BackgroundPositive traits, such as life satisfaction, optimism, and core self-evaluation (CSE), have garnered increasing attention from researchers and professionals. However, the trilateral relationship among them remains unclear.ObjectiveThis study examines the effect of dispositional optimism on life satisfaction and primarily verified the mediator role of CSEs.MethodsSix hundred thirty college students from two general universities completed a questionnaire packet containing life orientation test–revised (LOT–R), core self-evaluations, and satisfaction with life scale. Confirmatory factor analysis (CFA) was conducted to assess the dimension of LOT–R. Bootstrap was used in structural equation modeling to analyze mediation effect.ResultsResults revealed that dispositional optimism and core self-evaluations were significantly correlated with life satisfaction. CFA identified the bidimensional structure of dispositional optimism. SEM indicated that core self-evaluations partially mediated the effect of dispositional optimism on life satisfaction. The final model also revealed significant paths from optimism and pessimism to life satisfaction through core-self evaluations.ConclusionThe findings extended prior studies and shed light on how dispositional optimism influences life satisfaction. This study provides valuable evidence on how to promote the life satisfaction of human beings in positive psychology. A further study can fully explore the relationship among them in multi-cultural follow-up studies.
To determine the effects of 80-mg atorvastatin administration for the first time in patients with acute ST segment elevation myocardial infarction (STEMI) before emergency percutaneous coronary intervention (PCI). A total of 118 patients with STEMI who underwent emergency PCI were enrolled in this study. The patients were divided into 80-mg group (n = 59) and 40-mg group (n = 59), according to the loading dose of atorvastatin firstly before operation. The occurrence of no-reflows and changes of HbA1c were observed preoperatively and postoperatively on second and fifth days. All patients were followed up for 1 year with major adverse cardiac events (MACE) recorded. The incidence of no-reflow in 80-mg group was obviously lower than in 40-mg group (13.56% vs. 25.42%) (χ = 4.374, P = 4.374). The preoperative HbA1c levels exhibited no significant difference between 80-mg group and 40-mg group (P > 0.05). The postoperative HbA1c levels in 2 groups showed a trend of gradual decline, which were lower in 80-mg group than in 40-mg group for second day, fifth day, first month, sixth month, and 12th month (all P < 0.05). The postoperative incidence of MACE in 80-mg group was significantly lower than in 40-mg group for sixth and 12th months (both P < 0.05). The incidence of MACE in patients with reflow in 80-mg and 40-mg groups was significantly higher than in patients with no-reflow who were in 80-mg and 40-mg groups for postoperative 12th month (both P < 0.05). The first loading high dose of atorvastatin can significantly prevent occurrence of postoperative no-reflow in patients with STEMI after PCI, reduce HbA1c levels and the incidence of MACE. Clinical randomized controlled trial with larger sample size is required to confirm this finding.
The aim of the present study was to evaluate the use of preoperative high-dose atorvastatin to prevent the no-reflow phenomenon after percutaneous coronary intervention (PCI). A total of 138 patients with ST-segment elevation myocardial infarction, admitted from March 2014 to January 2015, were enrolled and randomly divided into 3 groups of 46 individuals each. The groups included a control group in which patients were not treated with atorvastatin before PCI; a conventional-dose atorvastatin treatment group in which patients received a single dose of 20 mg at bedtime one day prior to PCI; and a high-dose atorvastatin treatment group in which patients were treated with 40 mg divided in two doses the day before PCI. The treatment effects were assessed by re-examining the echocardiography, high-sensitivity C-reactive protein and brain natriuretic peptide (BNP) levels after the PCI. The follow-up examinations included determinations of ultrasound imaging indicators and the contact with patients was maintained for a whole year. The CTFC (frame), pro-BNP, CK-MB peak and WMSI levels of the patients in the high-dose treatment group were significantly lower than those in the conventional dose or the control group. Trombolysis in myocardial infarction ≤2 and myocardial blush grade ≤1 levels were significantly lower than those in the conventional dose group (P=0.01) or those in the control group (P=0.01), although the echocardiographic indicators of the three groups were not significantly different (P<0.05). Nevertheless, it was found that there were significantly fewer adverse cardiovascular events in the high-dose group (P<0.05 in both cases). During the follow-up period, thromboembolism and restenosis were most infrequent in the high-dose atorvastatin group. Based on our findings the oral administration of high-dose atorvastatin before bedtime, one day before the procedure, can effectively prevent no-reflow cases, reduce adverse events and improve the long-term prognosis for acute coronary syndrome patients after PCI.
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