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LRP 转录调控因子分析。

Analysis of Lrp Transcriptional Regulator.

机构信息

Agrochemistry and Biochemistry Department, Biochemistry and Molecular Biology Area, Faculty of Science, University of Alicante, Ap 99, 03080 Alicante, Spain.

Department of Medical Biochemistry, Institute of Biomedicine, University of Gothenburg, 40530 Gothenburg, Sweden.

出版信息

Genes (Basel). 2021 May 25;12(6):802. doi: 10.3390/genes12060802.

Abstract

is an extremely halophilic archaeon, able to live in hypersaline environments with versatile nutritional requirements, whose study represents an excellent basis in the field of biotechnology. The transcriptional machinery in combines the eukaryotic basal apparatus and the bacterial regulation mechanisms. However, little is known about molecular mechanisms of gene expression regulation compared with , particularly in Haloarchaea. The genome of contains a gene, (HFX_RS01210), which encodes a transcriptional factor belonging to Lrp/AsnC family. It is located downstream of the glutamine synthetase gene (HFX_RS01205), an enzyme involved in ammonium assimilation and amino acid metabolism. To study this transcriptional factor more deeply, the gene has been homologously overexpressed and purified under native conditions by two chromatographic steps, namely nickel affinity and gel filtration chromatography, showing that Lrp behaves asa tetrameric protein of approximately 67 kDa. Its promoter region has been characterized under different growth conditions using as a reporter gene. The amount of Lrp protein was also analyzed by Western blotting in different nitrogen sources and under various stress conditions. To sum up, regarding its involvement in the nitrogen cycle, it has been shown that its expression profile does not change in response to the nitrogen sources tested. Differences in its expression pattern have been observed under different stress conditions, such as in the presence of hydrogen peroxide or heavy metals. According to these results, the Lrp seems to be involved in a general response against stress factors, acting as a first-line transcriptional regulator.

摘要

是一种极端嗜盐古菌,能够在营养需求多样的高盐环境中生存,其研究代表了生物技术领域的一个极好基础。 中的转录机制结合了真核生物的基本装置和细菌的调控机制。 然而,与 相比,关于基因表达调控的分子机制知之甚少,特别是在盐杆菌中。 的基因组包含一个基因 (HFX_RS01210),该基因编码属于 Lrp/AsnC 家族的转录因子。 它位于谷氨酰胺合成酶基因(HFX_RS01205)的下游,该酶参与氨同化和氨基酸代谢。 为了更深入地研究这个转录因子,已经通过两种色谱步骤(镍亲和和凝胶过滤色谱)在天然条件下同源过表达和纯化了 基因,结果表明 Lrp 表现为约 67 kDa 的四聚体蛋白。 已经使用 作为报告基因在不同生长条件下对其启动子区域进行了表征。 还通过 Western blot 分析了在不同氮源和各种应激条件下的 Lrp 蛋白含量。 综上所述,鉴于其参与氮循环,已经表明其表达谱不会因测试的氮源而改变。 在不同的应激条件下观察到其表达模式的差异,例如在存在过氧化氢或重金属的情况下。 根据这些结果,Lrp 似乎参与了针对应激因素的一般反应,作为一线转录调节剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f998/8229911/0ec0772f91d2/genes-12-00802-g001.jpg

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