Sulfotransferase 4A1 (SULT4a1): A Novel Neuroprotective Protein in Stroke
Hossain, M. I.; Khan, J.; Lee, J. H.; Falany, C. N.; King, P. H.; Bolding, M.; Andrabi, S. A.
Show abstract
SULT4a1, a member of the cytosolic sulfotransferase family, is predominantly expressed in neurons and plays potentially vital roles in regulating neural survival and function. SULT4a1 protects against mitochondrial dysfunction and oxidative stress. SULT4a1 levels decrease in experimental stroke models and may play a critical neuroprotective role in mitigating neuronal injury caused by oxygen-glucose deprivation (OGD) and ischemic stroke, as shown in a transient middle cerebral artery occlusion (tMCAO) mouse model. In this study, we investigated the neuroprotective role of SULT4a1 in OGD and tMCAO and highlighted its expression pattern and involvement in maintaining mitochondrial function and reducing oxidative stress, two early pathophysiological features in stroke and related neuronal injury. Our data show that decreased SULT4a1 expression in OGD conditions and in the tMCAO mouse brain leads to enhanced neuronal damage, emphasizing the importance of SULT4a1 in preserving neuronal integrity. Loss of SULT4a1 alone was sufficient to decrease mitochondrial function in mouse cortical neurons. Notably, overexpression of SULT4a1 preserved mitochondrial function, reduced the loss of mitochondrial membrane potential, and diminished oxidative stress, as evidenced by lower reactive oxygen species (ROS) production and reduced protein carbonylation. These results indicate that modulating SULT4a1 expression in stroke could offer a promising strategy for preventing neuronal damage. Indeed, overexpression of SULT4a1 via stereotaxic injection of AAV9 into the mouse brain mitigated tMCAO-related brain injury and functional deficits over time. The findings of this study indicate that SULT4a1 may protect neurons in stroke and related brain injury, possibly by maintaining mitochondrial function and redox homeostasis through mechanisms that are still unknown. It is likely that SULT4a1 regulates neuroprotective processes in both the mitochondria and the cytosol. However, further research is needed to clarify the specific molecular pathways involved in its neuroprotective function.
Matching journals
The top 14 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- A post-injury immune challenge with lipopolysaccharide following adult traumatic brain injury alters neuroinflammation and the gut microbiome acutely, but has little effect on chronic outcomes 93%
- Cerebral vascular tortuosity and aneurysm formation and rupture: a novel vessel tortuosity scale 92%
- PTEN knockout using retrogradely transported AAVs restores locomotor abilities in both acute and chronic spinal cord injury. 92%
Similar papers in this journal
- Astrocyte-secreted chordin-like 1 regulates spine density after ischemic stroke 96%
- Novel Adult Cortical Neuron Processing and Screening method illustrates Sex- and Age-dependent effects of pharmaceutical compounds 94%
- Human chorionic gonadotropin decreases cerebral cystic encephalomalacia and parvalbumin interneuron degeneration in a pro-inflammatory model of mouse neonatal hypoxia-ischemia. 93%
Similar papers in this journal
- Metformin-mediated mitochondrial protection post-cardiac arrest improves EEG activity and confers neuroprotection and survival benefit 96%
- Elastin-like polypeptide delivery of anti-inflammatory peptides to the brain following ischemic stroke 96%
- Therapeutic administration of mouse mast cell protease 6 improves functional recovery after traumatic spinal cord injury in mice by promoting remyelination and reducing glial scar formation 94%
Similar papers in this journal
- A Role For Astrocytic Insulin-Like Growth Factor I Receptors In The Response To Ischemic Insult 96%
- Assessing post-stroke cognition in pre-clinical models: lessons and recommendations from a multi-center study 94%
- Refined movement analysis in the Staircase test reveals differential motor deficits in mouse models of stroke 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.