Electromagnetized-Nanoparticle-Modulated Neural Plasticity and Recovery of Degenerative Dopaminergic Neurons in the Mid-Brain.
Di ZhaoPei-Jian FengJia-Hao LiuMei DongXiao-Quan ShenYing-Xin ChenQun-Dong ShenPublished in: Advanced materials (Deerfield Beach, Fla.) (2020)
The degeneration of dopaminergic neurons is a major contributor to the pathogenesis of mid-brain disorders. Clinically, cell therapeutic solutions, by increasing the neurotransmitter dopamine levels in the patients, are hindered by low efficiency and/or side effects. Here, a strategy using electromagnetized nanoparticles to modulate neural plasticity and recover degenerative dopamine neurons in vivo is reported. Remarkably, electromagnetic fields generated by the nanoparticles under ultrasound stimulation modulate intracellular calcium signaling to influence synaptic plasticity and control neural behavior. Dopaminergic neuronal functions are reversed by upregulating the expression tyrosine hydroxylase, thus resulting in ameliorating the neural behavioral disorders in zebrafish. This wireless tool can serve as a viable and safe strategy for the regenerative therapy of the neurodegenerative disorders.
Keyphrases
- spinal cord
- end stage renal disease
- cell therapy
- stem cells
- resting state
- newly diagnosed
- chronic kidney disease
- white matter
- poor prognosis
- magnetic resonance imaging
- ejection fraction
- mesenchymal stem cells
- single cell
- cerebral ischemia
- peritoneal dialysis
- computed tomography
- high frequency
- prognostic factors
- functional connectivity
- metabolic syndrome
- blood brain barrier