Nongenetic Optical Modulation of Pluripotent Stem Cells Derived Cardiomyocytes Function in the Red Spectral Range.
Carlotta RonchiCamilla GalliGabriele TulliiCamilla MarzuoliMarta MazzolaMarco MalferrariSilvia CrastoStefania RapinoElisa Di PasqualeMaria Rosa AntognazzaPublished in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2023)
Optical stimulation in the red/near infrared range recently gained increasing interest, as a not-invasive tool to control cardiac cell activity and repair in disease conditions. Translation of this approach to therapy is hampered by scarce efficacy and selectivity. The use of smart biocompatible materials, capable to act as local, NIR-sensitive interfaces with cardiac cells, may represent a valuable solution, capable to overcome these limitations. In this work, a far red-responsive conjugated polymer, namely poly[2,1,3-benzothiadiazole-4,7-diyl[4,4-bis(2-ethylhexyl)-4H-cyclopenta[2,1-b:3,4-b']dithiophene-2,6-diyl]] (PCPDTBT) is proposed for the realization of photoactive interfaces with cardiomyocytes derived from pluripotent stem cells (hPSC-CMs). Optical excitation of the polymer turns into effective ionic and electrical modulation of hPSC-CMs, in particular by fastening Ca 2+ dynamics, inducing action potential shortening, accelerating the spontaneous beating frequency. The involvement in the phototransduction pathway of Sarco-Endoplasmic Reticulum Calcium ATPase (SERCA) and Na + /Ca 2+ exchanger (NCX) is proven by pharmacological assays and is correlated with physical/chemical processes occurring at the polymer surface upon photoexcitation. Very interestingly, an antiarrhythmogenic effect, unequivocally triggered by polymer photoexcitation, is also observed. Overall, red-light excitation of conjugated polymers may represent an unprecedented opportunity for fine control of hPSC-CMs functionality and can be considered as a perspective, noninvasive approach to treat arrhythmias.
Keyphrases
- endoplasmic reticulum
- pluripotent stem cells
- high resolution
- photodynamic therapy
- high speed
- ionic liquid
- left ventricular
- induced apoptosis
- cell therapy
- physical activity
- mental health
- single cell
- energy transfer
- stem cells
- magnetic resonance imaging
- high throughput
- mesenchymal stem cells
- optical coherence tomography
- cancer therapy
- magnetic resonance
- high glucose
- endothelial cells
- bone marrow
- climate change
- human health
- crystal structure