scholarly journals Differentiation of Human Atrial Myocytes From Endothelial Progenitor Cell-Derived Induced Pluripotent Stem Cells

2013 ◽  
Vol 29 (10) ◽  
pp. S128
Author(s):  
MM Jambi ◽  
B Ye ◽  
MH Gollob ◽  
DR Davis
2016 ◽  
Vol 7 (1) ◽  
pp. 110-125 ◽  
Author(s):  
Nathan Salomonis ◽  
Phillip J. Dexheimer ◽  
Larsson Omberg ◽  
Robin Schroll ◽  
Stacy Bush ◽  
...  

Circulation ◽  
2014 ◽  
Vol 130 (suppl_2) ◽  
Author(s):  
Yongyu Wang ◽  
Jiang Hu ◽  
Jiao jiao ◽  
Zhou Zhou ◽  
Eugene Y Chen ◽  
...  

Tissue-engineered blood vessels (TEBVs) hold great promise for replacement of damaged or defective vascular tissues in vascular disease therapies, such as coronary and peripheral bypass graft surgeries. However, it remains a great challenge to obtain sufficient numbers of functional smooth muscle cells (SMCs) in the practice of constructing patient-specific TEBVs. This study aimed to develop an efficient method to generate a large number of functional SMCs in a short term for constructing tissue-engineered vascular tissues. Human induced pluripotent stem cells (iPSCs) were established by integration-free episomal vector-based reprogramming of donor peripheral blood mononuclear cells (PBMCs). These established iPSCs expressed pluripotency markers and were demonstrated to be able to differentiate into all three germ layer cells. Cardiovascular progenitor cell (CVPC) intermediates were then promptly and efficiently induced and expanded in chemically defined medium. Vascular smooth muscle cells (SMCs) were further induced under differentiation condition, which expressed typical SMCs markers including smooth muscle α-actin (α-SMA), calponin and SM22α validated by quantitative real-time PCR and immunocytochemistry stain. Importantly, the derived SMCs showed functional properties, validated by contraction responsiveness to carbachol treatment, up-regulation of specific collagens gene expression under transforming growth factor β1 treatment and up-regulation of specific matrix metalloproteinases gene expression under cytokine stimuli. Future studies will be focused on using these functional SMCs to construct functional TEBVs on biomimetic scaffolds. Taken together, our study established a facile procedure to generate large amount of functional and safe SMCs for vascular regeneration, via establishment of donor-specific integration-free human iPSCs and directed differentiation through CVPC intermediates.


2012 ◽  
Vol 26 (S1) ◽  
Author(s):  
Katja Schenke-Layland ◽  
Ali Nsair ◽  
Ben Van Handel ◽  
Hanna K Mikkola ◽  
Josh Goldhaber ◽  
...  

2017 ◽  
Author(s):  
TCW Julia ◽  
Minghui Wang ◽  
Anna A. Pimenova ◽  
Kathryn R. Bowles ◽  
Brigham J. Hartley ◽  
...  

SUMMARYGrowing evidence implicates the importance of glia, particularly astrocytes, in neurological and psychiatric diseases. Here, we describe a rapid and robust method for the differentiation of highly pure populations of replicative astrocytes from human induced pluripotent stem cells (hiPSCs), via a neural progenitor cell (NPC) intermediate. Using this method, we generated hiPSC-derived astrocyte populations (hiPSC-astrocytes) from 42 NPC lines (derived from 30 individuals) with an average of ∼90% S100β-positive cells. Transcriptomic analysis demonstrated that the hiPSC-astrocytes are highly similar to primary human fetal astrocytes and characteristic of a non-reactive state. hiPSC-astrocytes respond to inflammatory stimulants, display phagocytic capacity and enhance microglial phagocytosis. hiPSC-astrocytes also possess spontaneous calcium transient activity. Our novel protocol is a reproducible, straightforward (single media) and rapid (<30 days) method to generate homogenous populations of hiPSC-astrocytes that can be used for neuron-astrocyte and microglia-astrocyte co-cultures for the study of neuropsychiatric disorders.ABBREVIATIONShiPSChuman induced pluripotent stem cellNPCneural progenitor cell


SpringerPlus ◽  
2014 ◽  
Vol 3 (1) ◽  
pp. 527 ◽  
Author(s):  
Eiichi Ninomiya ◽  
Taeka Hattori ◽  
Masashi Toyoda ◽  
Akihiro Umezawa ◽  
Takashi Hamazaki ◽  
...  

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