Neural Regeneration Research (Jan 2015)
MicroRNA-9 promotes the neuronal differentiation of rat bone marrow mesenchymal stem cells by activating autophagy
- Guang-yu Zhang,
- Jun Wang,
- Yan-jie Jia,
- Rui Han,
- Ping Li,
- Deng-na Zhu
Affiliations
- Guang-yu Zhang
- Jun Wang
- Yan-jie Jia
- Rui Han
- Ping Li
- Deng-na Zhu
- DOI
- https://doi.org/10.4103/1673-5374.143439
- Journal volume & issue
-
Vol. 10,
no. 2
pp. 314 – 320
Abstract
MicroRNA-9 (miR-9) has been shown to promote the differentiation of bone marrow mesenchymal stem cells into neuronal cells, but the precise mechanism is unclear. Our previous study confirmed that increased autophagic activity improved the efficiency of neuronal differentiation in bone marrow mesenchymal stem cells. Accumulating evidence reveals that miRNAs adjust the autophagic pathways. This study used miR-9-1 lentiviral vector and miR-9-1 inhibitor to modulate the expression level of miR-9. Autophagic activity and neuronal differentiation were measured by the number of light chain-3 (LC3)-positive dots, the ratio of LC3-II/LC3, and the expression levels of the neuronal markers enolase and microtubule-associated protein 2. Results showed that LC3-positive dots, the ratio of LC3-II/LC3, and expression of neuron specific enolase and microtubule-associated protein 2 increased in the miR-9 + group. The above results suggest that autophagic activity increased and bone marrow mesenchymal stem cells were prone to differentiate into neuronal cells when miR-9 was overexpressed, demonstrating that miR-9 can promote neuronal differentiation by increasing autophagic activity.
Keywords
- Alzheimer′s disease
- amyloid-β
- astrocytes
- Ca 2+
- calcilytic
- calcium-sensing receptor
- nitromemantine
- NPS 2143
- α7-nicotinic acetylcholine receptor
- nerve regeneration
- spinal cord injury
- surgical decompression
- tumor necrosis factor α
- cell apoptosis
- neurological function
- neural regeneration
- nerve regeneration
- spinal cord injury
- contusion
- Nogo-A
- axon growth
- immunohistochemistry
- fluorescent quantitative PCR
- neural regeneration
- nerve regeneration
- spinal cord injury
- Schwann cells
- cell transplantation
- edaravone
- motor function
- electrophysiological function
- neural regeneration
- nerve regeneration
- electroacupuncture
- intervertebral disc
- blood circulation
- inflammation
- neuroprotection
- motor function
- neurons
- NSFC grants
- neural regeneration
- nerve regeneration
- astrocytoma
- mice
- immunodeficiency (BALB/c) mice
- Notch
- nestin
- glial fibrillary acidic protein
- CD133
- spinal cord
- brain
- MRI
- neural regeneration
- nerve regeneration
- earthquake
- peripheral nerve injury
- LSUHSC score
- compartment syndrome
- surgery therapy
- physiotherapy
- nerve decompression
- neural regeneration
- nerve regeneration
- brachial plexus injury
- human amniotic epithelial cells
- forepaw function
- stress relaxation
- creep
- viscoelasticity
- neural regeneration
- nerve regeneration
- peripheral nerve injury
- injection injury
- cyclosporine A
- penicillin G potassium
- Wallerian degeneration
- neuroelectrophysiology
- neural regeneration
- nerve regeneration
- Oenanthe javanica extract
- cell proliferation
- neuroblast differentiation
- brain-derived neurotrophic factor
- vascular endothelial growth factor
- rat
- neural regeneration
- nerve regeneration
- middle cerebral artery occlusion
- brain injury
- neurons
- astrocytes
- oligodendrocytes
- neural progenitor cells
- proliferation
- differentiation
- neurogenesis
- neural regeneration
- nerve regeneration
- cerebral ischemia
- point application
- Angong Niuhuang sticker
- brain injury
- neurological functions
- acupuncture
- traditional Chinese medicine
- NSFC grants
- neural regeneration
- nerve regeneration
- acupuncture
- neuroimaging
- resting-state functional magnetic resonance imaging
- Taichong (LR3)
- Taixi (KI3)
- amplitude of low-frequency fluctuation
- Brodmann area 11
- Brodmann area 18
- Brodmann area 19
- Brodmann area 44
- posterior lobe of the cerebellum
- neural regeneration
- nerve regeneration
- functional magnetic resonance imaging
- resting state
- task state
- brain network
- module division
- feature binding
- Fisher′s Z transform
- connectivity
- visual stimuli
- NSFC grants
- neural regeneration
- nerve regeneration
- polysaccharide from Spirulina platensis
- Parkinson′s disease
- MPTP
- dopaminergic neurons
- antioxidation
- neural regeneration
- nerve regeneration
- microRNA-9
- bone marrow mesenchymal stem cells
- differentiation
- neuron-like cells
- autophagy
- neuron specific enolase
- microtubule-associated protein
- LC3
- neural regeneration