Method Article

Efficient and Scalable Generation of Human Ventral Midbrain Astrocytes from Human-Induced Pluripotent Stem Cells

DOI:

10.3791/62095

October 2nd, 2021

* These authors contributed equally

In This Article

Summary

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Here, we present a method for reproducible generation of ventral midbrain patterned astrocytes from hiPSCs and protocols for their characterization to assess phenotype and function.

Abstract

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In Parkinson's disease, progressive dysfunction and degeneration of dopamine neurons in the ventral midbrain cause life-changing symptoms. Neuronal degeneration has diverse causes in Parkinson's, including non-cell autonomous mechanisms mediated by astrocytes. Throughout the CNS, astrocytes are essential for neuronal survival and function, as they maintain metabolic homeostasis in the neural environment. Astrocytes interact with the immune cells of the CNS, microglia, to modulate neuroinflammation, which is observed from the earliest stages of Parkinson's, and has a direct impact on the progression of its pathology. In diseases with a chronic neuroinflammatory element, including Parkinson's, astrocytes acquire a neurotoxic phenotype, and thus enhance neurodegeneration. Consequently, astrocytes are a potential therapeutic target to slow or halt disease, but this will require a deeper understanding of their properties and roles in Parkinson's. Accurate models of human ventral midbrain astrocytes for in vitro study are therefore urgently required.

We have developed a protocol to generate high purity cultures of ventral midbrain-specific astrocytes (vmAstros) from hiPSCs that can be used for Parkinson's research. vmAstros can be routinely produced from multiple hiPSC lines, and express specific astrocytic and ventral midbrain markers. This protocol is scalable, and thus suitable for high-throughput applications, including for drug screening. Crucially, the hiPSC derived-vmAstros demonstrate immunomodulatory characteristics typical of their in vivo counterparts, enabling mechanistic studies of neuroinflammatory signaling in Parkinson's.

Introduction

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Parkinson's disease affects 2%-3% of people over 65 years of age, making it the most prevalent neurodegenerative movement disorder1. It is caused by degeneration of ventral midbrain dopamine neurons within the substantia nigra, resulting in debilitating motor symptoms, as well as frequent cognitive and psychiatric issues2. Parkinson's pathology is typified by aggregates of the protein, α-synuclein, which are toxic to neurons and result in their dysfunction and death1,2,3. As the dopaminergic neurons are the degenera....

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Protocol

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1. Human hiPSC line thawing, maintenance, and cryopreservation

  1. For coating hiPSC culture plates, dilute vitronectin to 5 µg/mL (1:100) in PBS at 1 mL per 10 cm2 cell culture plate surface area. Leave for 1 h at room temperature.
  2. Remove vitronectin and proceed immediately to adding hiPSCs/media to the culture plate.
    NOTE When removing vitronectin from the plate, it is crucial that the culture surface is not allowed to dry out.
  3. To thaw hiPSCs, remove cryovials containing hiPSCs from liquid nitrogen and place in a 37 °C water bath until the contents have completely thawed.
  4. Prepare 9 mL of prewarme....

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Results

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Differentiation methodology and progression
Here we present the details of both the methods employed for the generation of vmAstros and the protocols used for their subsequent phenotypic characterization. The method for generation of vmAstros is made up of several distinct differentiation stages, which can be monitored by microscopy and identifying distinct morphological characteristics (Figure 1A-F). A feeder-free hiPSC culture (

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Discussion

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This method for the generation of vmAstros from hiPSCs is highly efficient, generating pure cultures of vmAstros, and being reproducible for the generation of vmAstros from different hiPSC lines. This protocol was developed around the recapitulation of the developmental events required in the embryo to correctly pattern the developing midbrain and generate astrocytes and comprises three defined stages: 1) neural ventral midbrain induction to generate vmNPCs, 2) generation and expansion of vmAPCs, and finally 3) maturatio.......

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Disclosures

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The authors have nothing to disclose.

Acknowledgements

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This work was funded by a Parkinson's UK project grant (G-1402) and studentship. The authors gratefully acknowledge the Wolfson Bioimaging Facility for their support and assistance in this work.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
Reagents
0.2M Tris-Cl (pH 8.5)n/an/aMade up from Tris base and plus HCl
0.5M EDTA, PH 8ThermoFisher 15575-0201:1000 in D-PBS to 0.5 mM final 
1,4-diazabicylo[2.2.2]octane (DABCO)SigmaD27802- 25 mg/mL in Mowiol mounting solution
13 mm coverslipsVWR631-0149
2-Mercaptoethanol (50 mM)ThermoFisher31350010
AccutaseThermoFisher13151014
Advanced DMEM/F12ThermoFisher12634010Has 1x NEAA but we add to final concentration of 2x (0.2 mM)
Ascorbic acidSigmaA5960200 mM stock, 1:1000 to 200 µM final
B27 SupplementThermoFisher17504-04450x stock
BSASigma5470
Cell freezing mediaSigmaC2874Cryostor CS10
Cell freezing vesselNalgene5100-0001
CHIR99021Axon Medchem13860.8 mM stock, 1:1000 dilution to 0.8 µM final
Cryovials SigmaCLS430487
DAPI SigmaD95421 mg/mL, 1:10,000 to 100ng/mL final (in PBS)
DMEM/F12 + GlutamaxThermoFisher10565018
Dulbeccos-PBS (D-PBS without Mg or Ca)ThermoFisher14190144pH 7.2
E8 Flex medium kitThermoFisherA2858501
Formaldehyde (36% solution)Sigma47608
GeltrexThermoFisherA14133021:100 or 1:400 in ice-cold DMEM/F12
GlutamaxThermoFisher350500382 mM stock (1:200 in N2B27, 1:100 in ASTRO media to 20 µM final) 
GlycerolSigmaG5516
Human BDNF Peprotech450-0220 µg/mL stock, 1:1000 to 20 ng/mL final
Human BMP4Peprotech120-0520 µg/mL stock, 1:1000 to 20 ng/mL final
Human EGFPeprotechAF-100-1520 µg/mL stock, 1:1000 to 20 ng/mL final
Human GDNFPeprotech450-1020 µg/mL stock, 1:1000 to 20 ng/mL final
Human insulin solutionSigma I927810 mg/mL stock, 1:2000 to 5 µg/mL final
Human LIFPeprotech300-0520 µg/mL stock, 1:1000 to 20 ng/mL final
IL-6 ELISA kitBiotechneDY206
IsopropanolSigma I9516-4LFor filling Mr Frosty cryostorage vessel
LDN193189SigmaSML0559100 µM stock, 1:10,000 dilution to 10 nM final
Mowiol 40-88Sigma324590
N2 SupplementThermoFisher17502048100x stock
NEAAThermoFisher1114003510 mM stock, 1:100 to 0.1 mM final 
Neurobasal mediaThermoFisher21103049
Normal Goat serumVector LabsS-1000-20
RevitacellThermoFisherA2644501100x stock, 1:100 to 1x final
SB431542Tocris161410 mM stock, 1:1000 dilution to 10 µM final
SHH-C24iiBiotechne1845-SH-025200 µg/mL stock, 1:1000 to 200 ng/mL final
Tris-HClSigma PHG0002 
Triton-XSigmaX100
Tween-20Sigma P7949
VitronectinThermoFisherA147001:50 in D-PBS
Antibodies for immunocytochemistry CompanyCatalogue NumberHost species
Antibody against S100bSigmaSAB4200671Mouse; 1:200
Antibody against FOXA2SCBTNB600501Mouse; 1:50
Antibody against LMX1AProSci7087Rabbit; 1:300
Antibody against LMX1AMilliporeAB10533Rabbit; 1:2000
Antibody against LMX1BProteintech18278-1-APRabbit; 1:300
Antibody against GLASTProteintech20785-1-APRabbit; 1:300
Antibody against GFAPDakoZ0334Rabbit; 1:400
Antibody against CD49fProteintech27189-1-APRabbit; 1:100
Antibody against MSI1Abcamab52865Rabbit; 1:400
Alexa Fluor 488 Goat Anti-Rabbit ThermoFisherA32731Goat; 1:500
Alexa Fluor 488 Goat Anti-MouseThermoFisherA32723Goat; 1:500
Alexa Fluor 568 Goat Anti-RabbitThermoFisherA11036Goat; 1:500
Alexa Fluor 488 Goat Anti-MouseThermoFisherA11031Goat; 1:500

References

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  1. Poewe, W., et al. Parkinson disease. Nature Reviews Disease Primers. 3, 17013(2017).
  2. Lees, A. J., Hardy, J., Revesz, T. Parkingson's disease. Lancet. 373, 2055-2066 (2009).
  3. Braak, H., et al.

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Tags

Ventral Midbrain AstrocytesHuman Astrocyte GenerationInduced Pluripotent Stem CellsParkinson s Disease ModelsAstrocyte NeuroinflammationAstrocyte NeurotoxicityAstrocyte Drug ScreeningAstrocyte ImmunomodulationAstrocyte Marker ExpressionHigh Throughput Protocol
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