Sort:
Open Access Research Article Issue
A pretest on cuproptosis: Activating PPARγ inhibits cuproptosis following intracerebral hemorrhage
Brain Hemorrhages 2025, 6(4): 166-175
Published: 02 March 2025
Abstract PDF (8.3 MB) Collect
Downloads:0

Intracerebral hemorrhage (ICH) is a severe stroke subtype with high mortality and disability. Cuproptosis is a regulatory cell death modality dependent on intracellular copper ion concentration, the role of which in ICH is unclear. Upon activation by ligand agonists, peroxisome proliferator-activated receptor-γ (PPARγ), can alleviate brain injury after ICH. To investigate the inhibitory effect of activating PPARγ on cuproptosis following ICH, we established the ICH model in vivo and in vitro and they were treated with the PPARγ agonist or antagonist after models being established successfully. Then, the copper ion concentration was measured by copper colorimetric assay and the expression of cuproptosis-related regulatory factors and copper transporter 1 was detected by western blotting and immunofluorescence staining (except in the cell level). We found that the increase in copper ion concentration following ICH leads to the disruption of copper homeostasis, inducing cuproptosis via copper toxicity. Activating PPARγ regulates the expression of cuproptosis-associated positive or negative regulatory factors and mitigates copper toxicity by inhibiting the influx of copper ions into the cell, thereby inhibiting cuproptosis. This study not only reveals the relationship between ICH and cuproptosis but also may provide new therapeutic strategies for improving the prognosis of patients with ICH.

Open Access Research Article Issue
Intra-hematoma Rosiglitazone infusion therapy attenuates blood-brain barrier disruption after intracerebral hemorrhage in rabbits
Brain Hemorrhages 2023, 4(2): 47-52
Published: 09 January 2023
Abstract PDF (2.3 MB) Collect
Downloads:8
Objective

To observe the effect of intra-hematoma Rosiglitazone (RSG) infusion therapy in treating intracerebral hemorrhage (ICH). Specifically, to explore the effects of RSG on tight junction associated proteins Occludin and ZO-1 expression within perihematomal brain tissues as well as the blood–brain barrier (BBB) permeability after ICH in rabbits.

Methods

A total of 30 rabbits were randomly assigned to three groups including sham control group (NC group, n = 10), hemorrhage model group (HM group, n = 10), and hemorrhage model with RSG treatment group (RSG group, n = 10). ICH was induced in rabbits of HM group and RSG group, involving an injection of autologous non-anticoagulant artery blood (0.3 mL, similar to basal ganglia hematoma 30 mL in humans) into the left basal ganglia of the rabbits' brains. The NC group was injected with the same amount of saline into the same area. Six hours later after ICH induction or sham surgery, the RSG group received the intra-hematoma RSG (0.5 mg/0.1 mL) infusion, meanwhile the NC group and the HM group were injected with saline (0.1 mL) into the hematoma area. On day seven, the perihematomal brain tissues were obtained to determine the Occludin and ZO-1 expressions by Western Blot and RT-PCR, and the BBB permeability by the Evan' s Blue (EB) content.

Results

Occludin and ZO-1 expressions and mRNA levels were all significantly decreased in the HM group and RSG group compared with the NC group (P < 0.01). Occludin and ZO-1 expressions and mRNA levels were all significantly increased in the RSG group compared with the HM group (P < 0.01). The EB contents were all significantly increased in the HM group and RSG group compared with the NC group (P < 0.01). The EB content was significantly decreased in the RSG group compared with the HM group (P < 0.01).

Conclusion

Intra-hematoma RSG infusion therapy could increase the expressions of tight junction associated proteins Occludin and ZO-1 in the perihematomal brain tissues and decrease the BBB permeability in rabbits after ICH.

Total 2