Review
Copyright ©The Author(s) 2023.
World J Stem Cells. Jun 26, 2023; 15(6): 530-547
Published online Jun 26, 2023. doi: 10.4252/wjsc.v15.i6.530
Table 1 Comparison of methods for neural induction from human pluripotent stem cells
Method
Neural induction outcomes
Significance
Ref.
Embryoid bodies; selected neural rosettes; 2D and 3D cultureNeural tube-like rosettes stained with Nestin, Musashi-1 and NCAM; positive neuronal markers MAP2 and TUJ1 expressionFirst study of neural progenitor differentiation from hPSCsZhang et al[22], 2001
SFEBq aggregate; sorting cells; 3D cultureSelf-organized structure with four distinct zones: ventricular, early and late cortical-plate, and Cajal-Retzius cell zonesPure 3D culture, provides the basis for the brain organoid methodEiraku et al[23], 2008
Dual SMAD inhibition; 2D monolayer cultureComplete neural conversion of > 80% of hESCsMostly wild used method; also enables neural induction in 3D cultureChambers et al[24], 2009
Dual SMAD inhibition combined with retinoid signaling; 2D monolayer cultureMore than 95% of hPSCs were PAX6 and OTX1/2 cortical progenitor cells in 15 dImproved the dual SMAD inhibition protocol and higher neural induction efficiencyShi et al[62], 2012
Cortical organoid/spheroid; 3D cultureForm layered structure tissues partially mimicking human cerebral cortexMostly brain-like tissue with some functionsLancaster et al[17], 2013; Paşca et al[26], 2015; Qian et al[27], 2016
Dual SMAD inhibition combined with Wnt, FGF and Notch inhibitionGenerate functional cortical neuron in 16 dImproved the dual SMAD inhibition protocol and accelerated neural inductionQi et al[28]
Table 2 Comparison of methods for brain organoids generation from human pluripotent stem cells
Organoid type or brain region modeled
Method brief description
Model application
Ref.
EB-like aggregates; cerebral cortexSFEBq, static suspension culture with cell sortingForm self-organized structure mimicking the early cortiogenesisEiraku et al[23], 2008
Cerebral organoid; whole brainSpinning bioreactor with Matrigel supportingForm pyramidal identities with spatial separation mimicking the developing human brain at early stage; modeling microcephalyLancaster et al[17], 2013
Cortical neuroepithelium; cerebral cortexImproved SFEBq, in 40% oxygen in Lumox platesInside-out layer pattern for human cortexKadoshima et al[86], 2013
Cortical spheroid; cerebral cortexStatic suspension culture with FGF-2 and EGFGenerated laminated cerebral cortex-like structure with some functionsPaşca et al[26], 2015
Cerebellar-plate-like neuroepithelium; cerebellumStatic suspension culture with FGF-19 and SDF-1Mimicking the early development of human cerebellumMuguruma et al[129], 2015
Telencephalic organoids; forebrainStatic suspension culture after neural rosettes isolation manuallyModeling autism spectrum disorderMariani et al[130], 2015
Dorsomedial telencephalic-like tissue; hippocampusImproved SFEBq, in 40% oxygenModeling the development of human hippocampusSakaguchi et al[107], 2015
Forebrain organoids; cerebral cortexMiniaturized spinning bioreactorZika virus exposureQian et al[27], 2016
Midbrain organoids; midbrainMiniaturized spinning bioreactorMidbrain organoids contained TH+ cellsQian et al[27], 2016
Hypothalamic organoids; hypothalamusMiniaturized spinning bioreactorModeling early hypothalamus developmentQian et al[27], 2016
Midbrain organoids; midbrainStatic suspension culture on orbital shakerMidbrain produced neuromelanin and dopamineJo et al[131], 2016
Pituitary organoid; anterior pituitaryImproved SFEBqFormed pituitary placode with pituitary hormone-producing cellsOzone et al[132], 2016
Cerebral organoid; cerebral cortexMicrofilament-engineered organoids under agitationFormed polarized cortical plate and radial unitsLancaster et al[133], 2017
Cerebral organoid; whole brainSpinning bioreactor with Matrigel supportingBrain organoids formed spontaneously active neuronal networksQuadrato et al[134], 2017
Brain assembloids; assembly dorsal and ventral forebrain organoidsStatic suspension cultureModelling migration of human interneurons and their functional integration into microcircuits using healthy and timothy syndrome cell lineBirey et al[99], 2017
Fused cerebral organoids; assembly dorsal and ventral forebrain organoidsStatic suspension culture with Matrigel supporting on orbital shakerModelling migration of human interneurons in cerebral cortexBirey et al[99], 2017
Fused cortical organoids and MGE organoidsStatic suspension culture on orbital shakerModelling migration of human interneurons Xiang et al[101], 2017
Neoplastic cerebral organoidStatic suspension culture with Matrigel supporting on orbital shakerModelling brain tumorigenesisBian et al[135], 2018
Granted brain organoids in mouseSpinning bioreactorFormed functional networks and blood vessels in the graftsMansour et al[136], 2018
Cortical spheroidStatic suspension cultureModelling Alzheimer’s diseaseYan et al[87], 2018
Cerebral organoidsStatic suspension culture with Geltrex supporting on orbital shakerModelling Alzheimer’s diseaseGonzalez et al[93], 2018
Neuromuscular organoidStatic suspension culture supporting on orbital shakerFormed functional neuromuscular junctions and modelling myasthenia gravisFaustion Martins et al[137], 2020
Section spherical organoidManually slicing forebrain organoidsSliced organoids exhibited separated upper and deep cortical layerQian et al[90], 2020
Cortico-motor assembloids; assembly cortical spheroids, spinal spheroids, and skeletal muscle spheroidsStatic suspension cultureModeling cortical-motor circuitsAndersen et al[18], 2020
Cortico-striatal assembloids; assembly cortical spheroids and striatal spheroidsStatic suspension cultureModeling cortical-striatal circuits and 22q13.3 deletion syndromeMiura et al[102], 2020
Air-liquid interface cerebral organoidsSlicing mature organoids and cultured in air-liquid interface not completely submerged in liquidFormed network with functional outputGiandomenico et al[138], 2019