Gregory R J, Zeller M L, Thurlow D L, Gourse R L, Stark M J, Dahlberg A E, Zimmermann R A
J Mol Biol. 1984 Sep 15;178(2):287-302. doi: 10.1016/0022-2836(84)90145-1.
The co-operative interaction of 30 S ribosomal subunit proteins S6, S8, S15 and S18 with 16 S ribosomal RNA from Escherichia coli was studied by (1) determining how the binding of each protein is influenced by the others and (2) characterizing a series of protein-rRNA fragment complexes. Whereas S8 and S15 are known to associate independently with the 16 S rRNA, binding of S18 depended upon S8 and S15, and binding of S6 was found to require S8, S15 and S18. Ribonucleoprotein (RNP) fragments were derived from the S8-, S8/S15- and S6/S8/S15/S18-16 S rRNA complexes by partial RNase hydrolysis and isolated by electrophoresis through Mg2+-containing polyacrylamide gels or by centrifugation through sucrose gradients. Identification of the proteins associated with each RNP by gel electrophoresis in the presence of sodium dodecyl sulfate demonstrated the presence of S8, S8 + S15 and S6 + S8 + S15 + S18 in the corresponding fragment complexes. Analysis of the rRNA components of the RNP particles confirmed that S8 was bound to nucleotides 583 to 605 and 624 to 653, and that S8 and S15 were associated with nucleotides 583 to 605, 624 to 672 and 733 to 757. Proteins S6, S8, S15 and S18 were shown to protect nucleotides 563 to 605, 624 to 680, 702 to 770, 818 to 839 and 844 to 891, which span the entire central domain of the 16 S rRNA molecule (nucleotides 560 to 890). The binding site for each protein contains helical elements as well as single-stranded internal loops ranging in size from a single bulged nucleotide to 20 bases. Three terminal loops and one stem-loop structure within the central domain of the 16 S rRNA were not protected in the four-protein complex. Interestingly, bases within or very close to these unprotected regions have been shown to be accessible to chemical and enzymatic probes in 30 S subunits but not in 70 S ribosomes. Furthermore, nucleotides adjacent to one of the unprotected loops have been cross-linked to a region near the 3' end of 16 S rRNA. Our observations and those of others suggest that the bases in this domain that are not sequestered by interactions with S6, S8, S15 or S18 play a role involved in subunit association or in tertiary interactions between portions of the rRNA chain that are distant from one-another in the primary structure.(ABSTRACT TRUNCATED AT 400 WORDS)
通过以下方式研究了大肠杆菌30 S核糖体亚基蛋白S6、S8、S15和S18与16 S核糖体RNA的协同相互作用:(1)确定每种蛋白质的结合如何受到其他蛋白质的影响;(2)表征一系列蛋白质-rRNA片段复合物。已知S8和S15可独立与16 S rRNA结合,而S18的结合依赖于S8和S15,并且发现S6的结合需要S8、S15和S18。核糖核蛋白(RNP)片段通过部分核糖核酸酶水解从S8-、S8/S15-和S6/S8/S15/S18-16 S rRNA复合物中获得,并通过含Mg2+的聚丙烯酰胺凝胶电泳或通过蔗糖梯度离心进行分离。在十二烷基硫酸钠存在下通过凝胶电泳鉴定与每个RNP相关的蛋白质,结果表明在相应的片段复合物中存在S8、S8 + S15和S6 + S8 + S15 + S18。对RNP颗粒的rRNA成分分析证实,S8与核苷酸583至605以及624至653结合,并且S8和S15与核苷酸583至605、624至672以及733至757相关联。已证明蛋白质S6、S8、S15和S18可保护核苷酸563至605、624至680、702至770、818至839以及844至891,这些核苷酸跨越16 S rRNA分子的整个中央结构域(核苷酸560至890)。每种蛋白质的结合位点包含螺旋元件以及大小从单个凸起核苷酸到20个碱基不等的单链内部环。在四蛋白复合物中,16 S rRNA中央结构域内的三个末端环和一个茎环结构未受到保护。有趣的是,已证明这些未受保护区域内或非常靠近这些区域的碱基在30 S亚基中可被化学和酶促探针接近,但在70 S核糖体中则不然。此外,与其中一个未受保护环相邻的核苷酸已与16 S rRNA 3'末端附近的区域交联。我们的观察结果以及其他人的观察结果表明,该结构域中未通过与S6、S8、S15或S18相互作用而被隔离的碱基在亚基缔合或rRNA链中在一级结构上彼此远离部分之间的三级相互作用中发挥作用。(摘要截短至400字)