研究目的
To examine the role of Sox11 in the initial response of retinal ganglion cells (RGCs) to axon damage and in optic nerve regeneration in mice.
研究成果
Sox11 is upregulated after optic nerve injury and plays a role in RGC survival and axon regeneration. Downregulation of Sox11 enhances RGC survival but inhibits axon regeneration, especially when combined with Pten knockdown. This suggests Sox11 has complex, context-dependent roles in neural repair.
研究不足
The study is limited to mouse models, and the partial knockout of Sox11 may not fully represent complete gene deletion. The AAV transduction efficiency was around 54%, which could affect results. The mechanisms behind Sox11's differential effects on survival and regeneration are not fully elucidated.
1:Experimental Design and Method Selection:
The study used bioinformatic analysis of gene expression databases (GeneNetwork) to identify Sox11 upregulation after optic nerve crush (ONC). In situ hybridization and AAV-mediated gene knockdown (Cre/LoxP system) were employed to study Sox11 expression and function. Optic nerve regeneration was induced by Pten knockdown.
2:Sample Selection and Data Sources:
Mice (C57BL/6, DBA/2J, BXD strains, Sox11f/f mice) were used. Retinal and optic nerve tissues were collected after ONC injury. Data from GeneNetwork databases (Normal HEI Retina and ONC HEI Retina) were analyzed.
3:List of Experimental Equipment and Materials:
Equipment includes microtome (American Optical series 1000), microscope (Olympus BX51, Nikon Eclipse Ti confocal microscope), forceps (Dumont cross-clamp #7, Roboz), AAV vectors (AAV2-CMV-Cre-GFP, AAV2-GFP, AAV2-shRNA-Pten-GFP), in situ hybridization kit (Affymetrix 2-plex Quantigene View RNA ISH Tissue Assay), antibodies (anti-GFP, anti-RBPMS), chemicals (paraformaldehyde, xylenes, ethanol, zymosan, CPT-cAMP, CTB).
4:Experimental Procedures and Operational Workflow:
Mice underwent ONC surgery. Intravitreal injections of AAV vectors were performed 2 weeks before ONC. In situ hybridization was done on retinal sections. Retinas and optic nerves were dissected, fixed, and processed for immunohistochemistry. Axon regeneration and RGC survival were quantified.
5:Data Analysis Methods:
Data were analyzed using Mann-Whitney U-test with SPSS Statistics package 24.0. RGC counts and axon measurements were performed on confocal images.
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Microscope
Olympus BX51
Olympus
Viewing sections after in situ hybridization.
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Cholera Toxin B
Alexa Fluor 647-conjugated CTB
Thermo Fisher
Anterograde labeling of regenerated axons.
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Microtome
American Optical series 1000
American Optical
Sectioning retinal tissues to a thickness of 5 μm for in situ hybridization.
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Confocal Microscope
Nikon Eclipse Ti
Nikon
Imaging retinal whole mounts and optic nerves for quantification of RGCs and axons.
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Forceps
Dumont cross-clamp #7
Roboz
Crushing the optic nerve during ONC surgery.
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AAV Vector
AAV2-CMV-Cre-GFP
Addgene
Knocking out Sox11 in RGCs via intravitreal injection.
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AAV Vector
AAV2-GFP
Control vector for intravitreal injection.
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AAV Vector
AAV2-shRNA-Pten-GFP
Knocking down Pten to induce optic nerve regeneration.
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In Situ Hybridization Kit
2-plex Quantigene View RNA ISH Tissue Assay
Affymetrix
Performing in situ hybridization to detect Sox11 and Chrna6 mRNA.
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Antibody
anti-GFP
Novus Biologicals
Labeling GFP-expressing cells in immunohistochemistry.
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Antibody
anti-RBPMS
Millipore
Labeling RGCs specifically in immunohistochemistry.
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Zymosan
Z4250
Sigma
Inducing inflammatory response to augment regeneration after ONC.
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CPT-cAMP
C3912
Sigma
cAMP analog used with zymosan to enhance regeneration.
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Statistical Software
SPSS Statistics package 24.0
IBM
Analyzing data differences using Mann-Whitney U-test.
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