Evaluation of Neurotoxicity With Human Pluripotent Stem Cell-Derived Cerebral Organoids

被引:2
作者
Parmentier, Thomas [1 ,3 ]
LaMarre, Jonathan [1 ]
Lalonde, Jasmin [2 ]
机构
[1] Univ Guelph, Ontario Vet Coll, Dept Biomed Sci, Guelph, ON, Canada
[2] Univ Guelph, Coll Biol Sci, Dept Mol & Cellular Biol, Guelph, ON, Canada
[3] Univ Montreal, Fac Med Vet, Dept Sci Clin, St Hyacinthe, PQ, Canada
来源
CURRENT PROTOCOLS | 2023年 / 3卷 / 04期
基金
加拿大自然科学与工程研究理事会;
关键词
calcium imaging; cerebral organoids; microelectrode arrays; neurogenesis; neurotoxicity; BRAIN-DEVELOPMENT; DIVERSITY; DYNAMICS;
D O I
10.1002/cpz1.744
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The recent development of human cerebral organoids provides an invaluable in vitro model of human brain development to assess the toxicity of natural or man-made toxic substances. By recapitulating key aspects of early human neurodevelopment, investigators can evaluate with this three-dimensional (3D) model the effect of certain compounds on the formation of neuronal networks and their electrophysiological properties with more physiological relevance than neurons grown in monolayers and in cultures composed of a unique cell type. This promising potential has contributed to the development of a large number of diverse protocols to generate human cerebral organoids, making interlaboratory comparisons of results difficult. Based on a previously published protocol to generate human cortical organoids (herein called cerebral organoids), we detail several approaches to evaluate the effect of chemicals on neurogenesis, apoptosis, and neuronal function when exogenously applied to cultured specimens. Here, we take as an example 4-aminopyridine, a potassium channel blocker that modulates the activity of neurons and neurogenesis, and describe a simple and cost-effective way to test the impact of this agent on cerebral organoids derived from human induced pluripotent stem cells. We also provide tested protocols to evaluate neurogenesis in cerebral organoids with ethynyl deoxyuridine labeling and neuronal activity with live calcium imaging and microelectrode arrays. Together, these protocols should facilitate the implementation of cerebral organoid technologies in laboratories wishing to evaluate the effects of specific compounds or conditions on the development and function of human neurons with only basic cell culture equipment. (c) 2023 The Authors. Current Protocols published by Wiley Periodicals LLC.Basic Protocol 1: Generation of human cerebral organoids from pluripotent stem cellsSupport Protocol 1: Human pluripotent stem cell cultureBasic Protocol 2: Evaluation of neurogenesis in cerebral organoids with ethynyl deoxyuridine labelingBasic Protocol 3: Calcium imaging in cerebral organoidsBasic Protocol 4: Electrophysiological evaluation of cerebral organoids with microelectrode arraysSupport Protocol 2: Immunostaining of cerebral organoids
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页数:26
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共 39 条
  • [1] Cell stress in cortical organoids impairs molecular subtype specification
    Bhaduri, Aparna
    Andrews, Madeline G.
    Mancia Leon, Walter
    Jung, Diane
    Shin, David
    Allen, Denise
    Jung, Dana
    Schmunk, Galina
    Haeussler, Maximilian
    Salma, Jahan
    Pollen, Alex A.
    Nowakowski, Tomasz J.
    Kriegstein, Arnold R.
    [J]. NATURE, 2020, 578 (7793) : 142 - +
  • [2] Assembly of functionally integrated human forebrain spheroids
    Birey, Fikri
    Andersen, Jimena
    Makinson, Christopher D.
    Islam, Saiful
    Wei, Wu
    Huber, Nina
    Fan, H. Christina
    Metzler, Kimberly R. Cordes
    Panagiotakos, Georgia
    Thom, Nicholas
    O'Rourke, Nancy A.
    Steinmetz, Lars M.
    Bernstein, Jonathan A.
    Hallmayer, Joachim
    Huguenard, John R.
    Pasca, Sergiu P.
    [J]. NATURE, 2017, 545 (7652) : 54 - +
  • [3] Origins and implications of pluripotent stem cell variability and heterogeneity
    Cahan, Patrick
    Daley, George Q.
    [J]. NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2013, 14 (06) : 357 - 368
  • [4] Engineering of human brain organoids with a functional vascular-like system
    Cakir, Bilal
    Xiang, Yangfei
    Tanaka, Yoshiaki
    Kural, Mehmet H.
    Parent, Maxime
    Kang, Young-Jin
    Chapeton, Kayley
    Patterson, Benjamin
    Yuan, Yifan
    He, Chang-Shun
    Raredon, Micha Sam B.
    Dengelegi, Jake
    Kim, Kun-Yong
    Sun, Pingnan
    Zhong, Mei
    Lee, Sangho
    Patra, Prabir
    Hyder, Fahmeed
    Niklason, Laura E.
    Lee, Sang-Hun
    Yoon, Young-Sup
    Park, In-Hyun
    [J]. NATURE METHODS, 2019, 16 (11) : 1169 - +
  • [5] Impaired neurogenesis alters brain biomechanics in a neuroprogenitor-based genetic subtype of congenital hydrocephalus
    Duy, Phan Q.
    Weise, Stefan C.
    Marini, Claudia
    Li, Xiao-Jun
    Liang, Dan
    Dahl, Peter J.
    Ma, Shaojie
    Spajic, Ana
    Dong, Weilai
    Juusola, Jane
    Kiziltug, Emre
    Kundishora, Adam J.
    Koundal, Sunil
    Pedram, Maysam Z.
    Torres-Fernandez, Lucia A.
    Haendler, Kristian
    De Domenico, Elena
    Becker, Matthias
    Ulas, Thomas
    Juranek, Stefan A.
    Cuevas, Elisa
    Hao, Le Thi
    Jux, Bettina
    Sousa, Andre M. M.
    Liu, Fuchen
    Kim, Suel-Kee
    Li, Mingfeng
    Yang, Yiying
    Takeo, Yutaka
    Duque, Alvaro
    Nelson-Williams, Carol
    Ha, Yonghyun
    Selvaganesan, Kartiga
    Robert, Stephanie M.
    Singh, Amrita K.
    Allington, Garrett
    Furey, Charuta G.
    Timberlake, Andrew T.
    Reeves, Benjamin C.
    Smith, Hannah
    Dunbar, Ashley
    DeSpenza, Tyrone, Jr.
    Goto, June
    Marlier, Arnaud
    Moreno-De-Luca, Andres
    Yu, Xin
    Butler, William E.
    Carter, Bob S.
    Lake, Evelyn M. R.
    Constable, R. Todd
    [J]. NATURE NEUROSCIENCE, 2022, 25 (04) : 458 - +
  • [6] MEA-Tools: an open source toolbox for the analysis of multi-electrode data with MATLAB
    Egert, U
    Knott, T
    Schwarz, C
    Nawrot, M
    Brandt, A
    Rotter, S
    Diesmann, M
    [J]. JOURNAL OF NEUROSCIENCE METHODS, 2002, 117 (01) : 33 - 42
  • [7] Self-Organized Formation of Polarized Cortical Tissues from ESCs and Its Active Manipulation by Extrinsic Signals
    Eiraku, Mototsugu
    Watanabe, Kiichi
    Matsuo-Takasaki, Marni
    Kawada, Masako
    Yonemura, Shigenobu
    Matsumura, Michiru
    Wataya, Takafumi
    Nishiyama, Ayaka
    Muguruma, Keiko
    Sasail, Yoshiki
    [J]. CELL STEM CELL, 2008, 3 (05) : 519 - 532
  • [8] Cerebral organoids at the air-liquid interface generate diverse nerve tracts with functional output
    Giandomenico, Stefano L.
    Mierau, Susanna B.
    Gibbons, George M.
    Wenger, Lea M. D.
    Masullo, Laura
    Sit, Timothy
    Sutcliffe, Magdalena
    Boulanger, Jerome
    Tripodi, Marco
    Derivery, Emmanuel
    Paulsen, Ole
    Lakatos, Andras
    Lancaster, Madeline A.
    [J]. NATURE NEUROSCIENCE, 2019, 22 (04) : 669 - +
  • [9] CaImAn an open source tool for scalable calcium imaging data analysis
    Giovannucci, Andrea
    Friedrich, Johannes
    Gunn, Pat
    Kalfon, Jeremie
    Brown, Brandon L.
    Koay, Sue Ann
    Taxidis, Jiannis
    Najafi, Farzaneh
    Gauthier, Jeffrey L.
    Zhou, Pengcheng
    Khakh, Baljit S.
    Tank, David W.
    Chklovskii, Dmitri B.
    Pnevmatikakis, Eftychios A.
    [J]. ELIFE, 2019, 8
  • [10] Long-term maturation of human cortical organoids matches key early postnatal transitions
    Gordon, Aaron
    Yoon, Se-Jin
    Tran, Stephen S.
    Makinson, Christopher D.
    Park, Jin Young
    Andersen, Jimena
    Valencia, Alfredo M.
    Horvath, Steve
    Xiao, Xinshu
    Huguenard, John R.
    Pasca, Sergiu P.
    Geschwind, Daniel H.
    [J]. NATURE NEUROSCIENCE, 2021, 24 (03) : 331 - 342