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一种用于分析非生物胁迫的相对定量甲基化敏感扩增多态性(MSAP)方法。

A relative quantitative Methylation-Sensitive Amplified Polymorphism (MSAP) method for the analysis of abiotic stress.

作者信息

Bednarek Piotr T, Orłowska Renata, Niedziela Agnieszka

机构信息

Department of Plant Physiology and Biochemistry, Plant Breeding and Acclimatization Institute - National Research Institute, Radzików, 05-870, Błonie, Poland.

出版信息

BMC Plant Biol. 2017 Apr 21;17(1):79. doi: 10.1186/s12870-017-1028-0.

Abstract

BACKGROUND

We present a new methylation-sensitive amplified polymorphism (MSAP) approach for the evaluation of relative quantitative characteristics such as demethylation, de novo methylation, and preservation of methylation status of CCGG sequences, which are recognized by the isoschizomers HpaII and MspI. We applied the technique to analyze aluminum (Al)-tolerant and non-tolerant control and Al-stressed inbred triticale lines. The approach is based on detailed analysis of events affecting HpaII and MspI restriction sites in control and stressed samples, and takes advantage of molecular marker profiles generated by EcoRI/HpaII and EcoRI/MspI MSAP platforms.

METHODS

Five Al-tolerant and five non-tolerant triticale lines were exposed to aluminum stress using the physiologicaltest. Total genomic DNA was isolated from root tips of all tolerant and non-tolerant lines before and after Al stress following metAFLP and MSAP approaches. Based on codes reflecting events affecting cytosines within a given restriction site recognized by HpaII and MspI in control and stressed samples demethylation (DM), de novo methylation (DNM), preservation of methylated sites (MSP), and preservation of nonmethylatedsites (NMSP) were evaluated. MSAP profiles were used for Agglomerative hierarchicalclustering (AHC) based on Squared Euclidean distance and Ward's Agglomeration method whereas MSAP characteristics for ANOVA.

RESULTS

Relative quantitative MSAP analysis revealed that both Al-tolerant and non-tolerant triticale lines subjected to Al stress underwent demethylation, with demethylation of CG predominating over CHG. The rate of de novo methylation in the CG context was ~3-fold lower than demethylation, whereas de novo methylation of CHG was observed only in Al-tolerant lines.

CONCLUSIONS

Our relative quantitative MSAP approach, based on methylation events affecting cytosines within HpaII-MspI recognition sequences, was capable of quantifying de novo methylation, demethylation, methylation, and non-methylated status in control and stressed Al-tolerant and non-tolerant triticale inbred lines. The method could also be used to analyze methylation events affecting CG and CHG contexts, which were differentially methylated under Al stress. We cannot exclude that the methylation changes revealed among lines as well as between Al-tolerant and non-tolerant groups of lines were due to some experimental errors or that the number of lines was too small for ANOVA to prove the influence of Al stress. Nevertheless, we suspect that Al tolerance in triticale could be partly regulated by epigenetic factors acting at the level of DNA methylation. This method provides a valuable tool for studies of abiotic stresses in plants.

摘要

背景

我们提出了一种新的甲基化敏感扩增多态性(MSAP)方法,用于评估相对定量特征,如去甲基化、从头甲基化以及CCGG序列甲基化状态的保留情况,这些序列可被同裂酶HpaII和MspI识别。我们应用该技术分析了耐铝和不耐铝的对照以及铝胁迫下的小黑麦自交系。该方法基于对对照和胁迫样品中影响HpaII和MspI限制性酶切位点事件的详细分析,并利用EcoRI/HpaII和EcoRI/MspI MSAP平台产生的分子标记图谱。

方法

使用生理试验使五个耐铝和五个不耐铝的小黑麦品系遭受铝胁迫。在铝胁迫前后,按照metAFLP和MSAP方法从所有耐铝和不耐铝品系的根尖中分离总基因组DNA。根据反映对照和胁迫样品中HpaII和MspI识别的给定限制性酶切位点内影响胞嘧啶事件的编码,评估去甲基化(DM)、从头甲基化(DNM)、甲基化位点的保留(MSP)和非甲基化位点的保留(NMSP)情况。MSAP图谱用于基于平方欧氏距离和沃德聚类法的凝聚层次聚类(AHC),而MSAP特征用于方差分析。

结果

相对定量MSAP分析表明,遭受铝胁迫的耐铝和不耐铝小黑麦品系均发生了去甲基化,其中CG去甲基化比CHG去甲基化更为显著。CG背景下的从头甲基化率比去甲基化率低约3倍,而CHG的从头甲基化仅在耐铝品系中观察到。

结论

我们基于影响HpaII - MspI识别序列内胞嘧啶甲基化事件的相对定量MSAP方法,能够对对照和胁迫下的耐铝和不耐铝小黑麦自交系中的从头甲基化、去甲基化、甲基化和非甲基化状态进行定量。该方法还可用于分析影响CG和CHG背景的甲基化事件,它们在铝胁迫下甲基化情况不同。我们不能排除品系间以及耐铝和不耐铝品系组间揭示的甲基化变化是由于一些实验误差,或者品系数量太少以至于方差分析无法证明铝胁迫的影响。然而,我们怀疑小黑麦的耐铝性可能部分受DNA甲基化水平上的表观遗传因素调控。该方法为植物非生物胁迫研究提供了一个有价值的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b255/5399823/570e08ec29ef/12870_2017_1028_Fig1_HTML.jpg

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