Chang Soo Ryu, Kee-Ook Lee, Eun Ju Ko, Hyeon Woo Park, Jae Hyun Lee, Ok Joon Kim, Nam Keun Kim
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Genotyping and statistical analysis revealed that <i>miR-21</i> rs13137 A > T and <i>miR-126</i> rs4636297 G > A were significantly associated with stroke susceptibility. The TT genotype of <i>miR-21</i> rs13137 demonstrated a protective effect (<i>p</i> = 0.019); the AA genotype of <i>miR-126</i> rs4636297 was associated with increased risk (<i>p</i> = 0.006), along with its dominant model (<i>p</i> = 0.007). Additionally, deep learning models were utilized to evaluate gene-gene and gene-environment interactions, enhancing predictive accuracy and identifying synergistic effects between miRNA polymorphisms and clinical risk factors. 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引用次数: 0
摘要
缺血性中风是一种多因素脑血管疾病,在世界范围内仍然是长期残疾和死亡的主要原因。尽管在急性治疗方面取得了进展,复发率仍然很高,近一半的幸存者经历了持续的神经功能障碍。因此,识别有助于早期诊断、风险预测和治疗改善的遗传生物标志物变得越来越重要。MicroRNAs是一种参与基因调控的非编码小rna,在血管发育和血管生成中发挥着重要作用。本研究采用基于人群的病例对照设计,调查血管生成相关miRNA基因多态性与缺血性卒中风险之间的关系。基因分型和统计分析显示miR-21 rs13137 A > T和miR-126 rs4636297 G > A与脑卒中易感性显著相关。TT基因型miR-21 rs13137表现出保护作用(p = 0.019);miR-126 rs4636297的AA基因型与风险增加相关(p = 0.006),与其主导模型相关(p = 0.007)。此外,深度学习模型用于评估基因-基因和基因-环境相互作用,提高预测准确性,并确定miRNA多态性与临床危险因素之间的协同效应。总之,特定的miRNA变异可以作为缺血性卒中的新生物标志物,为遗传易感性提供有价值的见解,并支持精准医学策略的发展。
Prognostic Associations and Functional Implications of Angiogenesis-Related miRNA Variants in Ischemic Stroke.
Ischemic stroke is a multifactorial cerebrovascular disease that remains a leading cause of long-term disability and mortality worldwide. Despite advances in acute treatment, recurrence rates remain high, and nearly half of survivors experience persistent neurological deficits. Therefore, identifying genetic biomarkers that contribute to early diagnosis, risk prediction, and therapeutic improvement is increasingly important. MicroRNAs, small non-coding RNAs involved in gene regulation, have been recognized for their critical roles in vascular development and angiogenesis. This study investigated the association between angiogenesis-related miRNA gene polymorphisms and ischemic stroke risk using a population-based case-control design. Genotyping and statistical analysis revealed that miR-21 rs13137 A > T and miR-126 rs4636297 G > A were significantly associated with stroke susceptibility. The TT genotype of miR-21 rs13137 demonstrated a protective effect (p = 0.019); the AA genotype of miR-126 rs4636297 was associated with increased risk (p = 0.006), along with its dominant model (p = 0.007). Additionally, deep learning models were utilized to evaluate gene-gene and gene-environment interactions, enhancing predictive accuracy and identifying synergistic effects between miRNA polymorphisms and clinical risk factors. In summary, specific miRNA variants may serve as novel biomarkers for ischemic stroke, providing valuable insight into genetic susceptibility and supporting the advancement of precision medicine strategies.
CellsBiochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
9.90
自引率
5.00%
发文量
3472
审稿时长
16 days
期刊介绍:
Cells (ISSN 2073-4409) is an international, peer-reviewed open access journal which provides an advanced forum for studies related to cell biology, molecular biology and biophysics. It publishes reviews, research articles, communications and technical notes. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. Full experimental and/or methodical details must be provided.