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Deterministic identification of specific individuals from GWAS results

机译:从GWAS结果中确定性鉴定特定个体

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摘要

>Motivation: Genome-wide association studies (GWASs) are commonly applied on human genomic data to understand the causal gene combinations statistically connected to certain diseases. Patients involved in these GWASs could be re-identified when the studies release statistical information on a large number of single-nucleotide polymorphisms. Subsequent work, however, found that such privacy attacks are theoretically possible but unsuccessful and unconvincing in real settings.>Results: We derive the first practical privacy attack that can successfully identify specific individuals from limited published associations from the Wellcome Trust Case Control Consortium (WTCCC) dataset. For GWAS results computed over 25 randomly selected loci, our algorithm always pinpoints at least one patient from the WTCCC dataset. Moreover, the number of re-identified patients grows rapidly with the number of published genotypes. Finally, we discuss prevention methods to disable the attack, thus providing a solution for enhancing patient privacy.>Availability and implementation: Proofs of the theorems and additional experimental results are available in the support online documents. The attack algorithm codes are publicly available at . The genomic dataset used in the experiments is available at on request.>Contact: or >Supplementary information: are available from Bioinformatics online.
机译:>动机:全基因组关联研究(GWAS)通常应用于人类基因组数据,以了解与某些疾病在统计上相关的因果基因组合。当研究发布有关大量单核苷酸多态性的统计信息时,可以重新识别参与这些GWAS的患者。然而,随后的工作发现,这种隐私攻击在理论上是可能的,但在实际环境中是不成功的,也不令人信服。>结果:我们派生出第一例实用的隐私攻击,可以成功地从惠康公司有限的公开关联中识别出特定个人信任案例控制协会(WTCCC)数据集。对于在25个随机选择的基因座上计算出的GWAS结果,我们的算法始终会从WTCCC数据集中查明至少一名患者。此外,随着已公布的基因型数量的增加,重新识别的患者数量迅速增长。最后,我们讨论了阻止攻击的预防方法,从而提供了增强患者隐私的解决方案。>可用性和实现:支持在线文档中提供了定理的证明和其他实验结果。攻击算法代码可在处公开获得。实验中使用的基因组数据集可应要求提供。>联系:或>补充信息:可从在线生物信息学获得。

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