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Jie-Sheng Zheng

Publications and source records attributed to Jie-Sheng Zheng.

4 recordsLinked to original sources

Delayed gene therapy of glial cell line-derived neurotrophic factor is efficacious in a rat model of Parkinson's disease.

Gene transfer of glial cell line-derived neurotrophic factor (GDNF) in rodent models of Parkinson's disease (PD) has been shown to protect against neurodegeneration either prior to or immediately after neurotoxin-induced lesions; however, the nigrostriatal pathway was largely intact when gene delivery was completed in these models, which may not accurately reflect the clinical situation encountered with Parkinson's patients. In this study, replication-incompetent adenoviral vectors encoding the rat GDNF gene were administered into the striatum 4 weeks following 6-hydroxydopamine (6-OHDA) injection in the unilateral striatum, more closely resembling fully developed PD. Apomorphine-induced rotational behavior testing was performed every week following 6-OHDA injection. At the 10th week after gene transfer, the striatal dopamine concentrations were measured by HPLC with an electrochemical detector and the number of tyrosine hydroxylase (TH)-positive dopamine neurons in the substantia nigra (SN) was determined by immunohistochemistry. Injection of 6-OHDA into the striatum produced stable increases in rotation, which reached a plateau between 4 and 5 weeks post-injection. The number of TH-positive neuron in the SN and dopamine levels in the striatum was significantly lower in the 6-OHDA group compared to the normal group. Gene transfer of GDNF, but not beta-galactosidase, significantly increased the number of TH-positive neurons and dopamine levels, with a subsequent behavioral recovery between 5 and 10 weeks following GDNF transduction. These findings demonstrate that adenovirus-mediated gene transfer of GDNF is efficacious even in the late stages of 6-OHDA-induced PD rats. They also provide further evidence on the effectiveness of GDNF-based gene therapy for experimental Parkinson's disease.

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Inhibition of NADPH oxidase attenuates vasospasm after experimental subarachnoid hemorrhage in rats.

BACKGROUND AND PURPOSE: The purpose of this study is to investigate whether apocynin, an NADPH oxidase inhibitor, attenuates vasospasm after experimental subarachnoid hemorrhage (SAH) in rats. METHODS: Rats were subjected to endovascular perforation of the right anterior cerebral artery or sham surgery. Beginning 2 hours after SAH, rats were administered 50 mg/kg apocynin or vehicle by intraperitoneal injection 3 times daily for 2 days. RESULTS: In SAH rats, apocynin treatment enlarged basilar artery diameter (SAH/apocynin=253+/-71 microm, SAH/saline=191+/-60 microm, P<0.01; SAH=190+/-58 microm, sham=276+/-52 microm, P<0.01), reduced neurological deficits (SAH/apocynin=24+/-6.5, SAH/saline=18+/-5.3, P<0.05; SAH=18+/-4.7, sham=27+/-0, P<0.01), decreased NADPH oxidase activity (SAH/apocynin=18.4+/-3.7, SAH/saline=25.7+/-5.2, P<0.05; SAH=27.5+/-5.8, sham=15.4+/-4.5 nmol/min per mg protein, P<0.05), decreased superoxide level (SAH/apocynin=6.5+/-1.8, SAH/saline=9.6+/-2.2, P<0.05; SAH=9.8+/-1.9, sham=4.9+/-0.9 arbitrary units, P<0.05), and lowered membrane translocation of NADPH oxidase subunit p47phox. CONCLUSIONS: Inhibition of NADPH oxidase attenuates delayed cerebral vasospasm after experimental SAH, suggesting that the inhibition of NADPH oxidase may provide a therapeutic strategy for vasospasm after SAH.

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Gene transfer of human guanosine 5'-triphosphate cyclohydrolase I restores vascular tetrahydrobiopterin level and endothelial function in low renin hypertension.

BACKGROUND: We recently reported that arterial superoxide (O2-) is augmented by increased endothelin-1 (ET-1) in deoxycorticosterone acetate (DOCA)-salt hypertension, a model of low renin hypertension. Tetrahydrobiopterin (BH4), a potent reducing molecule with antioxidant properties and an essential cofactor for endothelial nitric oxide synthase, protects against O2--induced vascular dysfunction. However, the interaction between O2- and BH4 on endothelial function and the underlying mechanisms are unknown. METHODS AND RESULTS: The present study tested the hypothesis that BH4 deficiency due to ET-1-induced O2- leads to impaired endothelium-dependent relaxation and that gene transfer of human guanosine 5'-triphosphate (GTP) cyclohydrolase I (GTPCH I), the first and rate-limiting enzyme for BH4 biosynthesis, reverses such deficiency and endothelial dysfunction in carotid arteries of DOCA-salt rats. There were significantly increased arterial O2- levels and decreased GTPCH I activity and BH4 levels in DOCA-salt compared with sham rats. Treatment of arteries of DOCA-salt rats with the selective ETA receptor antagonist ABT-627, NADPH oxidase inhibitor apocynin, or superoxide dismutase (SOD) mimetic tempol abolished O2- and restored BH4 levels. Basal arterial NO release and endothelium-dependent relaxations were impaired in DOCA-salt rats, conditions that were improved by apocynin or tempol treatment. Gene transfer of GTPCH I restored arterial GTPCH I activity and BH4 levels, resulting in reduced O2- and improved endothelium-dependent relaxation and basal NO release in DOCA-salt rats. CONCLUSIONS: These results indicate that a BH4 deficiency resulting from ET-1-induced O2- via an ETA/NADPH oxidase pathway leads to endothelial dysfunction, and gene transfer of GTPCH I reverses the BH4 deficiency and endothelial dysfunction by reducing O2- in low renin mineralocorticoid hypertension.

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