P3HT:Bebq2-Based Photovoltaic Device Enhances Differentiation of hiPSC-Derived Retinal Ganglion Cells.
Chih-Chien HsuYi-Ying LinTien-Chun YangAliaksandr A YarmishynTzu-Wei LinYuh-Lih ChangDe-Kuang HwangChien-Ying WangYung-Yang LiuWen-Liang LoChi-Hsien PengShih-Jen ChenYi-Ping YangPublished in: International journal of molecular sciences (2019)
Electric field stimulation is known to affect various cellular processes, including cell fate specification and differentiation, particularly towards neuronal lineages. This makes it a promising therapeutic strategy to stimulate regeneration of neuronal tissues. Retinal ganglion cells (RGCs) is a type of neural cells of the retina responsible for transduction of visual signals from the retina to the brain cortex, and is often degenerated in various blindness-causing retinal diseases. The organic photovoltaic materials such as poly-3-hexylthiophene (P3HT) can generate electric current upon illumination with light of the visible spectrum, and possesses several advantageous properties, including light weight, flexibility and high biocompatibility, which makes them a highly promising tool for electric stimulation of cells in vitro and in vivo. In this study, we tested the ability to generate photocurrent by several formulations of blend (bulk heterojunction) of P3HT (which is electron donor material) with several electron acceptor materials, including Alq3 and bis(10-hydroxybenzo[h]quinolinato)beryllium (Bebq2). We found that the photovoltaic device based on bulk heterojunction of P3HT with Bebq2 could generate photocurrent when illuminated by both green laser and visible spectrum light. We tested the growth and differentiation capacity of human induced pluripotent stem cells (hiPSC)-derived RGCs when grown in interface with such photostimulated device, and found that they were significantly increased. The application of P3HT:Bebq2-formulation of photovoltaic device has a great potential for developments in retinal transplantation, nerve repair and tissue engineering approaches of treatment of retinal degeneration.
Keyphrases
- induced apoptosis
- solar cells
- cell cycle arrest
- diabetic retinopathy
- induced pluripotent stem cells
- optical coherence tomography
- stem cells
- tissue engineering
- oxidative stress
- endothelial cells
- cell fate
- multiple sclerosis
- gene expression
- optic nerve
- functional connectivity
- signaling pathway
- white matter
- cell proliferation
- mesenchymal stem cells
- bone marrow
- blood brain barrier
- physical activity
- ionic liquid
- cell therapy
- replacement therapy