A multivariable cis-Mendelian randomization method robust to weak instrument bias and horizontal pleiotropy bias.

IF 6.8 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Yihe Yang, Noah Lorincz-Comi, Mengxuan Li, Xiaofeng Zhu
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引用次数: 0

Abstract

Multivariable cis-Mendelian randomization (cis-MVMR) has become an effective approach for identifying therapeutic targets that influence disease susceptibility. However, biases from invalid instruments, such as weak instruments and horizontal pleiotropy, remain unsolved. In this paper, we propose a new method called the cis-Mendelian randomization bias correction estimating equation (cis-MRBEE), which mitigates weak instrument bias by leveraging a local sparse genetic architecture: most variants within a genomic region are associated with a trait through linkage disequilibrium with a few causal variants. Cis-MRBEE identifies causal variants or proxies of exposures via fine-mapping, re-estimates genetic associations using the identified variants, and applies a double-penalized minimization to estimate causal exposures and account for horizontal pleiotropic effects. Simulations showed that in the presence of weak instruments and horizontal pleiotropy, directly adapting standard MVMR methods to cis-MVMR was infeasible, and existing cis-MVMR methods failed to control type I errors. In contrast, cis-MRBEE exhibited robustness to these sources of bias. We applied cis-MRBEE to the ANGPTL3 locus and identified a credible set comprising APOA1, APOC1, and PCSK9 as likely causal proteins for LDL-C, HDL-C, and TG. The subsequent analysis revealed a complex protein regulation network that influenced lipid traits. Furthermore, we used cis-MRBEE to discover that the expressions of CR1 in the basal ganglia, hippocampus, and oligodendrocytes were potentially causal for Alzheimer's disease and its biomarkers, A$\beta $42 and pTau, in cerebrospinal fluid.

一种多变量顺式孟德尔随机化方法,对弱仪器偏倚和水平多效性偏倚具有鲁棒性。
多变量顺式孟德尔随机化(cis-MVMR)已成为确定影响疾病易感性的治疗靶点的有效方法。然而,来自无效仪器的偏倚,如弱仪器和水平多效性,仍未得到解决。在本文中,我们提出了一种称为顺式孟德尔随机化偏差校正估计方程(顺式mrbee)的新方法,该方法通过利用局部稀疏遗传结构来减轻弱工具偏差:基因组区域内的大多数变异通过与少数因果变异的连锁不平衡与性状相关联。Cis-MRBEE通过精细定位识别暴露的因果变异或代理,使用已识别的变异重新估计遗传关联,并应用双重惩罚最小化来估计因果暴露并解释水平多效效应。仿真结果表明,在弱仪器和水平多效性存在的情况下,将标准MVMR方法直接应用于顺式MVMR是不可行的,现有的顺式MVMR方法无法控制I型误差。相比之下,顺式mrbee对这些偏倚来源表现出稳健性。我们将顺式mrbee应用于ANGPTL3位点,并确定了一组可靠的APOA1, APOC1和PCSK9可能是LDL-C, HDL-C和TG的致病蛋白。随后的分析揭示了影响脂质性状的复杂蛋白质调节网络。此外,我们使用顺式mrbee发现,CR1在基底节区、海马区和少突胶质细胞中的表达是阿尔茨海默病及其生物标志物A$\ β $42和脑脊液中pTau的潜在病因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Briefings in bioinformatics
Briefings in bioinformatics 生物-生化研究方法
CiteScore
13.20
自引率
13.70%
发文量
549
审稿时长
6 months
期刊介绍: Briefings in Bioinformatics is an international journal serving as a platform for researchers and educators in the life sciences. It also appeals to mathematicians, statisticians, and computer scientists applying their expertise to biological challenges. The journal focuses on reviews tailored for users of databases and analytical tools in contemporary genetics, molecular and systems biology. It stands out by offering practical assistance and guidance to non-specialists in computerized methodologies. Covering a wide range from introductory concepts to specific protocols and analyses, the papers address bacterial, plant, fungal, animal, and human data. The journal's detailed subject areas include genetic studies of phenotypes and genotypes, mapping, DNA sequencing, expression profiling, gene expression studies, microarrays, alignment methods, protein profiles and HMMs, lipids, metabolic and signaling pathways, structure determination and function prediction, phylogenetic studies, and education and training.
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