Gorelic L
Biochemistry. 1976 Aug 10;15(16):3579-90. doi: 10.1021/bi00661a028.
The kinetics of photoinduced cross-linkage of Escherichia coli 30S ribosomal proteins to the 16S-rRNA molecule in the intact Escherichia coli 30S ribosomal subunit was studied in this report. All of the 30S ribosomal proteins become cross-linked to the 16S rRNA before changes in the sedimentation characteristics of the 30S ribosomal subunit can be detected. The proteins exhibit different reactivities in the cross-linkage reaction. One group of proteins-S3, S7-S9, S11, S12, and S15-S19-is cross-linked to the 16S rRNA by single-hit kinetics, or by photoprocesses of nonunity but low multiplicities. A second group of proteins--S1, S2, S4-S6, S10, S13, S14, and S21--is cross-linked to the 16S rRNA by photoprocesses of a complex nature. A comparison of these data with other properties of the individual 30S ribosomal proteins related to ribosome structure indicated that most of the 30S ribosomal proteins cross-linked to the 16S rRNA by photoprocesses of low multiplicities had been classified rRNA-binding proteins by nonphotochemical methods, and most of the proteins cross-linked to the 16S rRNA by photoprocesses of large multiplicities had been classified as nonbinding proteins. There were certain exceptions to these correlations. Proteins S4 and S20, both RNA-binding proteins, become cross-linked to the 16S rRNA by photoprocessses of large multiplicities, and proteins S3, S11, S12, and S18, none of which have been classified RNA-binding proteins, exhibited low multiplicities in the cross-linkage reaction. All of these exceptions could be explained in terms of limitations inherent in the photochemical methods used in this study and in other types of methods that have been used to study RNA-protein interactions in the 30S ribosomal subunit. The data presented here also suggest that labile RNA-protein cross-links are present in the uv-irradiated 30S ribosomal subunits, and that neither peptide-bond cleavage nor photoinduced modification of the charged side-chain groups in the ribosomal proteins accompanied the cross-linkage reaction. However, some photoinduced RNA-chain breakage might have occurred.
本报告研究了完整的大肠杆菌30S核糖体亚基中,大肠杆菌30S核糖体蛋白与16S - rRNA分子的光诱导交联动力学。在检测到30S核糖体亚基沉降特性变化之前,所有30S核糖体蛋白都已与16S rRNA交联。这些蛋白在交联反应中表现出不同的反应活性。一组蛋白——S3、S7 - S9、S11、S12以及S15 - S19——通过单hit动力学,或通过非单一但低多重性的光过程与16S rRNA交联。第二组蛋白——S1、S2、S4 - S6、S10、S13、S14和S21——通过复杂性质的光过程与16S rRNA交联。将这些数据与单个30S核糖体蛋白与核糖体结构相关的其他特性进行比较表明,大多数通过低多重性光过程与16S rRNA交联的30S核糖体蛋白,通过非光化学方法被归类为rRNA结合蛋白,而大多数通过高多重性光过程与16S rRNA交联的蛋白被归类为非结合蛋白。这些相关性存在某些例外情况。蛋白S4和S20,两者均为RNA结合蛋白,通过高多重性光过程与16S rRNA交联,而蛋白S3、S11、S12和S18,其中没有一个被归类为RNA结合蛋白,在交联反应中表现出低多重性。所有这些例外情况都可以根据本研究中使用的光化学方法以及用于研究30S核糖体亚基中RNA - 蛋白相互作用的其他类型方法所固有的局限性来解释。这里呈现的数据还表明,在紫外线照射的30S核糖体亚基中存在不稳定的RNA - 蛋白交联,并且交联反应既没有伴随核糖体蛋白中肽键的断裂,也没有伴随带电侧链基团的光诱导修饰。然而,可能发生了一些光诱导的RNA链断裂。