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Clinical study of a new nutritional index for predicting long-term prognosis in patients with coronary atherosclerotic heart disease following percutaneous coronary intervention
Xinqiu Chu, Yuewen Yuan, Jiya Chen, Yanwei Yu, Yang Li
2024, 4(3): 152-159. doi: 10.1515/fzm-2024-0016
Keywords: coronary heart disease, percutaneous coronary intervention, malnutrition, inflammation, cardiovascular prognosis
  Background and Objective   Some patients continue to experience major adverse cardiovascular and cerebrovascular events (MACCE) after percutaneous coronary intervention (PCI) in frigid places. Indexes of inflammation and nutrition alone were shown to predict outcomes in patients with PCI. However, the clinical predictive value of mixed indicators is unclear. This study aimed to assess the predictive value of the albumin/neutrophil/lymphocyte ratio (NLR) on the long-term prognosis of patients with coronary heart disease (CHD) following percutaneous coronary intervention (PCI).   Methods   A total of 608 post-PCI CHD patients were categorized into low- and high-index groups based on the optimal cut-off values for albumin and NLR. The primary outcome was a composite endpoint comprising all-cause mortality and major adverse cerebrovascular events. The secondary outcome was the comparison of the predictive efficiency of the new nutritional index, albumin/NLR, with that of albumin or NLR alone.   Results   Over the five-year follow-up period, 45 patients experienced the composite endpoint. The incidence of endpoint events was significantly higher in the low-index group (12%) compared to the high-index group (4.9%). Receiver operating characteristic (ROC) curve analysis revealed that the albumin/NLR index had a larger area under the curve (AUC: 0.655) than albumin (AUC: 0.621) or NLR (AUC: 0.646), indicating superior predictive efficiency. The prognostic nutritional index had an AUC of 0.644, further supporting the enhanced predictive value of the albumin/NLR index over individual nutritional and inflammatory markers.   Conclusion   The albumin/neutrophil/lymphocyte ratio is independently associated with the long-term prognosis of CHD patients post-PCI and demonstrates superior predictive efficiency compared to individual nutritional and inflammatory markers.
Cold exposure induces transcriptomic and metabolic reprogramming in the heart: An integrated multiomics study
Jiaming Ju, Zhengchao Wen, Jiayun Li, Dandan Zhang, Kejiao Zhang, Haozhan Wang, Roman E. Tokmachev, Yang Li, Yanan Jiang
2026, 6(2): 97-108. doi: 10.1515/fzm-2026-0010
Keywords: cold exposure, RNA sequencing, cardiometabolic
  Objective  Exposure to extreme cold temperatures may increase the risk of cardiovascular diseases. This study aimed to investigate the effects of cold exposure on the heart and its underlying mechanisms using an integrated transcriptomic and metabolomic approach.  Methods  C57BL/6 mice were subjected to cold exposure at 4 ℃ for 12 hours per day for 4 weeks. Transcriptomics and metabolomics profiles of the heart were analyzed. Differentially expressed genes (DEGs) and differentially expressed metabolites (DEMs) were identified, and mRNA expression levels were validated by qRT-PCR. Enrichment analyses were performed to identify significantly affected pathways. Transcriptomic and metabolomic data were then integrated to provide a comprehensive view of molecular alterations induced by cold exposure. To further evaluate the relationship between cold exposure and cardiovascular diseases, a myocardial infarction (MI) mouse model was established, and overlapping genes between cold exposure and MI were analyzed.  Results  Cold exposure significantly altered both the transcriptomic and metabolomic profiles of mouse hearts. Pathway enrichment analyses based on DEGs and DEMs identified several signaling pathways affected by cold stress. Integrated transcriptomic and metabolomic analyses further highlighted potential metabolic and signaling pathways associated with cold exposure. By cross-referencing DEGs associated with cold exposure with those from the MI model in the GEO database (GSE223208), 34 overlapping genes were identified. Integrated analyses implicated key genes (Tnfrsf12a and Nppb) in cold-aggravated cardiac remodeling, which were further validated in MI models.  Conclusion  Cold exposure reprograms the cardiac transcriptome and metabolome in mice. Cold exposure and MI share a subset of DEGs, which may help illuminate the pathophysiological interplay between cold stress and MI, highlighting potential therapeutic targets for cold-exacerbated cardiovascular diseases.