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Neuron-specific SUMO knockdown suppresses global gene expression response and worsens functional outcome after transient forebrain ischemia in mice.

dc.contributor.author Zhang, Lin
dc.contributor.author Liu, Xiaozhi
dc.contributor.author Sheng, Huaxin
dc.contributor.author Liu, Shuai
dc.contributor.author Li, Ying
dc.contributor.author Zhao, Julia Q
dc.contributor.author Warner, David S
dc.contributor.author Paschen, Wulf
dc.contributor.author Yang, Wei
dc.date.accessioned 2021-06-01T13:53:05Z
dc.date.available 2021-06-01T13:53:05Z
dc.date.issued 2017-02
dc.identifier S0306-4522(16)30657-1
dc.identifier.issn 0306-4522
dc.identifier.issn 1873-7544
dc.identifier.uri https://hdl.handle.net/10161/23256
dc.description.abstract Small ubiquitin-like modifier (SUMO) conjugation (SUMOylation) plays key roles in neurologic function in health and disease. Neuronal SUMOylation is essential for emotionality and cognition, and this pathway is dramatically activated in post-ischemic neurons, a neuroprotective response to ischemia. It is also known from cell culture studies that SUMOylation modulates gene expression. However, it remains unknown how SUMOylation regulates neuronal gene expression in vivo, in the physiologic state and after ischemia, and modulates post-ischemic recovery of neurologic function. To address these important questions, we used a SUMO1-3 knockdown (SUMO-KD) mouse in which a Thy-1 promoter drives expression of 3 distinct microRNAs against SUMO1-3 to silence SUMO expression specifically in neurons. Wild-type and SUMO-KD mice were subjected to transient forebrain ischemia. Microarray analysis was performed in hippocampal CA1 samples, and neurologic function was evaluated. SUMOylation had opposite effects on neuronal gene expression before and after ischemia. In the physiological state, most genes regulated by SUMOylation were up-regulated in SUMO-KD compared to wild-type mice. Brain ischemia/reperfusion significantly modulated the expression levels of more than 400 genes in wild-type mice, with a majority of those genes upregulated. The extent of this post-ischemic transcriptome change was suppressed in SUMO-KD mice. Moreover, SUMO-KD mice exhibited significantly worse functional outcome. This suggests that suppression of global gene expression response in post-ischemic brain due to SUMO knockdown has a negative effect on post-ischemic neurologic function. Together, our data provide a basis for future studies to mechanistically link SUMOylation to neurologic function in health and disease.
dc.language eng
dc.publisher Elsevier BV
dc.relation.ispartof Neuroscience
dc.relation.isversionof 10.1016/j.neuroscience.2016.11.036
dc.subject Prosencephalon
dc.subject Neurons
dc.subject Animals
dc.subject Mice, Inbred C57BL
dc.subject Mice, Knockout
dc.subject Brain Ischemia
dc.subject Disease Models, Animal
dc.subject Small Ubiquitin-Related Modifier Proteins
dc.subject Microscopy, Confocal
dc.subject Fluorescent Antibody Technique
dc.subject Blotting, Western
dc.subject Microarray Analysis
dc.subject Severity of Illness Index
dc.subject Motor Activity
dc.subject Recovery of Function
dc.subject Gene Expression Regulation
dc.subject Real-Time Polymerase Chain Reaction
dc.title Neuron-specific SUMO knockdown suppresses global gene expression response and worsens functional outcome after transient forebrain ischemia in mice.
dc.type Journal article
duke.contributor.id Sheng, Huaxin|0102406
duke.contributor.id Warner, David S|0116342
duke.contributor.id Paschen, Wulf|0334854
duke.contributor.id Yang, Wei|0382531
dc.date.updated 2021-06-01T13:53:05Z
pubs.begin-page 190
pubs.end-page 212
pubs.organisational-group Faculty
pubs.organisational-group Duke
pubs.organisational-group School of Medicine
pubs.organisational-group Anesthesiology
pubs.organisational-group Clinical Science Departments
pubs.organisational-group Neurobiology
pubs.organisational-group Duke Institute for Brain Sciences
pubs.organisational-group Surgery
pubs.organisational-group Anesthesiology, Neuroanesthesia
pubs.organisational-group Basic Science Departments
pubs.organisational-group University Institutes and Centers
pubs.organisational-group Institutes and Provost's Academic Units
pubs.publication-status Published
pubs.volume 343
duke.contributor.orcid Sheng, Huaxin|0000-0002-4325-2940
duke.contributor.orcid Yang, Wei|0000-0001-5719-4393


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