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大肠杆菌23S核糖体RNA中结构域V中心环的转录后修饰

Posttranscriptional modification of the central loop of domain V in Escherichia coli 23 S ribosomal RNA.

作者信息

Kowalak J A, Bruenger E, McCloskey J A

机构信息

Department of Biochemistry, University of Utah, Salt Lake City 84132, USA.

出版信息

J Biol Chem. 1995 Jul 28;270(30):17758-64. doi: 10.1074/jbc.270.30.17758.

DOI:10.1074/jbc.270.30.17758
PMID:7629075
Abstract

Knowledge of the sites, structures, and functional roles of posttranscriptional modification in rRNAs is limited, despite steadily accumulating evidence that rRNA plays a direct role in the peptidyl transferase reaction and that modified nucleotides are concentrated at the functional center of the ribosome. Using methods based on mass spectrometry, modifications have been mapped in Escherichia coli 23 S rRNA in the central loop of domain V, a region of established interaction between 23 S RNA and tRNA. Two segments of RNA were isolated following protection with oligodeoxynucleotides and nuclease digestion: residues 2423-2473 (51-mer) and 2481-2519 (39-mer). Dihydrouridine was located at position 2449, within the RNase T1 hydrolysis product 2448-ADAACAGp-2454, as evidenced by a molecular mass 2 daltons higher than the gene sequence-predicted mass. This nucleoside, which is nearly ubiquitous in tRNA (where it is involved in maintenance of loop structure), is two bases from A-2551, a previously determined site of interaction between 23 S RNA and the CCA-aminoacyl terminus of tRNA at the ribosomal P-site. The oligonucleotide 2496-CACmCUCGp-2502 was isolated and accurately mass measured, and its nucleoside constituents were characterized by high performance liquid chromatography-mass spectrometry; there was no evidence of modification at position 2501 as implied by earlier work. Using similar techniques, the modified adenosine at position 2503 was unambiguously determined to be 2-methyladenosine in the fragment 2503-m2A psi Gp-2505.

摘要

尽管越来越多的证据表明rRNA在肽基转移酶反应中起直接作用,且修饰核苷酸集中在核糖体的功能中心,但对rRNA转录后修饰的位点、结构和功能作用的了解仍然有限。利用基于质谱的方法,已在大肠杆菌23S rRNA结构域V的中央环中绘制了修饰图谱,该区域是23S RNA与tRNA之间已确定的相互作用区域。在用寡脱氧核苷酸保护并经核酸酶消化后,分离出两段RNA:残基2423 - 2473(51聚体)和2481 - 2519(39聚体)。二氢尿苷位于2449位,在核糖核酸酶T1水解产物2448 - ADAACAGp - 2454内,其分子量比基因序列预测的质量高2道尔顿,证明了这一点。这种核苷在tRNA中几乎普遍存在(它参与环结构的维持),距离A - 2551有两个碱基,A - 2551是先前确定的23S RNA与核糖体P位点处tRNA的CCA - 氨酰基末端之间的相互作用位点。分离出寡核苷酸2496 - CACmCUCGp - 2502并进行了精确的质量测量,其核苷成分通过高效液相色谱 - 质谱进行了表征;没有证据表明如早期工作所暗示的2501位发生了修饰。使用类似技术,明确确定2503位的修饰腺苷在片段2503 - m2A psi Gp - 2505中为2 - 甲基腺苷。

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