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Optic vesicle-like structures derived from human pluripotent stem cells facilitate a customized approach to retinal disease treatment.

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TL;DR

This study isolates optic vesicle-like structures from human pluripotent stem cells, enabling the generation of functional retinal cell types, including RPE affected by gyrate atrophy. The method allows disease modeling and correction, advancing personalized retinal therapies.

Abstract
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Differentiation methods for human induced pluripotent stem cells (hiPSCs) typically yield progeny from multiple tissue lineages, limiting their use for drug testing and autologous cell transplantation. In particular, early retina and forebrain derivatives often intermingle in pluripotent stem cell cultures, owing to their shared ancestry and tightly coupled development. Here, we demonstrate that three-dimensional populations of retinal progenitor cells (RPCs) can be isolated from early forebrain populations in both human embryonic stem cell and hiPSC cultures, providing a valuable tool for developmental, functional, and translational studies. Using our established protocol, we identified a transient population of optic vesicle (OV)-like structures that arose during a time period appropriate for normal human retinogenesis. These structures were independently cultured and analyzed to confirm their multipotent RPC status and capacity to produce physiologically responsive retinal cell types, including photoreceptors and retinal pigment epithelium (RPE). We then applied this method to hiPSCs derived from a patient with gyrate atrophy, a retinal degenerative disease affecting the RPE. RPE generated from these hiPSCs exhibited a disease-specific functional defect that could be corrected either by pharmacological means or following targeted gene repair. The production of OV-like populations from human pluripotent stem cells should facilitate the study of human retinal development and disease and advance the use of hiPSCs in personalized medicine.

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  • Research Article
  • 10.1007/s11626-024-00863-w
Secondary Publication: Proposal for Points of Consideration for Pluripotent Stem Cell Culture
  • Mar 12, 2024
  • In Vitro Cellular & Developmental Biology. Animal
  • Takashi Aoi + 14 more

Human pluripotent stem cells, such as human embryonic stem cells and human induced pluripotent stem cells, are used in basic research and various applied fields, including drug discovery and regenerative medicine. Stem cell technologies have developed rapidly in recent years, and the supply of culture materials has improved. This has facilitated the culture of human pluripotent stem cells and has enabled an increasing number of researchers and bioengineers to access this technology. At the same time, it is a challenge to share the basic concepts and techniques of this technology among researchers and technicians to ensure the reproducibility of research results. Human pluripotent stem cells differ from conventional somatic cells in many aspects, and many points need to be considered in their handling, even for those experienced in cell culture. Therefore, we have prepared this proposal, “Points of Consideration for Pluripotent Stem Cell Culture,” to promote the effective use of human pluripotent stem cells. This proposal includes seven items to be considered and practices to be confirmed before using human pluripotent stem cells. These are laws/guidelines and consent/material transfer agreements, diversity of pluripotent stem cells, culture materials, thawing procedure, media exchange and cell passaging, freezing procedure, and culture management. We aim for the concept of these points of consideration to be shared by researchers and technicians involved in the cell culture of pluripotent stem cells. In this way, we hope the reliability of research using pluripotent stem cells can be improved, and cell culture technology will advance.

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  • Cite Count Icon 84
  • 10.1161/atvbaha.107.154260
A Highly Efficient Method to Differentiate Smooth Muscle Cells From Human Embryonic Stem Cells
  • Dec 1, 2007
  • Arteriosclerosis, Thrombosis, and Vascular Biology
  • Chang-Qing Xie + 5 more

To the Editor: The molecular mechanisms and the control of smooth muscle cell (SMC) differentiation have been extensively investigated because of its therapeutic potential.1 To date, different cell types have been used to study SMC differentiation, including a variety of mouse embryonic stem cells,2 adult stem cells,3,4 and others.5 Because several fundamental differences exist between mouse and human embryonic development,6 lack of a good model system to study human SMC differentiation has hampered the progress of translating SMC knowledge to novel clinical therapies. Human embryonic stem (hES) cells provide a valuable source of cells for studying human cell differentiation and developing therapeutic potentials in regenerative medicine. Since the initial report describing the derivation of hES cells,7 a variety of studies have established in vitro differentiation strategies to several lineages. Recently, it has been demonstrated that vascular progenitors derived from hES cells could be differentiated into endothelial cells and SMCs by endothelial …

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  • Research Article
  • Cite Count Icon 86
  • 10.1016/j.stemcr.2018.06.019
MSX2 Initiates and Accelerates Mesenchymal Stem/Stromal Cell Specification of hPSCs by Regulating TWIST1 and PRAME
  • Jul 19, 2018
  • Stem Cell Reports
  • Leisheng Zhang + 10 more

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.

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  • Cite Count Icon 44
  • 10.1016/j.stemcr.2022.03.019
Functional genomics and the future of iPSCs in disease modeling.
  • Apr 28, 2022
  • Stem Cell Reports
  • Imogen R Brooks + 7 more

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.

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  • Cite Count Icon 158
  • 10.1016/j.actbio.2016.11.016
3D culture of human pluripotent stem cells in RGD-alginate hydrogel improves retinal tissue development.
  • Nov 5, 2016
  • Acta Biomaterialia
  • Nicola C Hunt + 6 more

3D culture of human pluripotent stem cells in RGD-alginate hydrogel improves retinal tissue development.

  • Supplementary Content
  • Cite Count Icon 29
  • 10.3390/pharmaceutics13060865
Cell Replacement Therapy for Retinal and Optic Nerve Diseases: Cell Sources, Clinical Trials and Challenges
  • Jun 11, 2021
  • Pharmaceutics
  • Rosa M Coco-Martin + 2 more

The aim of this review was to provide an update on the potential of cell therapies to restore or replace damaged and/or lost cells in retinal degenerative and optic nerve diseases, describing the available cell sources and the challenges involved in such treatments when these techniques are applied in real clinical practice. Sources include human fetal retinal stem cells, allogenic cadaveric human cells, adult hippocampal neural stem cells, human CNS stem cells, ciliary pigmented epithelial cells, limbal stem cells, retinal progenitor cells (RPCs), human pluripotent stem cells (PSCs) (including both human embryonic stem cells (ESCs) and human induced pluripotent stem cells (iPSCs)) and mesenchymal stem cells (MSCs). Of these, RPCs, PSCs and MSCs have already entered early-stage clinical trials since they can all differentiate into RPE, photoreceptors or ganglion cells, and have demonstrated safety, while showing some indicators of efficacy. Stem/progenitor cell therapies for retinal diseases still have some drawbacks, such as the inhibition of proliferation and/or differentiation in vitro (with the exception of RPE) and the limited long-term survival and functioning of grafts in vivo. Some other issues remain to be solved concerning the clinical translation of cell-based therapy, including (1) the ability to enrich for specific retinal subtypes; (2) cell survival; (3) cell delivery, which may need to incorporate a scaffold to induce correct cell polarization, which increases the size of the retinotomy in surgery and, therefore, the chance of severe complications; (4) the need to induce a localized retinal detachment to perform the subretinal placement of the transplanted cell; (5) the evaluation of the risk of tumor formation caused by the undifferentiated stem cells and prolific progenitor cells. Despite these challenges, stem/progenitor cells represent the most promising strategy for retinal and optic nerve disease treatment in the near future, and therapeutics assisted by gene techniques, neuroprotective compounds and artificial devices can be applied to fulfil clinical needs.

  • Research Article
  • Cite Count Icon 36
  • 10.1016/j.stemcr.2017.08.002
A PITX3-EGFP Reporter Line Reveals Connectivity of Dopamine and Non-dopamine Neuronal Subtypes in Grafts Generated from Human Embryonic Stem Cells.
  • Aug 31, 2017
  • Stem Cell Reports
  • Jonathan C Niclis + 8 more

A PITX3-EGFP Reporter Line Reveals Connectivity of Dopamine and Non-dopamine Neuronal Subtypes in Grafts Generated from Human Embryonic Stem Cells.

  • Front Matter
  • 10.2217/rme-2019-0010
What can we learn from California Institute for Regenerative Medicine's first 50 clinical trials?
  • Oct 1, 2019
  • Regenerative medicine
  • Audrey R Chapman

What can we learn from California Institute for Regenerative Medicine's first 50 clinical trials?

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  • Research Article
  • Cite Count Icon 199
  • 10.1186/1471-213x-10-60
Culture of human pluripotent stem cells using completely defined conditions on a recombinant E-cadherin substratum
  • Jun 2, 2010
  • BMC Developmental Biology
  • Masato Nagaoka + 3 more

BackgroundTo maintain pluripotency of human embryonic stem (huES) cells in feeder-free culture it has been necessary to provide a Matrigel substratum, which is a complex of poorly defined extracellular matrices and growth factors derived from mouse Engelbreth-Holm-Swarm sarcoma cells. Culture of stem cells under ill-defined conditions can inhibit the effectiveness of maintaining cells in a pluripotent state and reduce reproducibility of differentiation protocols. Moreover recent batches of Matrigel have been found to be contaminated with the single stranded RNA virus, Lactate Dehydrogenase Elevating Virus (LDEV), raising concerns regarding the safety of using stem cells that have been cultured on Matrigel in a therapeutic setting. To circumvent such concerns, we attempted to identify a recombinant matrix that could be used as an alternative to Matrigel for the culture of human pluripotent stem cells. huES and human induced pluripotent stem (hiPS) cells were grown on plates coated with a fusion protein consisting of E-cadherin and the IgG Fc domain using mTeSR1 medium.ResultsCells grown under these conditions maintained similar morphology and growth rate to those grown on Matrigel and retained all pluripotent stem cell features, including an ability to differentiate into multiple cell lineages in teratoma assays. We, therefore, present a culture system that maintains the pluripotency of huES and hiPS cells under completely defined conditions.ConclusionsWe propose that this system should facilitate growth of stem cells using good manufacturing practices (GMP), which will be necessary for the clinical use of pluripotent stem cells and their derivatives.

  • Research Article
  • 10.1096/fasebj.2019.33.1_supplement.602.3
Long‐term culture of human pluripotent stem cells on coverslips coated with peptide‐poly(styrene‐co‐vinyl benzoic acid) copolymer
  • Apr 1, 2019
  • The FASEB Journal
  • Karthikeyan Narayanan + 3 more

Human embryonic stem cells (hESCs) and human induced pluripotent stem cells (hiPSCs) have the potential to grow indefinitely (self‐renewal) in culture and differentiate into any cell type in adult human body. The hESCs and hiPSCs represent important resources for regenerative medicine and for disease modeling. Therefore, growing stem cells in undifferentiated state is important. The human pluripotent stem cells are expanded traditionally using either mitotically inactivated mouse embryonic fibroblasts (feeder cells) or Matrigel (MG). Both feeder cells and MG are prepared using mouse tissues that have several disadvantages. These manufactured expensive biological materials that have limited scalability also have high batch‐to‐batch variability. In addition, the animal‐derived (xenogenic) materials have potential to spread inter‐species pathogens. Thus, in order to replace these animal based biological materials, great efforts have been invested to develop synthetic materials that could be used for long‐term pluripotent stem cell growth and proliferation. As a consequence, materials such as poly [2‐(methacryloyloxy) ethyl dimethyl‐(3‐sulfopropyl) ammonium hydroxide] (PMEDSAH) and UV treated peptide‐acrylate materials have been used to culture hESCs. Since these synthetic materials are polymerized directly on the surface of cell culture dish, its application in broad sector and large‐scale expansion of stem cells for downstream applications has limitation. Thus, in the present study, we used a copolymer system containing poly (vinyl benzoic acid‐co‐styrene) (PVBA‐St), which could be coated onto various cell culture surfaces, such as glass, polystyrene cell culture plate etc. We synthesized PVBA‐St via nitroxide‐mediated polymerization to obtain polymer with narrow polydispersity index (PDI) and controlled molecular weight. In this study, we tested the stem cell growth on glass coverslips coated with peptide (extracellular matrix related) conjugated‐PVBA‐St. Up on initial screening, three active peptides were identified suitable for pluripotent stem cells expansion and self‐renewal. The long‐term culture of three pluripotent stem cell lines (H7, HUES‐7 and DF699) further confirmed the applicability and robustness of the copolymer system.Support or Funding InformationFunding was provided by the Institute of Bioengineering and Nanotechnology (Biomedical Research Council, Agency for Science, Technology and Research, Singapore). VMR was supported by funding from National Institutes of Health grant (NIH/NIDDK RO1DK104791)This abstract is from the Experimental Biology 2019 Meeting. There is no full text article associated with this abstract published in The FASEB Journal.

  • Research Article
  • Cite Count Icon 194
  • 10.1038/mt.2011.135
Rapid and Efficient Generation of Functional Motor Neurons From Human Pluripotent Stem Cells Using Gene Delivered Transcription Factor Codes
  • Oct 1, 2011
  • Molecular Therapy
  • Mark E Hester + 12 more

Rapid and Efficient Generation of Functional Motor Neurons From Human Pluripotent Stem Cells Using Gene Delivered Transcription Factor Codes

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  • Research Article
  • Cite Count Icon 407
  • 10.1371/journal.pone.0017540
Cell-Surface Marker Signatures for the Isolation of Neural Stem Cells, Glia and Neurons Derived from Human Pluripotent Stem Cells
  • Mar 2, 2011
  • PLoS ONE
  • Shauna H Yuan + 15 more

BackgroundNeural induction of human pluripotent stem cells often yields heterogeneous cell populations that can hamper quantitative and comparative analyses. There is a need for improved differentiation and enrichment procedures that generate highly pure populations of neural stem cells (NSC), glia and neurons. One way to address this problem is to identify cell-surface signatures that enable the isolation of these cell types from heterogeneous cell populations by fluorescence activated cell sorting (FACS).Methodology/Principal FindingsWe performed an unbiased FACS- and image-based immunophenotyping analysis using 190 antibodies to cell surface markers on naïve human embryonic stem cells (hESC) and cell derivatives from neural differentiation cultures. From this analysis we identified prospective cell surface signatures for the isolation of NSC, glia and neurons. We isolated a population of NSC that was CD184+/CD271−/CD44−/CD24+ from neural induction cultures of hESC and human induced pluripotent stem cells (hiPSC). Sorted NSC could be propagated for many passages and could differentiate to mixed cultures of neurons and glia in vitro and in vivo. A population of neurons that was CD184−/CD44−/CD15LOW/CD24+ and a population of glia that was CD184+/CD44+ were subsequently purified from cultures of differentiating NSC. Purified neurons were viable, expressed mature and subtype-specific neuronal markers, and could fire action potentials. Purified glia were mitotic and could mature to GFAP-expressing astrocytes in vitro and in vivo.Conclusions/SignificanceThese findings illustrate the utility of immunophenotyping screens for the identification of cell surface signatures of neural cells derived from human pluripotent stem cells. These signatures can be used for isolating highly pure populations of viable NSC, glia and neurons by FACS. The methods described here will enable downstream studies that require consistent and defined neural cell populations.

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  • Research Article
  • Cite Count Icon 26
  • 10.1371/journal.pone.0171947
Differentiation of oligodendrocyte progenitor cells from dissociated monolayer and feeder-free cultured pluripotent stem cells.
  • Feb 13, 2017
  • PLOS ONE
  • Tomoko Yamashita + 12 more

Oligodendrocytes myelinate axons and form myelin sheaths in the central nervous system. The development of therapies for demyelinating diseases, including multiple sclerosis and leukodystrophies, is a challenge because the pathogenic mechanisms of disease remain poorly understood. Primate pluripotent stem cell-derived oligodendrocytes are expected to help elucidate the molecular pathogenesis of these diseases. Oligodendrocytes have been successfully differentiated from human pluripotent stem cells. However, it is challenging to prepare large amounts of oligodendrocytes over a short amount of time because of manipulation difficulties under conventional primate pluripotent stem cell culture methods. We developed a proprietary dissociated monolayer and feeder-free culture system to handle pluripotent stem cell cultures. Because the dissociated monolayer and feeder-free culture system improves the quality and growth of primate pluripotent stem cells, these cells could potentially be differentiated into any desired functional cells and consistently cultured in large-scale conditions. In the current study, oligodendrocyte progenitor cells and mature oligodendrocytes were generated within three months from monkey embryonic stem cells. The embryonic stem cell-derived oligodendrocytes exhibited in vitro myelinogenic potency with rat dorsal root ganglion neurons. Additionally, the transplanted oligodendrocyte progenitor cells differentiated into myelin basic protein-positive mature oligodendrocytes in the mouse corpus callosum. This preparative method was used for human induced pluripotent stem cells, which were also successfully differentiated into oligodendrocyte progenitor cells and mature oligodendrocytes that were capable of myelinating rat dorsal root ganglion neurons. Moreover, it was possible to freeze, thaw, and successfully re-culture the differentiating cells. These results showed that embryonic stem cells and human induced pluripotent stem cells maintained in a dissociated monolayer and feeder-free culture system have the potential to generate oligodendrocyte progenitor cells and mature oligodendrocytes in vitro and in vivo. This culture method could be applied to prepare large amounts of oligodendrocyte progenitor cells and mature oligodendrocytes in a relatively short amount of time.

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  • Research Article
  • Cite Count Icon 31
  • 10.1074/jbc.r113.481028
Stem Cells and Stem Cell-derived Tissues and Their Use in Safety Assessment
  • Feb 1, 2014
  • Journal of Biological Chemistry
  • Kyle Kolaja

Toxicology has long relied on animal models in a tedious approach to understanding risk of exposure to an uncharacterized molecule. Stem cell-derived tissues can be made in high purity, quality, and quantity to enable a new approach to this problem. Currently, stem cell-derived tissues are primarily "generic" genetic backgrounds; the future will see the integration of various genetic backgrounds and complex three-dimensional models to create truly unique in vitro organoids. This minireview focuses on the state of the art of a number of stem cell-derived tissues and details their application in toxicology.

  • Research Article
  • Cite Count Icon 53
  • 10.1038/mt.2011.125
Directed Differentiation of Human Embryonic Stem Cells to Interrogate the Cardiac Gene Regulatory Network
  • Sep 1, 2011
  • Molecular Therapy
  • James E Dixon + 4 more

Directed Differentiation of Human Embryonic Stem Cells to Interrogate the Cardiac Gene Regulatory Network

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