Yang Zhang, Miaowen Jiang, Di Wu, Ming Li, Xunming Ji
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引用次数: 0
摘要
目前尚不清楚类固醇激素如何导致中风,进行随机对照试验以获得相关证据是具有挑战性的。因此,本研究采用孟德尔随机化(MR)技术来检验这种关联。通过全基因组关联荟萃分析,获得类固醇激素的遗传变异,包括睾酮/17β-雌二醇(T/E2)比、醛固酮、雄烯二酮、孕酮和羟孕酮,作为工具变量。分析了这些类固醇激素对中风亚型风险的影响。根据主要MR分析技术逆方差加权法,T/E2比值与小血管卒中(SVS)风险升高相关(OR, 1.23, 95% CI: 1.05-1.44, p = 0.009)。这些发现是可靠的,因为没有发现异质性和水平多效性。在重复研究中也证实了T/E2与SVS之间的因果关系(p = 0.009)。然而,没有证据表明其他类固醇激素会增加中风的风险。根据本研究,T/E2比值与SVS存在因果关系。然而,其他类固醇激素对脑卒中亚型的影响仍缺乏强有力的证据。这些发现可能有助于从类固醇激素水平制定中风预防策略。
The causal relationship between steroid hormones and risk of stroke: evidence from a two-sample Mendelian randomization study.
It is unclear how steroid hormones contribute to stroke, and conducting randomized controlled trials to obtain related evidence is challenging. Therefore, Mendelian randomization (MR) technique was employed in this study to examine this association. Through genome-wide association meta-analysis, the genetic variants of steroid hormones, including testosterone/17β-estradiol (T/E2) ratio, aldosterone, androstenedione, progesterone, and hydroxyprogesterone, were acquired as instrumental variables. Analysis was done on the impact of these steroid hormones on the risk of stroke subtypes. The T/E2 ratio was associated to an elevated risk of small vessel stroke (SVS) according to the inverse variance weighted approach which was the main MR analytic technique (OR, 1.23, 95% CI: 1.05-1.44, p = 0.009). These findings were solid since no heterogeneity nor horizontal pleiotropy were found. The causal association between T/E2 and SVS was also confirmed in the replication study (p = 0.009). Nevertheless, there was no proof that other steroid hormones increased the risk of stroke. According to this study, T/E2 ratio and SVS are causally related. However, strong evidence for the impact of other steroid hormones on stroke subtypes is still lacking. These findings may be beneficial for developing stroke prevention strategies from steroid hormones levels.
期刊介绍:
Molecular Brain is an open access, peer-reviewed journal that considers manuscripts on all aspects of studies on the nervous system at the molecular, cellular, and systems level providing a forum for scientists to communicate their findings.
Molecular brain research is a rapidly expanding research field in which integrative approaches at the genetic, molecular, cellular and synaptic levels yield key information about the physiological and pathological brain. These studies involve the use of a wide range of modern techniques in molecular biology, genomics, proteomics, imaging and electrophysiology.