Skewed X chromosome inactivation (XCI-S) has been reported to be associated with some X-linked diseases, and currently several methods have been proposed to estimate the degree of the XCI-S (denoted as γ) for a single locus. However, no method has been available to estimate γ for genes. Therefore, in this paper, we first propose the point estimate and the penalized point estimate of γ for genes, and then derive its confidence intervals based on the Fiellerâs and penalized Fiellerâs methods, respectively. Further, we consider the constraint condition of γâ[0, 2] and propose the Bayesian methods to obtain the point estimates and the credible intervals of γ, where a truncated normal prior and a uniform prior are respectively used (denoted as GBN and GBU). The simulation results show that the Bayesian methods can avoid the extreme point estimates (0 or 2), the empty sets, the noninformative intervals ([0, 2]) and the discontinuous intervals to occur. GBN performs best in both the point estimation and the interval estimation. Finally, we apply the proposed methods to the Minnesota Center for Twin and Family Research data for their practical use. In summary, in practical applications, we recommend using GBN to estimate γ of genes.
Gene-Based Methods for Estimating the Degree of the Skewness of X Chromosome Inactivation.
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作者:Li Meng-Kai, Yuan Yu-Xin, Zhu Bin, Wang Kai-Wen, Fung Wing Kam, Zhou Ji-Yuan
| 期刊: | Genes | 影响因子: | 2.800 |
| 时间: | 2022 | 起止号: | 2022 May 6; 13(5):827 |
| doi: | 10.3390/genes13050827 | ||
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