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Differential Effects of High-Temperature Stress on Nuclear Topology and Transcription of Repetitive Noncoding and Coding Rye Sequences

机译:高温胁迫对核拓扑和重复非编码和编码黑麦序列转录的差异影响。

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摘要

The plant stress response has been extensively characterized at the biochemical and physiological levels. However, knowledge concerning repetitive sequence genome fraction modulation during extreme temperature conditions is scarce. We studied high-temperature effects on subtelomeric repetitive sequences (pSc200) and 45S rDNA in rye seedlings submitted to 40 degrees C during 4 h. Chromatin organization patterns were evaluated through fluorescent in situ hybridization and transcription levels were assessed using quantitative real-time PCR. Additionally, the nucleolar dynamics were evaluated through fibrillarin immunodetection in interphase nuclei. The results obtained clearly demonstrated that the pSc200 sequence organization is not affected by high-temperature stress (HTS) and proved for the first time that this noncoding subtelomeric sequence is stably transcribed. Conversely, it was demonstrated that HTS treatment induces marked rDNA chromatin decondensation along with nucleolar enlargement and a significant increase in ribosomal gene transcription. The role of noncoding and coding repetitive rye sequences in the plant stress response that are suggested by their clearly distinct behaviors is discussed. While the heterochromatic conformation of pSc200 sequences seems to be involved in the stabilization of the interphase chromatin architecture under stress conditions, the dynamic modulation of nucleolar and rDNA topology and transcription suggest their role in plant stress response pathways
机译:已经在生化和生理水平上广泛表征了植物胁迫反应。但是,关于极端温度条件下重复序列基因组分数调制的知识很少。我们研究了高温对4小时内提交至40摄氏度的黑麦幼苗中亚端粒重复序列(pSc200)和45S rDNA的影响。通过荧光原位杂交评估染色质组织模式,并使用实时定量PCR评估转录水平。另外,通过在相间核中的原纤维蛋白免疫检测评估了核仁动力学。获得的结果清楚地证明了pSc200序列的组织不受高温胁迫(HTS)的影响,并首次证明了该非编码亚端粒序列是稳定转录的。相反地​​,已证明,HTS处理可引起明显的rDNA染色质缩聚以及核仁增大和核糖体基因转录的显着增加。讨论了非编码和编码重复黑麦序列在植物逆境响应中的作用,这由它们明显不同的行为暗示。虽然pSc200序列的异色构象似乎参与了胁迫条件下相间染色质体系的稳定,但核仁和rDNA拓扑结构和转录的动态调节表明它们在植物胁迫响应途径中的作用

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