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Methylation of DNA in cancer.癌症中的 DNA 甲基化。
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Does epigenetic polymorphism contribute to phenotypic variances in Jatropha curcas L.?表观遗传多态性是否导致麻疯树(Jatropha curcas L.)表型变异?
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Exploring and exploiting epigenetic variation in crops.探索和利用作物中的表观遗传变异。
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Sequence and structure of Brassica rapa chromosome A3.甘蓝型油菜 A3 染色体的序列和结构。
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Stable epigenetic effects impact adaptation in allopolyploid orchids (Dactylorhiza: Orchidaceae).稳定的表观遗传效应影响异源多倍体兰花(杓兰属:兰科)的适应性。
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Genome-wide mapping of cytosine methylation revealed dynamic DNA methylation patterns associated with genes and centromeres in rice.全基因组胞嘧啶甲基化图谱揭示了水稻中与基因和着丝粒相关的动态DNA甲基化模式。
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Origins of the amphiploid species Brassica napus L. investigated by chloroplast and nuclear molecular markers.利用叶绿体和核分子标记研究双二倍体物种甘蓝型油菜的起源。
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Evolution in health and medicine Sackler colloquium: Stochastic epigenetic variation as a driving force of development, evolutionary adaptation, and disease.健康与医学领域的萨克勒研讨会:随机表观遗传变异作为发育、进化适应和疾病的驱动力
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甘蓝型油菜的表观遗传 QTL 作图。

Epigenetic QTL mapping in Brassica napus.

机构信息

National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, China.

出版信息

Genetics. 2011 Nov;189(3):1093-102. doi: 10.1534/genetics.111.131615. Epub 2011 Sep 2.

DOI:10.1534/genetics.111.131615
PMID:21890742
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3213370/
Abstract

There is increasing evidence that epigenetic marks such as DNA methylation contribute to phenotypic variation by regulating gene transcription, developmental plasticity, and interactions with the environment. However, relatively little is known about the relationship between the stability and distribution of DNA methylation within chromosomes and the ability to detect trait loci. Plant genomes have a distinct range of target sites and more extensive DNA methylation than animals. We analyzed the stability and distribution of epialleles within the complex genome of the oilseed crop plant Brassica napus. For methylation sensitive AFLP (MSAP) and retrotransposon (RT) epimarkers, we found a high degree of stability, with 90% of mapped markers retaining their allelic pattern in contrasting environments and developmental stages. Moreover, for two distinct parental lines 97% of epialleles were transmitted through five meioses and segregated in a mapping population. For the first time we have established the genetic position for 17 of the 19 centromeres within this amphidiploid species. Epiloci and genetic loci were distributed within distinct clusters, indicating differential detection of recombination events. This enabled us to identify additional significant QTL associated with seven important agronomic traits in the centromeric regions of five linkage groups.

摘要

越来越多的证据表明,表观遗传标记(如 DNA 甲基化)通过调节基因转录、发育可塑性以及与环境的相互作用,促进表型变异。然而,人们对于 DNA 甲基化在染色体内的稳定性和分布与检测性状位点的能力之间的关系知之甚少。植物基因组具有独特的靶标位点和比动物更广泛的 DNA 甲基化。我们分析了油料作物油菜的复杂基因组中 epialleles 的稳定性和分布。对于甲基化敏感的 AFLP(MSAP)和反转录转座子(RT)epimarkers,我们发现了高度的稳定性,90%的图谱标记在对比的环境和发育阶段保持其等位模式。此外,对于两个不同的亲本系,97%的 epialleles通过五次减数分裂传递,并在一个作图群体中分离。我们首次在这个同源四倍体物种中确定了 19 个着丝粒中的 17 个的遗传位置。epiloci 和遗传位点分布在不同的簇中,表明重组事件的检测存在差异。这使我们能够在五个连锁群的着丝粒区域中识别与七个重要农艺性状相关的额外显著 QTL。