 15 (04) :275-+
[3]   In vitro modeling of the neurovascular unit: advances in the field [J].
Bhalerao, Aditya ;
Sivandzade, Farzane ;
Archie, Sabrina Rahman ;
Chowdhury, Ekram Ahmed ;
Noorani, Behnam ;
Cucullo, Luca .
FLUIDS AND BARRIERS OF THE CNS, 2020, 17 (01)
[4]   Brain metabolism in health, aging, and neurodegeneration [J].
Camandola, Simonetta ;
Mattson, Mark P. .
EMBO JOURNAL, 2017, 36 (11) :1474-1492
[5]   An isogenic neurovascular unit model comprised of human induced pluripotent stem cell-derived brain microvascular endothelial cells, pericytes, astrocytes, and neurons [J].
Canfield, Scott G. ;
Stebbins, Matthew J. ;
Faubion, Madeline G. ;
Gastfriend, Benjamin D. ;
Palecek, Sean P. ;
Shusta, Eric V. .
FLUIDS AND BARRIERS OF THE CNS, 2019, 16 (01)
[6]   Simple Synthetic Molecular Hydrogels from Self-Assembling Alkylgalactonamides as Scaffold for 3D Neuronal Cell Growth [J].
Chalard, Anais ;
Vaysse, Laurence ;
Joseph, Pierre ;
Malaquin, Laurent ;
Souleille, Sandrine ;
Lonetti, Barbara ;
Sol, Jean-Christophe ;
Loubinoux, Isabelle ;
Fitremann, Juliette .
ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (20) :17004-17017
[7]   Application of Fused Organoid Models to Study Human Brain Development and Neural Disorders [J].
Chen, Augustin ;
Guo, Zhenming ;
Fang, Lipao ;
Bian, Shan .
FRONTIERS IN CELLULAR NEUROSCIENCE, 2020, 14
[8]   Brain organoids for the study of human neurobiology at the interface of in vitro and in vivo [J].
Chiaradia, Ilaria ;
Lancaster, Madeline A. .
NATURE NEUROSCIENCE, 2020, 23 (12) :1496-1508
[9]   Three-Dimensional Blood-Brain Barrier Model for in vitro Studies of Neurovascular Pathology [J].
Cho, Hansang ;
Seo, Ji Hae ;
Wong, Keith H. K. ;
Terasaki, Yasukazu ;
Park, Joseph ;
Bong, Kiwan ;
Arai, Ken ;
Lo, Eng H. ;
Irimia, Daniel .
SCIENTIFIC REPORTS, 2015, 5
[10]   Functional Characterization of Three-Dimensional Cortical Cultures for In Vitro Modeling of Brain Networks [J].
Dingle, Yu-Ting L. ;
Liaudanskaya, Volha ;
Finnegan, Liam T. ;
Berlind, Kyler C. ;
Mizzoni, Craig ;
Georgakoudi, Irene ;
Nieland, Thomas J. F. ;
Kaplan, David L. .
ISCIENCE, 2020, 23 (08)