Magnetic Nanobubble Mechanical Stress Induces the Piezo1-Ca 2+ -BMP2/Smad Pathway to Modulate Neural Stem Cell Fate and MRI/Ultrasound Dual Imaging Surveillance for Ischemic Stroke.
Jing LiYao ZhangZhichao LouMingxi LiLin CuiZhenrong YangLijuan ZhangYu ZhangNing GuFang YangPublished in: Small (Weinheim an der Bergstrasse, Germany) (2022)
Neural stem cells (NSCs) are used to treat various nervous system diseases because of their self-renewal ability and multidirectional differentiation potential. However, an insufficient ability to track their migration in vivo and poor control over their survival and differentiation efficiency are two major critical challenges for clinical application. Here, it is shown that when magnetic nanobubbles (MNBs), which are assembled from magnetic nanoparticles, are internalized by NSCs, intramembrane volumetric oscillation of the MNBs induces an increase in intracellular hydrostatic pressure and cytoskeleton force, resulting in the activation of the Piezo1-Ca 2+ mechanosensory channel. This subsequently triggers the BMP2/Smad biochemical signaling pathway, leading to differentiation of NSCs into the neuronal phenotype. Signaling through the Piezo1-Ca 2+ -BMP2/Smad pathway can be further accelerated by application of an external shear stress force using low-intensity pulsed ultrasound. More importantly, magnetic resonance imaging and ultrasound imaging surveillance of NSCs based on MNB labeling can be leveraged to provide NSC therapeutic outcomes. Both the in vitro and in vivo findings demonstrate that a bubble nanostructure-induced physical force can modulate and control the mechanical signaling pathway regulating stem cell development.
Keyphrases
- magnetic resonance imaging
- epithelial mesenchymal transition
- signaling pathway
- transforming growth factor
- stem cells
- mesenchymal stem cells
- magnetic nanoparticles
- neural stem cells
- cell fate
- single molecule
- contrast enhanced
- public health
- pi k akt
- computed tomography
- molecularly imprinted
- bone regeneration
- high resolution
- physical activity
- diffusion weighted imaging
- protein kinase
- high frequency
- diabetic rats
- type diabetes
- atrial fibrillation
- bone marrow
- stress induced
- ultrasound guided
- mass spectrometry
- risk assessment
- oxidative stress
- cell proliferation
- skeletal muscle
- cell therapy
- climate change
- contrast enhanced ultrasound
- insulin resistance
- brain injury
- subarachnoid hemorrhage