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Stereotactic Injection of MicroRNA-expressing Lentiviruses to the Mouse Hippocampus CA1 Region and Assessment of the Behavioral Outcome
Published on: June 10, 2013
MicroRNA-153 impairs presynaptic plasticity by blocking vesicle release following chronic brain hypoperfusion
Mei-Ling Yan1, Shuai Zhang1, Hong-Mei Zhao1
1Department of Pharmacology (The State-Province Key Laboratories of Biomedicine-Pharmaceutics of China), College of Pharmacy of Harbin Medical University, Harbin, 150086, Heilongjiang Province, China.
Background:
Chronic brain hypoperfusion (CBH) is closely related to Alzheimer's disease (AD) and vascular dementia (VaD). Meanwhile, synaptic pathology plays a prominent role in the initial stage of AD and VaD. However, whether and how CBH impairs presynaptic plasticity is currently unclear.
Methods:
In the present study, we performed a battery of techniques, including primary neuronal culture, patch clamp, stereotaxic injection of the lentiviral vectors, morris water maze (MWM), dual luciferase reporter assay, FM1-43 fluorescence dye evaluation, qRT-PCR and western blot, to investigate the regulatory effect of miR-153 on hippocampal synaptic vesicle release both in vivo and in vitro. The CBH rat model was generated by bilateral common carotid artery ligation (2VO).
Results:
Compared to sham rats, 2VO rats presented decreased field excitatory postsynaptic potential (fEPSP) amplitude and increased paired-pulse ratios (PPRs) in the CA3-CA1 pathway, as well as significantly decreased expression of multiple vesicle fusion-related proteins, including SNAP-25, VAMP-2, syntaxin-1A and synaptotagmin-1, in the hippocampi. The levels of microRNA-153 (miR-153) were upregulated in the hippocampi of rats following 2VO surgery, and in the plasma of dementia patients. The expression of the vesicle fusion-related proteins affected by 2VO was inhibited by miR-153, elevated by miR-153 inhibition, and unchanged by binding-site mutation or miR masks. FM1-43 fluorescence images showed that miR-153 blunted vesicle exocytosis, but this effect was prevented by either 2'-O-methyl antisense oligoribonucleotides to miR-153 (AMO-153) and miR-masking of the miR-153 binding site in the 3' untranslated region (3'UTR) of the Snap25, Vamp2, Stx1a and Syt1 genes. Overexpression of miR-153 by lentiviral vector-mediated miR-153 mimics (lenti-pre-miR-153) decreased the fEPSP amplitude and elevated the PPR in the rat hippocampus, whereas overexpression of the antisense molecule (lenti-AMO-153) reversed these changes triggered by 2VO. Furthermore, lenti-AMO-153 attenuated the cognitive decline of 2VO rats.
Conclusions:
Overexpression of miR-153 controls CBH-induced presynaptic vesicle release impairment by posttranscriptionally regulating the expression of four vesicle release-related proteins by targeting the 3'UTRs of the Stx1a, Snap25, Vamp2 and Syt1 genes. These findings identify a novel mechanism of presynaptic plasticity impairment during CBH, which may be a new drug target for prevention or treatment of AD and VaD. Video Abstract.
Insights
MicroRNA-153 (miR-153) impairs synaptic vesicle release in chronic brain hypoperfusion (CBH) by regulating key proteins. Inhibiting miR-153 can prevent cognitive decline, offering a potential therapeutic target for Alzheimer's disease (AD) and vascular dementia (VaD).
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Chronic brain hypoperfusion (CBH) is linked to Alzheimer's disease (AD) and vascular dementia (VaD).
- Synaptic pathology is an early feature of AD and VaD, but the impact of CBH on presynaptic plasticity remains unclear.
Purpose of the Study:
- To investigate the role of microRNA-153 (miR-153) in regulating hippocampal synaptic vesicle release.
- To explore the effect of CBH on presynaptic plasticity and its underlying molecular mechanisms.
Main Methods:
- Established a chronic brain hypoperfusion (CBH) rat model using bilateral common carotid artery ligation (2VO).
- Employed techniques including primary neuronal culture, patch clamp, stereotaxic injections, Morris water maze, and molecular analyses (qRT-PCR, Western blot, dual luciferase reporter assay).
- Assessed synaptic vesicle release using FM1-43 fluorescence dye and evaluated cognitive function.
Main Results:
- CBH (2VO) rats exhibited impaired synaptic transmission (decreased fEPSP amplitude, increased PPR) and reduced expression of vesicle fusion proteins (SNAP-25, VAMP-2, syntaxin-1A, synaptotagmin-1).
- miR-153 levels were elevated in the hippocampi of 2VO rats and plasma of dementia patients.
- miR-153 inhibited vesicle fusion protein expression and blunted vesicle exocytosis; inhibition of miR-153 reversed these effects and attenuated cognitive decline in 2VO rats.
Conclusions:
- miR-153 posttranscriptionally regulates key vesicle release proteins (Stx1a, Snap25, Vamp2, Syt1) via their 3'UTRs, causing presynaptic vesicle release impairment in CBH.
- This study identifies a novel mechanism for presynaptic plasticity impairment in CBH.
- Targeting miR-153 presents a potential therapeutic strategy for preventing or treating AD and VaD.

