Showing 1 - 12 of 49 results for "05795"
- ReferenceP. Zhang et al. ( 2019) eLife 8
Chronic optogenetic induction of stress granules is cytotoxic and reveals the evolution of ALS-FTD pathology.
Stress granules (SGs) are non-membrane-bound RNA-protein granules that assemble through phase separation in response to cellular stress. Disturbances in SG dynamics have been implicated as a primary driver of neurodegenerative diseases, including amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD), suggesting the hypothesis that these diseases reflect an underlying disturbance in the dynamics and material properties of SGs. However, this concept has remained largely untestable in available models of SG assembly, which require the confounding variable of exogenous stressors. Here we introduce a light-inducible SG system, termed OptoGranules, based on optogenetic multimerization of G3BP1, which is an essential scaffold protein for SG assembly. In this system, which permits experimental control of SGs in living cells in the absence of exogenous stressors, we demonstrate that persistent or repetitive assembly of SGs is cytotoxic and is accompanied by the evolution of SGs to cytoplasmic inclusions that recapitulate the pathology of ALS-FTD. Editorial note This article has been through an editorial process in which the authors decide how to respond to the issues raised during peer review. The Reviewing Editor's assessment is that all the issues have been addressed (see decision letter). View PublicationCatalog #: Product Name: 85850 mTeSR™1 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 85850 Product Name: mTeSR™1 Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceH. S. Venkatesh et al. ( 2019) Nature 573 7775 539--545
Electrical and synaptic integration of glioma into neural circuits.
High-grade gliomas are lethal brain cancers whose progression is robustly regulated by neuronal activity. Activity-regulated release of growth factors promotes glioma growth, but this alone is insufficient to explain the effect that neuronal activity exerts on glioma progression. Here we show that neuron and glioma interactions include electrochemical communication through bona fide AMPA receptor-dependent neuron-glioma synapses. Neuronal activity also evokes non-synaptic activity-dependent potassium currents that are amplified by gap junction-mediated tumour interconnections, forming an electrically coupled network. Depolarization of glioma membranes assessed by in vivo optogenetics promotes proliferation, whereas pharmacologically or genetically blocking electrochemical signalling inhibits the growth of glioma xenografts and extends mouse survival. Emphasizing the positive feedback mechanisms by which gliomas increase neuronal excitability and thus activity-regulated glioma growth, human intraoperative electrocorticography demonstrates increased cortical excitability in the glioma-infiltrated brain. Together, these findings indicate that synaptic and electrical integration into neural circuits promotes glioma progression. View PublicationCatalog #: Product Name: 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceL. Tagliafierro et al. ( 2019) Human molecular genetics 28 3 407--421
Multiplication of the SNCA locus exacerbates neuronal nuclear aging.
Human-induced Pluripotent Stem Cell (hiPSC)-derived models have advanced the study of neurodegenerative diseases, including Parkinson's disease (PD). While age is the strongest risk factor for these disorders, hiPSC-derived models represent rejuvenated neurons. We developed hiPSC-derived Aged dopaminergic and cholinergic neurons to model PD and related synucleinopathies. Our new method induces aging through a `semi-natural' process, by passaging multiple times at the Neural Precursor Cell stage, prior to final differentiation. Characterization of isogenic hiPSC-derived neurons using heterochromatin and nuclear envelope markers, as well as DNA damage and global DNA methylation, validated our age-inducing method. Next, we compared neurons derived from a patient with SNCA-triplication (SNCA-Tri) and a Control. The SNCA-Tri neurons displayed exacerbated nuclear aging, showing advanced aging signatures already at the Juvenile stage. Noteworthy, the Aged SNCA-Tri neurons showed more $\alpha$-synuclein aggregates per cell versus the Juvenile. We suggest a link between the effects of aging and SNCA overexpression on neuronal nuclear architecture. View PublicationCatalog #: Product Name: 85850 mTeSR™1 05835 STEMdiff™ Neural Induction Medium 05832 STEMdiff™ Neural Rosette Selection Reagent 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 85850 Product Name: mTeSR™1 Catalog #: 05835 Product Name: STEMdiff™ Neural Induction Medium Catalog #: 05832 Product Name: STEMdiff™ Neural Rosette Selection Reagent Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceV. Sundaramoorthy et al. (mar 2020) Viruses 12 4
Modelling Lyssavirus Infections in Human Stem Cell-Derived Neural Cultures.
Rabies is a zoonotic neurological infection caused by lyssavirus that continues to result in devastating loss of human life. Many aspects of rabies pathogenesis in human neurons are not well understood. Lack of appropriate ex-vivo models for studying rabies infection in human neurons has contributed to this knowledge gap. In this study, we utilize advances in stem cell technology to characterize rabies infection in human stem cell-derived neurons. We show key cellular features of rabies infection in our human neural cultures, including upregulation of inflammatory chemokines, lack of neuronal apoptosis, and axonal transmission of viruses in neuronal networks. In addition, we highlight specific differences in cellular pathogenesis between laboratory-adapted and field strain lyssavirus. This study therefore defines the first stem cell-derived ex-vivo model system to study rabies pathogenesis in human neurons. This new model system demonstrates the potential for enabling an increased understanding of molecular mechanisms in human rabies, which could lead to improved control methods. View PublicationCatalog #: Product Name: 34811 AggreWell™800 05711 NeuroCult™ SM1 Neuronal Supplement 05750 NeuroCult™ NS-A Basal Medium (Human) 05833 STEMdiff™ Neural Progenitor Medium 07152 N2 Supplement-A 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 34811 Product Name: AggreWell™800 Catalog #: 05711 Product Name: NeuroCult™ SM1 Neuronal Supplement Catalog #: 05750 Product Name: NeuroCult™ NS-A Basal Medium (Human) Catalog #: 05833 Product Name: STEMdiff™ Neural Progenitor Medium Catalog #: 07152 Product Name: N2 Supplement-A Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceT. P. Silva et al. ( 2020) Frontiers in bioengineering and biotechnology 8 70
Maturation of Human Pluripotent Stem Cell-Derived Cerebellar Neurons in the Absence of Co-culture.
The cerebellum plays a critical role in all vertebrates, and many neurological disorders are associated with cerebellum dysfunction. A major limitation in cerebellar research has been the lack of adequate disease models. As an alternative to animal models, cerebellar neurons differentiated from pluripotent stem cells have been used. However, previous studies only produced limited amounts of Purkinje cells. Moreover, in vitro generation of Purkinje cells required co-culture systems, which may introduce unknown components to the system. Here we describe a novel differentiation strategy that uses defined medium to generate Purkinje cells, granule cells, interneurons, and deep cerebellar nuclei projection neurons, that self-formed and differentiated into electrically active cells. Using a defined basal medium optimized for neuronal cell culture, we successfully promoted the differentiation of cerebellar precursors without the need for co-culturing. We anticipate that our findings may help developing better models for the study of cerebellar dysfunctions, while providing an advance toward the development of autologous replacement strategies for treating cerebellar degenerative diseases. View PublicationCatalog #: Product Name: 85850 mTeSR™1 34811 AggreWell™800 05711 NeuroCult™ SM1 Neuronal Supplement 07152 N2 Supplement-A 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 85850 Product Name: mTeSR™1 Catalog #: 34811 Product Name: AggreWell™800 Catalog #: 05711 Product Name: NeuroCult™ SM1 Neuronal Supplement Catalog #: 07152 Product Name: N2 Supplement-A Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceT. Ryyn\anen et al." ( 2018) Frontiers in neuroscience 12 882
Ion Beam Assisted E-Beam Deposited TiN Microelectrodes-Applied to Neuronal Cell Culture Medium Evaluation.
Microelectrode material and cell culture medium have significant roles in the signal-to-noise ratio and cell well-being in in vitro electrophysiological studies. Here, we report an ion beam assisted e-beam deposition (IBAD) based process as an alternative titanium nitride (TiN) deposition method for sputtering in the fabrication of state-of-the-art TiN microelectrode arrays (MEAs). The effects of evaporation and nitrogen flow rates were evaluated while developing the IBAD TiN deposition process. Moreover, the produced IBAD TiN microelectrodes were characterized by impedance, charge transfer capacity (CTC) and noise measurements for electrical properties, AFM and SEM for topological imaging, and EDS for material composition. The impedance (at 1 kHz) of brand new 30 $\mu$m IBAD TiN microelectrodes was found to be double but still below 100 k$\Omega$ compared with commercial reference MEAs with sputtered TiN microelectrodes of the same size. On the contrary, the noise level of IBAD TiN MEAs was lower compared with that of commercial sputtered TiN MEAs in equal conditions. In CTC IBAD TiN electrodes (3.3 mC/cm2) also outperformed the sputtered counterparts (2.0 mC/cm2). To verify the suitability of IBAD TiN microelectrodes for cell measurements, human pluripotent stem cell (hPSC)-derived neuronal networks were cultured on IBAD TiN MEAs and commercial sputtered TiN MEAs in two different media: neural differentiation medium (NDM) and BrainPhys (BPH). The effect of cell culture media to hPSC derived neuronal networks was evaluated to gain more stable and more active networks. Higher spontaneous activity levels were measured from the neuronal networks cultured in BPH compared with those in NDM in both MEA types. However, BPH caused more problems in cell survival in long-term cultures by inducing neuronal network retraction and clump formation after 1-2 weeks. In addition, BPH was found to corrode the Si3N4 insulator layer more than NDM medium. The developed IBAD TiN process gives MEA manufacturers more choices to choose which method to use to deposit TiN electrodes and the medium evaluation results remind that not only electrode material but also insulator layer and cell culturing medium have crucial role in successful long term MEA measurements. View PublicationCatalog #: Product Name: 05711 NeuroCult™ SM1 Neuronal Supplement 07152 N2 Supplement-A 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 05711 Product Name: NeuroCult™ SM1 Neuronal Supplement Catalog #: 07152 Product Name: N2 Supplement-A Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceW. Plumbly et al. ( 2019) Scientific reports 9 1 13810
L-type voltage-gated calcium channel regulation of in vitro human cortical neuronal networks.
The combination of in vitro multi-electrode arrays (MEAs) and the neuronal differentiation of stem cells offers the capability to study human neuronal networks from patient or engineered human cell lines. Here, we use MEA-based assays to probe synaptic function and network interactions of hiPSC-derived neurons. Neuronal network behaviour first emerges at approximately 30 days of culture and is driven by glutamate neurotransmission. Over a further 30 days, inhibitory GABAergic signalling shapes network behaviour into a synchronous regular pattern of burst firing activity and low activity periods. Gene mutations in L-type voltage gated calcium channel subunit genes are strongly implicated as genetic risk factors for the development of schizophrenia and bipolar disorder. We find that, although basal neuronal firing rate is unaffected, there is a dose-dependent effect of L-type voltage gated calcium channel inhibitors on synchronous firing patterns of our hiPSC-derived neural networks. This demonstrates that MEA assays have sufficient sensitivity to detect changes in patterns of neuronal interaction that may arise from hypo-function of psychiatric risk genes. Our study highlights the utility of in vitro MEA based platforms for the study of hiPSC neural network activity and their potential use in novel compound screening. View PublicationCatalog #: Product Name: 85850 mTeSR™1 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 85850 Product Name: mTeSR™1 Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceK. Meyer et al. ( 2019) Cell reports 26 5 1112--1127.e9
REST and Neural Gene Network Dysregulation in iPSC Models of Alzheimer's Disease.
The molecular basis of the earliest neuronal changes that lead to Alzheimer's disease (AD) is unclear. Here, we analyze neural cells derived from sporadic AD (SAD), APOE4 gene-edited and control induced pluripotent stem cells (iPSCs). We observe major differences in iPSC-derived neural progenitor (NP) cells and neurons in gene networks related to neuronal differentiation, neurogenesis, and synaptic transmission. The iPSC-derived neural cells from SAD patients exhibit accelerated neural differentiation and reduced progenitor cell renewal. Moreover, a similar phenotype appears in NP cells and cerebral organoids derived from APOE4 iPSCs. Impaired function of the transcriptional repressor REST is strongly implicated in the altered transcriptome and differentiation state. SAD and APOE4 expression result in reduced REST nuclear translocation and chromatin binding, and disruption of the nuclear lamina. Thus, dysregulation of neural gene networks may set in motion the pathologic cascade that leads to AD. View PublicationCatalog #: Product Name: 85850 mTeSR™1 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 85850 Product Name: mTeSR™1 Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceH. Kim et al. ( 2019) Stem cell reports 12 5 890--905
Pluripotent Stem Cell-Derived Cerebral Organoids Reveal Human Oligodendrogenesis with Dorsal and Ventral Origins.
The process of oligodendrogenesis has been relatively well delineated in the rodent brain. However, it remains unknown whether analogous developmental processes are manifested in the human brain. Here we report oligodendrogenesis in forebrain organoids, generated by using OLIG2-GFP knockin human pluripotent stem cell (hPSC) reporter lines. OLIG2/GFP exhibits distinct temporal expression patterns in ventral forebrain organoids (VFOs) versus dorsal forebrain organoids (DFOs). Interestingly, oligodendrogenesis can be induced in both VFOs and DFOs after neuronal maturation. Assembling VFOs and DFOs to generate fused forebrain organoids (FFOs) promotes oligodendroglia maturation. Furthermore, dorsally derived oligodendroglial cells outcompete ventrally derived oligodendroglia and become dominant in FFOs after long-term culture. Thus, our organoid models reveal human oligodendrogenesis with ventral and dorsal origins. These models will serve to study the phenotypic and functional differences between human ventrally and dorsally derived oligodendroglia and to reveal mechanisms of diseases associated with cortical myelin defects. View PublicationCatalog #: Product Name: 05872 ReLeSR™ 85850 mTeSR™1 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 05872 Product Name: ReLeSR™ Catalog #: 85850 Product Name: mTeSR™1 Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceL.-M. Grunwald et al. ( 2019) Translational psychiatry 9 1 179
Comparative characterization of human induced pluripotent stem cells (hiPSC) derived from patients with schizophrenia and autism.
Human induced pluripotent stem cells (hiPSC) provide an attractive tool to study disease mechanisms of neurodevelopmental disorders such as schizophrenia. A pertinent problem is the development of hiPSC-based assays to discriminate schizophrenia (SZ) from autism spectrum disorder (ASD) models. Healthy control individuals as well as patients with SZ and ASD were examined by a panel of diagnostic tests. Subsequently, skin biopsies were taken for the generation, differentiation, and testing of hiPSC-derived neurons from all individuals. SZ and ASD neurons share a reduced capacity for cortical differentiation as shown by quantitative analysis of the synaptic marker PSD95 and neurite outgrowth. By contrast, pattern analysis of calcium signals turned out to discriminate among healthy control, schizophrenia, and autism samples. Schizophrenia neurons displayed decreased peak frequency accompanied by increased peak areas, while autism neurons showed a slight decrease in peak amplitudes. For further analysis of the schizophrenia phenotype, transcriptome analyses revealed a clear discrimination among schizophrenia, autism, and healthy controls based on differentially expressed genes. However, considerable differences were still evident among schizophrenia patients under inspection. For one individual with schizophrenia, expression analysis revealed deregulation of genes associated with the major histocompatibility complex class II (MHC class II) presentation pathway. Interestingly, antipsychotic treatment of healthy control neurons also increased MHC class II expression. In conclusion, transcriptome analysis combined with pattern analysis of calcium signals appeared as a tool to discriminate between SZ and ASD phenotypes in vitro. View PublicationCatalog #: Product Name: 85850 mTeSR™1 34811 AggreWell™800 05835 STEMdiff™ Neural Induction Medium 05832 STEMdiff™ Neural Rosette Selection Reagent 05110 STEMdiff™ Definitive Endoderm Kit 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 85850 Product Name: mTeSR™1 Catalog #: 34811 Product Name: AggreWell™800 Catalog #: 05835 Product Name: STEMdiff™ Neural Induction Medium Catalog #: 05832 Product Name: STEMdiff™ Neural Rosette Selection Reagent Catalog #: 05110 Product Name: STEMdiff™ Definitive Endoderm Kit Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit - ReferenceS. Ghatak et al. ( 2019) eLife 8
Mechanisms of hyperexcitability in Alzheimer's disease hiPSC-derived neurons and cerebral organoids vs isogenic controls.
Human Alzheimer's disease (AD) brains and transgenic AD mouse models manifest hyperexcitability. This aberrant electrical activity is caused by synaptic dysfunction that represents the major pathophysiological correlate of cognitive decline. However, the underlying mechanism for this excessive excitability remains incompletely understood. To investigate the basis for the hyperactivity, we performed electrophysiological and immunofluorescence studies on hiPSC-derived cerebrocortical neuronal cultures and cerebral organoids bearing AD-related mutations in presenilin-1 or amyloid precursor protein vs. isogenic gene corrected controls. In the AD hiPSC-derived neurons/organoids, we found increased excitatory bursting activity, which could be explained in part by a decrease in neurite length. AD hiPSC-derived neurons also displayed increased sodium current density and increased excitatory and decreased inhibitory synaptic activity. Our findings establish hiPSC-derived AD neuronal cultures and organoids as a relevant model of early AD pathophysiology and provide mechanistic insight into the observed hyperexcitability. View PublicationCatalog #: Product Name: 85850 mTeSR™1 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit 08570 STEMdiff™ Cerebral Organoid Kit 08571 STEMdiff™ Cerebral Organoid Maturation Kit Catalog #: 85850 Product Name: mTeSR™1 Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 08570 Product Name: STEMdiff™ Cerebral Organoid Kit Catalog #: 08571 Product Name: STEMdiff™ Cerebral Organoid Maturation Kit - ReferenceL. Gao et al. ( 2019) Scientific reports 9 1 3462
Suppression of glioblastoma by a drug cocktail reprogramming tumor cells into neuronal like cells.
Glioblastoma (GBM) is the most common and aggressive malignant tumor in adult brain. Even with the current standard therapy including surgical resection followed by postoperative radiotherapy and chemotherapy with temozolomide (Temo), GBM patients still have a poor median survival. Reprogramming of tumor cells into non-malignant cells might be a promising therapeutic strategy for malignant tumors, including GBM. Based on previous studies using small molecules to reprogram astrocytes into neuronal cells, here we further identified a FTT cocktail of three commonly used drugs (Fasudil, Tranilast, and Temo) to reprogram patient-derived GBM cells, either cultured in serum containing or serum-free medium, into neuronal like cells. FTT-treated GBM cells displayed a neuronal like morphology, expressed neuronal genes, exhibited neuronal electrophysiological properties, and showed attenuated malignancy. More importantly, FTT cocktail more significantly suppressed tumor growth and prolonged survival in GBM patient derived xenograft than Temo alone. Our study provided preclinical evidence that the neuronal reprogramming drug cocktail might be a promising strategy to improve the existing treatment for GBM. View PublicationCatalog #: Product Name: 05790 BrainPhys™ Neuronal Medium 05792 BrainPhys™ Neuronal Medium and SM1 Kit 05794 BrainPhys™ Primary Neuron Kit 05795 BrainPhys™ hPSC Neuron Kit 05793 BrainPhys™ Neuronal Medium N2-A & SM1 Kit Catalog #: 05790 Product Name: BrainPhys™ Neuronal Medium Catalog #: 05792 Product Name: BrainPhys™ Neuronal Medium and SM1 Kit Catalog #: 05794 Product Name: BrainPhys™ Primary Neuron Kit Catalog #: 05795 Product Name: BrainPhys™ hPSC Neuron Kit Catalog #: 05793 Product Name: BrainPhys™ Neuronal Medium N2-A & SM1 Kit
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