Translation: Screening for Novel Therapeutics With Disease-Relevant Cell Types Derived from Human Stem Cell Models
Translation: Screening for Novel Therapeutics With Disease-Relevant Cell Types Derived from Human Stem Cell Models
- Research Article
56
- 10.1016/j.neuron.2013.06.002
- Jun 1, 2013
- Neuron
Remodeling Neurodegeneration: Somatic Cell Reprogramming-Based Models of Adult Neurological Disorders
- Research Article
107
- 10.1016/j.ccell.2021.01.005
- Feb 4, 2021
- Cancer Cell
H3.3-K27M drives neural stem cell-specific gliomagenesis in a human iPSC-derived model.
- Research Article
31
- 10.1016/j.stemcr.2018.04.003
- May 1, 2018
- Stem Cell Reports
CXCL12/CXCR4 Signaling Enhances Human PSC-Derived Hematopoietic ProgenitorFunction and Overcomes Early InVivo Transplantation Failure.
- Research Article
194
- 10.1038/mt.2011.135
- Oct 1, 2011
- Molecular Therapy
Rapid and Efficient Generation of Functional Motor Neurons From Human Pluripotent Stem Cells Using Gene Delivered Transcription Factor Codes
- Research Article
23
- 10.1016/j.stemcr.2020.07.023
- Aug 27, 2020
- Stem Cell Reports
SummaryNeural crest cells (NCCs) contribute to several tissues during embryonic development. NCC formation depends on activation of tightly regulated molecular programs at the neural plate border (NPB) region, which initiate NCC specification and epithelial-to-mesenchymal transition (EMT). Although several approaches to investigate NCCs have been devised, these early events of NCC formation remain largely unknown in humans, and currently available cellular models have not investigated EMT. Here, we report that the E6 neural induction protocol converts human induced pluripotent stem cells into NPB-like cells (NBCs), from which NCCs can be efficiently derived. NBC-to-NCC induction recapitulates gene expression dynamics associated with NCC specification and EMT, including downregulation of NPB factors and upregulation of NCC specifiers, coupled with other EMT-associated cell-state changes, such as cadherin modulation and activation of TWIST1 and other EMT inducers. This strategy will be useful in future basic or translational research focusing on these early steps of NCC formation.
- Research Article
9
- 10.1016/j.isci.2022.105469
- Dec 1, 2022
- iScience
Stabilization of hESCs in two distinct substates along the continuum of pluripotency.
- Research Article
36
- 10.1016/j.stemcr.2017.08.002
- Aug 31, 2017
- Stem Cell Reports
A PITX3-EGFP Reporter Line Reveals Connectivity of Dopamine and Non-dopamine Neuronal Subtypes in Grafts Generated from Human Embryonic Stem Cells.
- Research Article
82
- 10.1016/j.stem.2019.06.010
- Jul 1, 2019
- Cell Stem Cell
Defining Human Pluripotency.
- Research Article
86
- 10.1016/j.stemcr.2018.06.019
- Jul 19, 2018
- Stem Cell Reports
SummaryThe gap in knowledge of the molecular mechanisms underlying differentiation of human pluripotent stem cells (hPSCs) into the mesenchymal cell lineages hinders the application of hPSCs for cell-based therapy. In this study, we identified a critical role of muscle segment homeobox 2 (MSX2) in initiating and accelerating the molecular program that leads to mesenchymal stem/stromal cell (MSC) differentiation from hPSCs. Genetic deletion of MSX2 impairs hPSC differentiation into MSCs. When aided with a cocktail of soluble molecules, MSX2 ectopic expression induces hPSCs to form nearly homogeneous and fully functional MSCs. Mechanistically, MSX2 induces hPSCs to form neural crest cells, an intermediate cell stage preceding MSCs, and further differentiation by regulating TWIST1 and PRAME. Furthermore, we found that MSX2 is also required for hPSC differentiation into MSCs through mesendoderm and trophoblast. Our findings provide novel mechanistic insights into lineage specification of hPSCs to MSCs and effective strategies for applications of stem cells for regenerative medicine.
- Research Article
44
- 10.1016/j.stemcr.2022.03.019
- Apr 28, 2022
- Stem Cell Reports
SummaryInduced pluripotent stem cells (iPSCs) are valuable in disease modeling because of their potential to expand and differentiate into virtually any cell type and recapitulate key aspects of human biology. Functional genomics are genome-wide studies that aim to discover genotype-phenotype relationships, thereby revealing the impact of human genetic diversity on normal and pathophysiology. In this review, we make the case that human iPSCs (hiPSCs) are a powerful tool for functional genomics, since they provide an in vitro platform for the study of population genetics. We describe cutting-edge tools and strategies now available to researchers, including multi-omics technologies, advances in hiPSC culture techniques, and innovations in drug development. Functional genomics approaches based on hiPSCs hold great promise for advancing drug discovery, disease etiology, and the impact of genetic variation on human biology.
- Research Article
204
- 10.1016/j.stem.2019.04.001
- May 1, 2019
- Cell Stem Cell
Highly Efficient and Marker-free Genome Editing of Human Pluripotent Stem Cells by CRISPR-Cas9 RNP and AAV6 Donor-Mediated Homologous Recombination.
- Research Article
117
- 10.1038/mt.2010.55
- Jun 1, 2010
- Molecular Therapy
Engineering of Human Pluripotent Stem Cells by AAV-mediated Gene Targeting
- Research Article
87
- 10.1016/j.celrep.2022.110994
- Jun 1, 2022
- Cell Reports
Recapitulating early human development with 8C-like cells.
- Research Article
71
- 10.1074/jbc.m110.168013
- Apr 1, 2011
- Journal of Biological Chemistry
Reprogramming of somatic cells to induced pluripotent stem (iPS) cells can be achieved by the delivery of a combination of transcription factors, including Oct4, Sox2, Klf4, and c-Myc. Retroviral and lentiviral vectors are commonly used to express these four reprogramming factors separately and obtain reprogrammed iPS cells. Although efficient and reproducible, these approaches involve the time-consuming and labor-intensive production of retroviral or lentiviral particles together with a high risk of working with potentially harmful viruses overexpressing potent oncogenes, such as c-Myc. Here, we describe a simple method to produce bona fide iPS cells from human fibroblasts using poly-β-amino esters as the transfection reagent for the delivery of a single CAG-driven polycistronic plasmid expressing Oct4, Sox2, Klf4, c-Myc, and a GFP reporter gene (OSKMG). We demonstrate for the first time that poly-β-amino esters can be used to deliver a single polycistronic reprogramming vector into human fibroblasts, achieving significantly higher transfection efficiency than with conventional transfection reagents. After a protocol of serial transfections using poly-β-amino esters, we report a simple methodology to generate human iPS cells from human fibroblasts avoiding the use of viral vectors.
- Research Article
106
- 10.1016/j.celrep.2015.01.049
- Feb 1, 2015
- Cell Reports
Vascular endothelial growth factor receptor 3 controls neural stem cell activation in mice and humans.