Generation of ARX-T2A-H2B-CFP x C-PEP-mCherry-hiPSC double reporter line for monitoring of pancreatic differentiation
Pancreatic islets consist of several different endocrine cell types that work in harmony. Aside from primary pancreatic islets, stem cell-derived pancreatic islets can be used as an alternative research and disease model. Here, we introduce a double reporter line of ARX-T2A-H2B-CFP x C-PEP-mCherry-h...
| Published in: | Stem Cell Research |
|---|---|
| Main Authors: | Eunike Sawitning Ayu Setyono, Nicole Katarina Rogers, Anita Hofmann, Heiko Lickert, Ingo Burtscher |
| Format: | Article |
| Language: | English |
| Published: |
Elsevier
2025-04-01
|
| Online Access: | http://www.sciencedirect.com/science/article/pii/S1873506125000352 |
Similar Items
Generation of a PXR reporter human induced pluripotent stem cell line (PXR-mCherry hiPSC) using the CRISPR/Cas9 system
by: Hyemin Kim, et al.
Published: (2018-01-01)
by: Hyemin Kim, et al.
Published: (2018-01-01)
hiPSC-derived cardiac fibroblasts dynamically enhance the mechanical function of hiPSC-derived cardiomyocytes on an engineered substrate
by: Mitchell Josvai, et al.
Published: (2025-05-01)
by: Mitchell Josvai, et al.
Published: (2025-05-01)
Cytotoxicity of Dhanwantharaarishtam on hiPSC Cells – An In vitro Study
by: Barri Indira Devi, et al.
Published: (2024-12-01)
by: Barri Indira Devi, et al.
Published: (2024-12-01)
Characterizing the secretome of licensed hiPSC-derived MSCs
by: Yolande F. M. Ramos, et al.
Published: (2022-09-01)
by: Yolande F. M. Ramos, et al.
Published: (2022-09-01)
Generation of hiPSC-Derived Skeletal Muscle Cells: Exploiting the Potential of Skeletal Muscle-Derived hiPSCs
by: Eric Metzler, et al.
Published: (2022-05-01)
by: Eric Metzler, et al.
Published: (2022-05-01)
A complete workflow for the differentiation and the dissociation of hiPSC-derived cardiospheres
by: Benjamin Fischer, et al.
Published: (2018-10-01)
by: Benjamin Fischer, et al.
Published: (2018-10-01)
Reprogramming of HUVECs into induced pluripotent stem cells (HiPSCs), generation and characterization of HiPSC-derived neurons and astrocytes.
by: Yohannes Haile, et al.
Published: (2015-01-01)
by: Yohannes Haile, et al.
Published: (2015-01-01)
Cardiac disease mechanobiology: advances using hiPSC-CMs
by: Georgina Aluoch Stephanie, et al.
Published: (2025-09-01)
by: Georgina Aluoch Stephanie, et al.
Published: (2025-09-01)
Matured hiPSC-derived cardiomyocytes possess dematuration plasticity
by: Fang Meng, et al.
Published: (2025-06-01)
by: Fang Meng, et al.
Published: (2025-06-01)
Comparison and optimization of hiPSC forebrain cortical differentiation protocols.
by: Christina R Muratore, et al.
Published: (2014-01-01)
by: Christina R Muratore, et al.
Published: (2014-01-01)
Engineering hiPSC-CM and hiPSC-EC laden 3D nanofibrous splenic hydrogel for improving cardiac function through revascularization and remuscularization in infarcted heart
by: Ge Guan, et al.
Published: (2021-12-01)
by: Ge Guan, et al.
Published: (2021-12-01)
Divergent Levels of Marker Chromosomes in an hiPSC-Based Model of Psychosis
by: Julia TCW, et al.
Published: (2017-03-01)
by: Julia TCW, et al.
Published: (2017-03-01)
Developmental neurotoxicity of PFOA exposure on hiPSC-derived cortical neurons
by: Shichen Wu, et al.
Published: (2024-08-01)
by: Shichen Wu, et al.
Published: (2024-08-01)
Optical Mapping in hiPSC-CM and Zebrafish to Resolve Cardiac Arrhythmias
by: Bert Vandendriessche, et al.
Published: (2020-12-01)
by: Bert Vandendriessche, et al.
Published: (2020-12-01)
An in silico hiPSC-Derived Cardiomyocyte Model Built With Genetic Algorithm
by: Akwasi D. Akwaboah, et al.
Published: (2021-06-01)
by: Akwasi D. Akwaboah, et al.
Published: (2021-06-01)
Construction of Two mCherry Plasmids (pXG-mCherry) for Transgenic Leishmania: Valuable Tools for Future Molecular Analysis
by: Andrés Vacas, et al.
Published: (2017-01-01)
by: Andrés Vacas, et al.
Published: (2017-01-01)
Contractile Work Contributes to Maturation of Energy Metabolism in hiPSC-Derived Cardiomyocytes
by: Bärbel M. Ulmer, et al.
Published: (2018-03-01)
by: Bärbel M. Ulmer, et al.
Published: (2018-03-01)
Automated inference of disease mechanisms in patient-hiPSC-derived neuronal networks
by: Nina Doorn, et al.
Published: (2025-05-01)
by: Nina Doorn, et al.
Published: (2025-05-01)
Psychiatric Implications of Genetic Variations in Oligodendrocytes: Insights from hiPSC Models
by: Martina D’Angelo, et al.
Published: (2025-06-01)
by: Martina D’Angelo, et al.
Published: (2025-06-01)
Molecular and metabolomic characterization of hiPSC-derived cardiac fibroblasts transitioning to myofibroblasts
by: Raghu Sundaresan Nagalingam, et al.
Published: (2024-12-01)
by: Raghu Sundaresan Nagalingam, et al.
Published: (2024-12-01)
Modeling Movement Disorders via Generation of hiPSC-Derived Motor Neurons
by: Masuma Akter, et al.
Published: (2022-11-01)
by: Masuma Akter, et al.
Published: (2022-11-01)
Independent compartmentalization of functional, metabolic, and transcriptional maturation of hiPSC-derived cardiomyocytes
by: K. Ashley Fetterman, et al.
Published: (2024-05-01)
by: K. Ashley Fetterman, et al.
Published: (2024-05-01)
The three-dimensionality of the hiPSC-CM spheroid contributes to the variability of the field potential
by: Minki Hwang, et al.
Published: (2023-03-01)
by: Minki Hwang, et al.
Published: (2023-03-01)
Merits of hiPSC-Derived Cardiomyocytes for In Vitro Research and Testing Drug Toxicity
by: Ping-Hsien Wang, et al.
Published: (2022-10-01)
by: Ping-Hsien Wang, et al.
Published: (2022-10-01)
hiPSC-Derived Schwann Cells Influence Myogenic Differentiation in Neuromuscular Cocultures
by: Sarah Janice Hörner, et al.
Published: (2021-11-01)
by: Sarah Janice Hörner, et al.
Published: (2021-11-01)
All-Optical Electrophysiology in hiPSC-Derived Neurons With Synthetic Voltage Sensors
by: Francesca Puppo, et al.
Published: (2021-05-01)
by: Francesca Puppo, et al.
Published: (2021-05-01)
Formation and characterisation of neuromuscular junctions between hiPSC derived motoneurons and myotubes
by: M. Demestre, et al.
Published: (2015-09-01)
by: M. Demestre, et al.
Published: (2015-09-01)
The Efficiency of Direct Maturation: the Comparison of Two hiPSC Differentiation Approaches into Motor Neurons
by: Catherine Schaefers, et al.
Published: (2022-01-01)
by: Catherine Schaefers, et al.
Published: (2022-01-01)
Decellularized heart extracellular matrix alleviates activation of hiPSC-derived cardiac fibroblasts
by: Charles M. Kerr, et al.
Published: (2024-01-01)
by: Charles M. Kerr, et al.
Published: (2024-01-01)
Utilizing hiPSC-derived oligodendrocytes to study myelin pathophysiology in neuropsychiatric and neurodegenerative disorders.
by: Gina Shim, et al.
Published: (2024-01-01)
by: Gina Shim, et al.
Published: (2024-01-01)
hESC- and hiPSC-derived Schwann cells are molecularly comparable and functionally equivalent
by: Kathryn R. Moss, et al.
Published: (2024-06-01)
by: Kathryn R. Moss, et al.
Published: (2024-06-01)
Increased connectivity of hiPSC-derived neural networks in multiphase granular hydrogel scaffolds
by: Chia-Chen Hsu, et al.
Published: (2022-03-01)
by: Chia-Chen Hsu, et al.
Published: (2022-03-01)
hiPSC-derived GRN-deficient astrocytes delay spiking activity of developing neurons
by: Christopher Lee, et al.
Published: (2023-06-01)
by: Christopher Lee, et al.
Published: (2023-06-01)
Reliability of human retina organoid generation from hiPSC-derived neuroepithelial cysts
by: Madalena Carido, et al.
Published: (2023-10-01)
by: Madalena Carido, et al.
Published: (2023-10-01)
Synaptic and functional alterations in the development of mutant huntingtin expressing hiPSC‐derived neurons
by: Margarita C. Dinamarca, et al.
Published: (2022-07-01)
by: Margarita C. Dinamarca, et al.
Published: (2022-07-01)
Sarc-Graph: Automated segmentation, tracking, and analysis of sarcomeres in hiPSC-derived cardiomyocytes.
by: Bill Zhao, et al.
Published: (2021-10-01)
by: Bill Zhao, et al.
Published: (2021-10-01)
Expression of Extracellular Vesicle PIWI-Interacting RNAs Throughout hiPSC-Cardiomyocyte Differentiation
by: Ana F. Louro, et al.
Published: (2022-06-01)
by: Ana F. Louro, et al.
Published: (2022-06-01)
A village in a dish model system for population-scale hiPSC studies
by: Drew R. Neavin, et al.
Published: (2023-06-01)
by: Drew R. Neavin, et al.
Published: (2023-06-01)
Metabolic Maturation in hiPSC-Derived Cardiomyocytes: Emerging Strategies for Inducing the Adult Cardiac Phenotype
by: Daniela Malan, et al.
Published: (2025-07-01)
by: Daniela Malan, et al.
Published: (2025-07-01)
Protocol to generate PDMS topographical patterns for hiPSC-derived or rat primary neuronal cultures
by: Anna-Christina Haeb, et al.
Published: (2025-09-01)
by: Anna-Christina Haeb, et al.
Published: (2025-09-01)
Similar Items
-
Generation of a PXR reporter human induced pluripotent stem cell line (PXR-mCherry hiPSC) using the CRISPR/Cas9 system
by: Hyemin Kim, et al.
Published: (2018-01-01) -
hiPSC-derived cardiac fibroblasts dynamically enhance the mechanical function of hiPSC-derived cardiomyocytes on an engineered substrate
by: Mitchell Josvai, et al.
Published: (2025-05-01) -
Cytotoxicity of Dhanwantharaarishtam on hiPSC Cells – An In vitro Study
by: Barri Indira Devi, et al.
Published: (2024-12-01) -
Characterizing the secretome of licensed hiPSC-derived MSCs
by: Yolande F. M. Ramos, et al.
Published: (2022-09-01) -
Generation of hiPSC-Derived Skeletal Muscle Cells: Exploiting the Potential of Skeletal Muscle-Derived hiPSCs
by: Eric Metzler, et al.
Published: (2022-05-01)
