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首页> 外文期刊>Amino acids >Computational characterization of structural and functional roles of DREB1A, DREB1B and DREB1C in enhancing cold tolerance in rice plant
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Computational characterization of structural and functional roles of DREB1A, DREB1B and DREB1C in enhancing cold tolerance in rice plant

机译:DREB1A,DREB1B和DREB1C在增强水稻耐寒性耐寒性的结构和功能作用的计算表征

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摘要

Rice serves as the major food for almost half of the world population. Because of its origin in the tropical and subtropical area, rice is more sensitive towards cold stress. Three homologs of DREB1, namely DREB1A, DREB1B and DREB1C are induced Queryduring cold stress and after binding with GCC-box in the promoter region of the target gene, they enhance cold tolerance in rice plants. Though the majority of DREBs bind GCC-box, the degree of activation varies among DREBs. The protein encoded via these three transcription factors contains a common domain, namely AP2/ERF. In silico method was utilised to predict 3D structure of each AP2/ERF domain. The molecular dynamic analysis suggests, under the normal environmental condition, in each AP2/ERF domain, a positive correlation exists between -strands and the movement of C- is constrained. However, during cold stress, when AP2/ERF domain binds with GCC-box present in the promoter region of the target gene, mean pressure of each three AP2/ERF domain gets lowered and final potential energy increases. A positive correlation between -strands gets disrupted and C- experiences random movement suggesting enhanced activity of DREB1A, DREB1B and DREB1C during cold stress and enhancement of cold tolerance in plants. Further, MM/PBSA calculations for protein-DNA affinities reveal that, due to lack of 2 in DREB1C, the binding affinity of GCC-box with AP2/ERF domain of DREB1A>DREB1B>DREB1C. Thus, due to a better binding affinity with GCC-box, DREB1A and DREB1B can be utilised in near future for increasing cold tolerance of rice plant and increasing yield.
机译:米饭用作近一半的世界人口的主要食物。由于它在热带和亚热带地区的起源,米饭对冷应力更敏感。 DREB1,即DREB1A,DREB1B和DREB1C的三种同源物被诱导Queryduring冷应激和在靶基因的启动子区域中与GCC箱结合后,它们增强水稻植物的耐寒性。虽然大多数DREB绑定了GCC盒,但激活程度在DEREB之间变化。通过这三种转录因子编码的蛋白质含有常见结构域,即AP2 / ERF。在Silico方法中用于预测每个AP2 / ERF域的3D结构。分子动态分析表明,在正常环境条件下,在每个AP2 / ERF结构域中, - 在-Strand之间存在正相关和C-受约束的运动。然而,在冷应力期间,当AP2 / ERF结构域与靶基因的启动子区域中存在的GCC箱结合时,每三个AP2 / ERF结构域的平均压力降低并且最终势能增加。 -Strand之间的正相关性被破坏,C-经验随机运动,表明DREB1A,DREB1B和DREB1C的增强活性在冷应激期间和植物中耐寒耐寒性的增强。此外,用于蛋白质-DNA亲蛋白的MM / PBSA计算揭示了由于DREB1C中的2个缺乏2,GCC箱与DREB1A> DREB1B> DREB1C的AP2 / ERF结构域的结合亲和力。因此,由于与GCC盒更好的结合亲和力,DREB1A和DREB1B可在不久的将来使用,以增加水稻植物的耐寒性和产量增加。

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