Skip to content

Author

Xiaoping Cui

2 papers indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Open access Jul 2026

Imaging study of white matter microstructural damage and glymphatic system dysfunction in patients with primary insomnia: a combined analysis based on PSMD, DTI-ALPS, and EPVS

Background Primary insomnia is associated with cognitive impairment and subtle brain structural alterations; however, the relationship between white matter microstructural damage and glymphatic-related imaging changes remains unclear. This study investigated these alterations by jointly assessing peak width of skeletonized mean diffusivity (PSMD), diffusion tensor imaging analysis along the perivascular space (DTI-ALPS), and enlarged perivascular spaces (EPVS). Methods This retrospective cross-sectional study included 64 right-handed adults, comprising 32 patients with primary insomnia and 32 healthy controls. All participants underwent standardized assessments of sleep, mood, and cognition, as well as 3.0-T magnetic resonance imaging, including diffusion tensor imaging and T2-weighted imaging. PSMD and the DTI-ALPS index were calculated from diffusion data, and EPVS in the basal ganglia and centrum semiovale were visually rated. Between-group differences were evaluated using independent-samples t-tests or Mann-Whitney U tests with false discovery rate correction. Ordinal logistic regression was used to adjust the basal ganglia EPVS comparison for demographic and vascular risk factors. Partial correlations were adjusted for age, sex, and education, with additional analyses further adjusted for depressive and anxiety symptoms. Results Patients with primary insomnia had higher PSMD values than healthy controls (P=0.047). Basal ganglia EPVS scores were higher in the unadjusted comparison (P=0.040), but this association was attenuated after adjustment for age, education, sex, diabetes, hypertension, smoking, and alcohol consumption (odds ratio =0.329, 95% confidence interval: 0.099–1.091; P=0.069). No significant between-group differences were found in the DTI-ALPS index (P=0.267) or centrum semiovale EPVS scores (false discovery rate-adjusted P=0.211). In the full sample, higher PSMD was associated with lower DTI-ALPS values (r=−0.331, adjusted P=0.019), higher basal ganglia EPVS scores (r=0.456, adjusted P=0.001), and lower Montreal Cognitive Assessment (r=−0.329, adjusted P=0.019) and Mini-Mental State Examination scores (r=−0.440, adjusted P=0.001). These associations remained significant after additional adjustment for depressive and anxiety symptoms. Conclusions Primary insomnia was associated with greater white matter microstructural heterogeneity, whereas evidence of glymphatic dysfunction was partial and indirect. Higher PSMD was related to glymphatic-related imaging markers and poorer cognitive performance; however, the small sample and cross-sectional design warrant cautious interpretation.

Qi Pan, Sai-Jie Zhu, Yu-Ning Lin et al. · 0 citations
Open access Jul 2026

NRG1β-overexpressing mesenchymal stem cell-derived exosomes alleviate oxygen-glucose deprivation-mediated neuronal injury via the miR-296-3p/MAOA axis

Background Cerebral ischemic injury is a severe neurological disorder necessitating effective therapeutic strategies. Neuregulin-1β (NRG1β) and microRNAs are critical for neuroprotection, but the mechanisms by which NRG1β regulates microRNAs in neuronal injury are not fully understood. Methods We characterized mesenchymal stem cells (MSCs) through their phenotypic markers and multilineage differentiation potential, confirming NRG1β overexpression in engineered MSCs. Transmission electron microscopy and nanoparticle tracking analysis were used to isolate and characterize exosomes. In vitro studies evaluated the effects of MSC/NRG1β-exosomes on OGD-treated HT-22 neuronal cells. Results Mesenchymal stem cells/NRG1β-exosomes significantly enhanced HT-22 neuronal survival while reducing apoptosis and reactive oxygen species (ROS). The treatment reduced oxidative stress by lowering malondialdehyde (MDA) levels and boosting superoxide dismutase (SOD) activity. It also inhibited inflammatory cytokines such as IL-1β, TNF-α, and IL-6. Studies conducted in vivo with a middle cerebral artery occlusion model demonstrated that MSC/NRG1β-exosomes led to a reduction in infarct size, enhanced histopathological results 24 h after injury. Mechanistically, these exosomes were enriched with miR-296-3p, targeting monoamine oxidase A (MAOA) for downregulation. Inhibition of miR-296-3p or MAOA overexpression negated the protective effects of MSC/NRG1β-exosomes. Conclusion Our findings demonstrate that exosomes derived from NRG1β-overexpressing mesenchymal stem cells (MSCs) exert neuroprotective effects against ischemic injury by upregulating miR-296-3p. This microRNA targets MAOA, leading to a reduction in apoptosis, oxidative stress, and inflammation. These results highlight the therapeutic potential of MSC/NRG1β-exosomes and the miR-296-3p/MAOA signaling axis in the treatment of ischemic brain injury.

Kuihua Wang, Haizhen Xu, Xiaohui Ji et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.