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Biomedical subjects

Jijun Zhu

Publications and source records attributed to Jijun Zhu.

4 recordsLinked to original sources

Social disconnection integrates genetic and proteomic risks in suicidal ideation and depression.

Suicidal ideation (SI) and major depressive disorder (MDD) are complex psychiatric conditions arising from the interplay of genetic liability, molecular processes, and psychosocial factors. While these dimensions have been extensively studied in isolation, their joint contribution to SI and MDD remains unclear. This study integrates multi-modal data to elucidate these synergistic effects and develop robust models for individual-level risk stratification. Leveraging longitudinal multi-modal data from 13,085 UK Biobank participants, we integrated genomic, proteomic, and social connection profiles. We developed interpretable risk scores using a rigorous supervised machine learning framework encompassing diverse linear and ensemble classifiers. Permutation importance was employed to quantify feature contributions and derive transparent, weighted risk metrics across diverse classifiers. These scores were validated through association, interaction, and mediation analyses. Social connection-based risk scores significantly differentiated cases and controls across the two suicidal ideation phenotypes at 2017 and 2023 with cross-sectional analyses (AUCs: 0.70 - 0.73), outperforming proteomic-only models. Functional dimensions of social connection emerged as the most informative predictors. Longitudinal analyses revealed that social risk scores at baseline predicted suicidal ideation onset six years later, independent of demographic covariates. Interaction analyses demonstrated that polygenic risk for suicide attempt significantly interacted with both social and proteomic risk features in relation to depression. Structural equation models further confirmed that social disconnection acts as a key mediator linking genetic predisposition to MDD and SI. Social disconnection is a critical risk factor mediating the impact of genetic vulnerability on psychiatric outcomes. Integrating social, genetic, and molecular data supports a multilevel framework for risk stratification and highlights the potential of socially oriented interventions to mitigate biological risk.

Humans↗

Effect of sodium on vasoconstriction and angiotensin II type 1 receptor mRNA expression in cold-induced hypertensive rats.

Angiotensin II and sodium play an important pathogenetic role in several models of hypertension. Now, we investigated the effects of sodium on vasoconstriction and angiotensin II type 1 (AT1) and type 2 (AT2) receptor mRNA expression in aortic vessels from cold-induced hypertensive rats. Wistar rats on low sodium and high sodium diet were exposed to cold-stress for 8 weeks. The effects of angiotensin II infusion on mean arterial blood pressure were investigated in these rats. In addition, angiotensin II induced contraction was measured using aortic rings. Expression of AT1 receptor mRNA and AT2 receptor mRNA was assessed in aortic vessels by reverse transcription polymerase chain reaction. After infusion of angiotensin II mean arterial blood pressure in cold-induced hypertensive rats on high sodium diet was significantly higher compared to cold-induced hypertensive rats on low sodium diet (p < 0.05). Angiotensin II-induced contraction of aortic rings was significantly higher in cold-induced hypertensive rats on high sodium diet compared to cold-induced hypertensive rats on low sodium diet (2.39 +/- 0.03 g vs. 2.21 +/- 0.04 g, n = 12, p < 0.01). Angiotensin AT1 receptor mRNA was significantly higher in cold-induced hypertensive rats on high sodium diet compared to cold-induced hypertensive rats on low sodium diet (p < 0.05). It is concluded that in this nongenetic, nonsurgical animal model of cold-induced hypertension increased vasoconstriction and increased AT1 receptor mRNA expression in aortic vessels are dependent on sodium intake.

Animals↗

Label-free hybridization detection of a single nucleotide mismatch by immobilization of molecular beacons on an agarose film.

We developed a new technique to immobilize a set of molecular beacons on an agarose film-coated slide and found that it has the ability to identify a single nucleotide difference in label-free DNA targets. The annealing properties, specificity and hybridization dynamics of the present technique were compared with those of the conventional technique that directly immobilizes molecular beacons on a planar glass slide. It is demonstrated that the molecular beacon array on an agarose film has high quench efficiency, an excellent discrimination ratio for single nucleotide mismatches and a short detection time. We hypothesize that such a low fluorescence background and high specificity molecular beacon array will find practical applications in label-free, high-throughput mutation analysis and disease diagnosis.

Base Sequence↗

Endothelial dysfunction in cold-induced hypertensive rats.

Endothelial dysfunction can be observed in preatherosclerotic conditions. However, its pathogenetic role in hypertension is still controversial. Endothelial-dependent changes of blood pressure (BP) and expression of endothelial nitric oxide synthase (eNOS) were evaluated in cold-induced hypertensive rats. Wistar rats were exposed to cold stress for 8 weeks. Exposure to cold stress significantly increased the systolic BP in rats. The infusion of acetylcholine significantly lowered mean arterial BP in control rats by 48 +/- 2% and by 32 +/- 1% in cold-induced hypertensive rats. The acetylcholine-induced reduction of mean arterial BP was significantly attenuated in cold-induced hypertensive rats (control rats, 45 +/- 2 mm Hg; cold-induced hypertensive rats, 34 +/- 3 mm Hg; P < .05). Administration of N(G)-nitro-L-arginine-methyl ester for 1 week significantly increased BP in control rats, whereas no effect could be observed in cold-induced hypertensive rats. In cold-induced hypertensive rats eNOS in aortic vessels was significantly reduced compared to control rats. In this nongenetic, nonsurgical animal model of cold-induced hypertensive rats an endothelial dysfunction can be observed due to reduced eNOS.

Acetylcholine↗