首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Synthesis and Aminoacylation of 3′-Amino-3′-deoxy Transfer RNA and Its Activity in Ribosomal Protein Synthesis
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Synthesis and Aminoacylation of 3′-Amino-3′-deoxy Transfer RNA and Its Activity in Ribosomal Protein Synthesis

机译:3-氨基-3-脱氧转移RNA的合成氨基酰化及其在核糖体蛋白合成中的活性

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摘要

3′-amino-3′-deoxy adenosine was enzymatically converted into 3′-amino-3′-deoxy ATP. This ATP analogue was incorporated into the 3′-terminal adenosine position of Escherichia coli tRNA. The modified tRNA was aminoacylated with phenylalanine by use of E. coli phenylalanyl tRNA synthetase. The phenylalanine was attached to the 3′-amino group of the tRNA, as shown by its high resistance to base-catalyzed hydrolysis in contrast with the normal lability of phenylalanyl-tRNA. Aminoacyl tRNA synthetases charge the 3′-amino-3′-deoxy tRNA with kinetics that are similar to those of the charging reaction in which normal tRNA is the substrate. When phenylalanyl-3′-amino-3′-deoxy tRNA is used in a protein-synthesizing system directed by poly(U) in vitro, this molecule is capable of receiving an acetyl-phenylalanine from the donor site of the ribosome. However, the ribosome is unable to cleave the amide bond connecting phenylalanine to the tRNA molecule; hence, the phenylalanyl-3′-amino-3′-deoxy tRNA has acceptor but not donor activity in protein synthesis. Failure of the ribosome to cleave the amide bond may be due to its greater stability relative to the normal ester bond. However, it may also be due to the fact that the isomerization of the peptidyl chain between the 2′ and 3′ positions of adenosine is prevented due to the amide bond at the 3′ position, and cleavage may normally occur with the peptidyl chain on the 2′ position of adenosine.
机译:将3'-氨基-3'-脱氧腺苷酶促转化为3'-氨基-3'-脱氧ATP。将该ATP类似物并入大肠杆菌tRNA的3'-末端腺苷位置。通过使用大肠杆菌苯丙氨酰tRNA合成酶将修饰的tRNA用苯丙氨酸氨基酰化。苯丙氨酸连接到tRNA的3'-氨基上,这与苯丙氨酰-tRNA的正常不稳定性相比,对碱基催化的水解具有很高的抵抗力。氨酰基tRNA合成酶以与正常tRNA为底物的充电反应相似的动力学方式对3'-氨基-3'-脱氧tRNA进行充电。当在体外由poly(U)指导的蛋白质合成系统中使用苯丙氨酰-3'-氨基-3'-脱氧tRNA时,该分子能够从核糖体的供体位点接受乙酰基-苯丙氨酸。然而,核糖体无法切割将苯丙氨酸连接到tRNA分子的酰胺键。因此,苯丙氨酰-3'-氨基-3'-脱氧tRNA在蛋白质合成中具有受体活性但不具有供体活性。核糖体不能裂解酰胺键可能是由于其相对于正常酯键的更大稳定性。但是,也可能由于以下事实:由于3'位置的酰胺键,使腺苷的2'和3'位置之间的肽基链发生异构化,并且通常在肽基链位于3'时会发生裂解。腺苷的2'位置。

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