iPSCs in Tissue Engineering

Forfatter: info mangler
Bog
  • Format
  • Bog, paperback
  • Engelsk

Beskrivelse

The series Advances in Stem Cell Biology is a timely and expansive collection of comprehensive information and new discoveries in the field of stem cell biology. iPSCs in Tissue Engineering, Volume 11 addresses how induced pluripotent stem cells (iPSCs) are being used to advance tissue engineering. Somatic cells can be reprogrammed into iPSCs by the expression of specific transcription factors. These cells have been transforming biomedical research over the last 15 years. This book will address the advances in research of how iPSCs are being used for the generation of different tissues and organs such as the lungs, trachea, salivary glands, skeletal muscle, liver, intestine, kidney, even the brain, and much more. This volume is written for researchers and scientists interested in stem cell therapy, cell biology, regenerative medicine, and tissue engineering and is contributed by world-renowned authors in the field.

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Detaljer
  • SprogEngelsk
  • Sidetal430
  • Udgivelsesdato17-08-2021
  • ISBN139780128238097
  • Forlag Academic Press Inc
  • FormatPaperback
Størrelse og vægt
  • Vægt450 g
  • coffee cup img
    10 cm
    book img
    19,1 cm
    23,5 cm

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    Migration Development Saliva Differentiation Thalamus Retina Hypothalamus Tissue engineering Cell culture Brain tumors Stem cells Cornea Bioengineering Cerebellum Growth factors Chondrocytes Transfection Cartilage Bone Trachea Endothelial Cells Hippocampus Regenerative Medicine Host-Pathogen Interactions Drug Discovery Hydrogels Induced Pluripotent Stem Cells Mesenchymal stem cells Pluripotent Stem Cells Gene Editing Zika Virus Organoids Scaffold Podocytes Blood vessel Reprogramming Transcription factor IPSCs Pulmonary 3D Bioprinting Myogenic differentiation Pompe disease Endothelial cell Smooth Muscle Cells Nephrogenesis 3D scaffolds Biomaterials Nonalcoholic steatohepatitis Stiffness Tracheal reconstruction Vasculature ECM Branching Vascular graft Disease Modeling MiRNA Human disease modeling Plasmid Bioreactor IPSc 'disease-model' Nephron Nonalcoholic fatty liver disease Ectoderm Organoid 3D organoid 3D culture 2D culture Anterior intermediate mesoderm ASCs Assembloids Biomechanics of soft tissue Anterior primitive streak Chondrogenic differentiation Collecting Duct Brain organoids Decellularized Scaffold Epithelial–mesenchymal interaction FGF10FGF7Foxc1Oral epithelium Enteroids Differentiation medium Dorsal forebrain Expansion culture method Ganglionic Eminences Glomerular vasculogenesis Corneal Epithelium Cryopreservation method Corneal organoids Cortical interneurons Intermediate Mesoderm In vitro modeling Endoplasmic reticulum stress pathway Induced pluripotent stem cells (iPSCs)Micropatterns MCDK Lipid accumulation Lung-on-a-chip Monitoring method Lung epithelium Ocular regeneration Metanephric mesenchyme Glomerulus-on-a-chip Nephric duct Neuro-ectoderm Nephron progenitor cell Pluripotent stem cell differentiation Osteogenic differentiation Patient-specific stem cells PNPAL3 single nucleotide polymorphism Intestinal scaffolds ISCs salivary gland Simple limbal epithelial transplantation (SLET)Single-cell analysis SFEBq culture Stem cell screening Sox9Three-dimensional culture Sphere-based culture Liver organ-on-chip Human iPS cell Synthetic scaffold Tracheal scaffold Kidney disease models Subclass classification Ureteric bud Ventral Forebrain iPSC-derived hepatocyte culture Lung organoid Kidney glomerulus Kidney organoid Liver scaffolds Nonintegrating approach Orthotopic transplantation Myogenic progenitors Ocular surface ectoderm (OSE)Retinal cups Organ chip Tip Cell patient-derived stem cells Prenatal drug exposure Transcriptional profile Spatiotemporal specification Respiratory Epithelial Cells Retinal organoids Skeletal muscle Skeletal muscle disease Therapeutic discovery Trunk cell Vascularization strategies Vascular phenotype

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