| Literature DB >> 26839567 |
Sára Kálmán1, Edit Hathy2, János M Réthelyi3.
Abstract
Neuronal differentiation of induced pluripotent stem cells and direct reprogramming represent powerful methods for modeling the development of neurons in vitro. Moreover, this approach is also a means for comparing various cellular phenotypes between cell lines originating from healthy and diseased individuals or isogenic cell lines engineered to differ at only one or a few genomic loci. Despite methodological constraints and initial skepticism regarding this approach, the field is expanding at a fast pace. The improvements include the development of new differentiation protocols resulting in selected neuronal populations (e.g., dopaminergic, GABAergic, hippocampal, and cortical), the widespread use of genome editing methods, and single-cell techniques. A major challenge awaiting in vitro disease modeling is the integration of clinical data in the models, by selection of well characterized clinical populations. Ideally, these models will also demonstrate how different diagnostic categories share overlapping molecular disease mechanisms, but also have unique characteristics. In this review we evaluate studies with regard to the described developments, to demonstrate how differentiation of induced pluripotent stem cells and direct reprogramming can contribute to psychiatry.Entities:
Year: 2015 PMID: 26839567 PMCID: PMC4709917 DOI: 10.1155/2016/7909176
Source DB: PubMed Journal: Stem Cells Int Impact factor: 5.443
Figure 1Schematic illustration of induced pluripotent stem cell and neural cell line generation and further clinical and research applications. (iPSC: induced pluripotent stem cell; iNPC: induced neural progenitor cell; iN: induced neuron).
Advancements and further challenges of the utility of induced pluripotent/neural cells in psychiatric research. The recommendations were conceived on a meeting of the National Institute of Mental Health and the Foundation for NIH in 2012 [10].
| Recommendations in 2012 | Advancements in the past 3 years | Challenges remain |
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| Standardization of protocols | ||
| (i) Optimizing reprogramming and differentiating methods | (i) Safe, integration-free, nonviral induction | (i) Comparison of cells induced from different peripheral tissues |
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| Improving homogeneity | ||
| (i) Detailed comparison of induced and source cells to reveal | (i) Vector integration-free, “safe” reprogramming methods | (i) Concerns on |
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| Increasing statistical power | ||
| (i) Increasing sample sizes | (i) Studies with whole genome sequencing and whole transcriptome profiling | (i) Increasing sample sizes |
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| Improve reproducibility, resource sharing, and collaboration | ||
| (i) Establishing rigorous, transparent, and reproducible methods | (i) iPSC banks combined with gene banks | (i) Guidelines for validation |
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| Towards large-scale studies | ||
| (i) Decreasing protocol diversity | (i) Protocol diversity remains, but major steps towards large-scale production | Personalized medicine requires reprogramming and differentiation by every single patient, which is still remarkably time-consuming and money consuming |
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| Careful patient selection, case-control matching | ||
| (i) Subgrouping on the base of comprehensive genetic and clinical characterization | (i) Isogenic case-control pairs provided by DNA editing techniques, twin studies | Endophenotype-based subgrouping? |
Figure 2(a), (b), and (c) Characteristics of current literature dealing with induced pluripotent/neural cell lines in psychiatric research. (c) Represents the research articles only. Publications were reviewed until June, 2015.
| Author, publication date | Modeled disease(s) | Main findings | Cell line, differentiation protocol | Patient derived cell lines | Free |
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| Ananiev et al., 2011 [ | Rett syndrome | Neurons exhibit smaller nuclear size | Differentiated glutamatergic neurons | Y (3) | Y |
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| Bavamian et al., 2015 [ | BPD | miR-34a is associated with BPD and neurodevelopment | NPCs | Y (1) | N |
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| Belinsky et al., 2014 [ | Neurodevelopment | Electrophysiology and gene expression during neural maturation | Differentiated glutamatergic neurons | Y (1) | Y |
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| Boissart et al., 2013 [ | Psychopharmacology, ASD | Synchronous production of cortical neurons for high-throughput assays | Glutamatergic cortical neurons | Y (2) | Y |
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| Brennand et al., 2011 [ | SCZ | Diminished connectivity, cAMP and WNT signaling rescued by antipsychotic treatment | Panneuronal differentiation protocol, glutamatergic neurons | Y (4) | Y |
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| Brennand et al., 2015 [ | SCZ | Altered migration, mitochondrial damage, and increased oxidative stress | NPCs, panneuronal differentiation | Y (4) | Y |
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| Brick et al., 2014 [ | ASD | iPSC bank from ASD patients and controls | Differentiated glutamatergic neurons | Y | Y |
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| Bundo et al., 2014 [ | SCZ | LINE retroelements show more activity in SCZ derived cells | Differentiated glutamatergic neurons | Y (3) | Y |
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| Chen et al., 2014 [ | BPD | BPD iNCs exhibit Ca-signaling and neurodevelopment associated transcription alterations | Differentiated neurons (mixed glutamatergic-GABAergic populations) | Y (3) | Y |
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| Chen et al., 2013 [ | SCZ, BPD | Transcriptional effects of zinc finger protein 804A silencing | Differentiated glutamatergic neurons | N | Y |
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| Cheung et al., 2011 [ | Rett syndrome | Generation of MECP2 mutant iPSC/iNC lines and their isogenic pairs | Differentiated glutamatergic neurons | Y (1) | Y |
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| Chiang et al., 2011 [ | SCZ | Introduction of an integration-free method for reprogramming | iPSCs | Y (2) | Y |
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| Corrales et al., 2012 [ | SCZ | Copy number variations in iPSCs, iNCs | NPCs | Y | N |
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| Dage et al., 2014 [ | Psychopharmacology, ASD | Pharmacological and transcriptome characterization of iNCs | Forebrain neurons | N | N |
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| DeRosa et al., 2012 [ | ASD | iPSC and GABA neuron derivation from whole blood | GABAergic neurons | Y | Y |
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| Doers et al., 2014 [ | Fragile X syndrome | iNCs show neurite outgrowth deficit | Forebrain neurons | Y (3) | N |
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| Germain et al., 2014 [ | Neurodevelopmental disorders | Gene expression analysis of iPSCs from 15q11 variants | Differentiated glutamatergic neurons | Y (3) | Y |
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| Griesi-Oliveira et al., 2014 [ | ASD | TRPC6 gene is associated with ASD | Differentiated glutamatergic neurons | Y (1) | N |
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| Hashimoto-Torii et al., 2014 [ | SCZ | Heat shock transcription factor 1 mediated stress response abnormalities in a subpopulation of iNPCs | NPCs | Y (4) | Y |
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| Hook et al., 2014 [ | SCZ | Increased catecholaminerg neural activity in SCZ cell cultures | Panneuronal differentiation protocol | Y (4) | Y |
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Chung et al., 2014 [ | Fragile X syndrome | Development of a high-content screening assay | NPCs | Y | N |
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| Krey et al., 2013 [ | Timothy syndrome | iNCs exhibit dendritic retraction deficit | Differentiated glutamatergic neurons | Y (2) | Y |
| Kumari et al., 2015 [ | Fragile X syndrome | Development of a high-throughput screening assay | NPCs | Y (3) | N |
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| Larimore et al., 2013 [ | Rett syndrome | MECP2 regulates synaptic expression of dysbindin-BLOC1 pathway | Differentiated glutamatergic neurons | Y (2) | Y |
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| Lin et al., 2012 [ | SCZ | Allele specific expression profile | Differentiated glutamatergic neurons | Y (3) | Y |
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| Lin et al., 2014 [ | SCZ, ASD | Heat shock alters SCZ, ASD-related genes | 3-dimensional neuronal aggregates | Y | Y |
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| Liu et al., 2012 [ | Fragile X syndrome | FMR1 mutation linked phenotype and signaling deficits | Differentiated neurons | Risk variant carrier | Y |
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| Madison et al., 2015 [ | BPD | Phenotypic alterations in BPD progenitors rescued by WNT inhibition | NPCs | Y (2) (pedigree-study) | N |
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| Maekawa et al., 2015 [ | SCZ, ASD | Hair follicle is a potential biomarker source | iPSC-derived neurospheres | Y | Y |
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| Marchetto et al., 2010 [ | Rett syndrome | Morphological and electrophysiological anomalies | Panneuronal differentiation protocol | Y | Y |
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| Maschietto et al., 2015 [ | SCZ | Altered gene expression profile during neurodevelopment | NPCs | Y (1) | Y |
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| Niedringhaus et al., 2015 [ | Fragile X syndrome | Mobile raft minicultures developed for high-throughput assays on neurons | Differentiated neurons in microraft cultures | Y (1) | Y |
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| Paşca et al., 2011 [ | Timothy syndrome | Disease-specific cellular phenotype and differentiation | Cortical glutamatergic neurons | Y (2) | Y |
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| Paulsen et al., 2014 [ | SCZ | Zinc and potassium imbalance reverted by valproate | NPCs | Y (2) | N |
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| Pedrosa et al., 2011 [ | SCZ | 22q11.2 deletion delays differentiation | Glutamatergic neurons | Y (3) | N |
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| Robicsek et al., 2013 [ | SCZ | Impaired differentiation, maturation, and mitochondrial dysfunction | Dopaminergic neurons | Y (3) | N |
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| Roussos et al., 2014 [ | SCZ | CACNA1C variation disrupts gene regulation through chromosome loops | Differentiated glutamatergic neurons | N | Y |
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| Shcheglovitov et al., 2013 [ | 22q13.3 deletion syndrome | SHANK3 and IGF1 correct excitatory synaptic transmission deficit | Differentiated glutamatergic neurons | Y (2) | N |
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| Sheridan et al., 2011 [ | Fragile X syndrome | Diminished neural differentiation | Differentiated neurons and glia | Y (3) | Y |
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| Shi et al., 2014 [ | Psychopharmacology | Dopamine 2 receptor is mediated by microRNA-9 and microRNA-326 | Dopaminergic neurons | N | Y |
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| Tian et al., 2014 [ | Timothy syndrome | Altered Ca2+ signaling leads to transcriptional dysregulation | Differentiated glutamatergic neurons | Y (3) | Y |
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| Topol et al., 2015 [ | SCZ | Altered WNT signaling | Forebrain patterned NPCs | Y (4) | N |
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| Wang et al., 2014 [ | BPD | Cell adhesiveness is associated with lithium response | Immature iNs, lentiviral-based transdifferentiation | Y (12) | Y |
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| Wen et al., 2014 [ | SCZ, MDD | DISC1 mutation causes synaptic deficits and transcription dysregulation | Glutamatergic forebrain neurons | Y (2) | N |
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| Williams et al., 2014 [ | Rett syndrome | MECP2 mutant astrocyte influences negatively the morphology and function of cocultured neurons | Astrocytes | Y | Y |
| Yoon et al., 2014 [ | SCZ | 15q11.2 CNV results in neural stem cell deficit | Neural rosettes, NPCs | Y | Y |
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| Yu et al., 2014 [ | SCZ | Deficit in hippocampal granule neuron generation | Hippocampus dentate gyrus granule cells | Y (4) | Y |
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| Zeng et al., 2013 [ | Neurodevelopment | NRXN1 silencing impacts adhesion and differentiation related transcription | NPCs and differentiated neurons | N | Y |
∗ indicates data were not available.
ASD: autism spectrum disorders; BPD: bipolar disorder; iPSC: induced pluripotent stem cell; MDD: major depressive disorder; SCZ: schizophrenia; NPC: neural progenitor cell.
| Author(s) (31) | Year of publication | Disease(s) |
|---|---|---|
| Acab and Muotri | 2015 [ | ASD |
| Aigner et al. | 2014 [ | ASD |
| Ardhanareeswaran et al. | 2015 [ | ASD |
| Brennand and Gage | 2012 [ | Psychiatric disorders |
| Brennand et al. | 2014 [ | SCZ |
| Buxbaum and Sklar | 2011 [ | SCZ |
| Chailangkarn et al. | 2012 [ | Neurodevelopmental disorders |
| Cheung et al. | 2012 [ | Rett syndrome |
| Cundiff and Anderson | 2011 [ | Neuropsychiatric disorders |
| Duan | 2015 [ | SCZ |
| Freitas et al. | 2014 [ | ASD |
| Ho et al. | 2015 [ | Neuropsychiatric disorders |
| Cocks et al. | 2014 [ | ASD |
| Kim | 2010 [ | Psychiatric disorders |
| Kim et al. | 2012 [ | ASD |
| Kim et al. | 2014 [ | ASD |
| Ladran et al. | 2013 [ | Neuropsychiatric disorders |
| Liu and Scott | 2014 [ | ASD |
| Mackay-Sim et al. | 2011 [ | Neuropsychiatric disorders |
| Muotri | 2015 [ | ASD |
| O'Shea and McInnis | 2015 [ | BPD |
| Paşca et al. | 2014 [ | Neuropsychiatric disorders |
| Paulsen et al. | 2012 [ | SCZ |
| Paulsen et al. | 2013 [ | Neurodevelopmental disorders |
| Prilutsky et al. | 2014 [ | ASD |
| Qiang et al. | 2014 [ | Neuropsychiatric disorders |
| Schadt et al. | 2014 [ | Neuropsychiatric disorders |
| Tobe et al. | 2013 [ | Psychopharmacology |
| Tran et al. | 2013 [ | SCZ |
| Vaccarino et al. | 2011 [ | Neuropsychiatric disorders |
| Viswanath et al. | 2015 [ | BPD |
| Walsh and Hochedlinger | 2010 [ | Rett syndrome |
| Wright et al. | 2014 [ | SCZ |
ASD: autism spectrum disorders; BPD: bipolar disorder; SCZ: schizophrenia.