Gene Center, Department of Biochemistry and Center for integrated Protein Science Munich (CiPSM), Ludwig-Maximilians-Universität München, Feodor-Lynen-Strasse 25, 81377 Munich, Germany.
Heidelberg University Biochemistry Center (BZH), Im Neuenheimer Feld 328, 69120 Heidelberg, Germany.
Mol Cell. 2019 Sep 19;75(6):1256-1269.e7. doi: 10.1016/j.molcel.2019.06.032. Epub 2019 Aug 1.
Eukaryotic ribosome biogenesis involves RNA folding and processing that depend on assembly factors and small nucleolar RNAs (snoRNAs). The 90S (SSU-processome) is the earliest pre-ribosome structurally analyzed, which was suggested to assemble stepwise along the growing pre-rRNA from 5' > 3', but this directionality may not be accurate. Here, by analyzing the structure of a series of 90S assembly intermediates from Chaetomium thermophilum, we discover a reverse order of 18S rRNA subdomain incorporation. Large parts of the 18S rRNA 3' and central domains assemble first into the 90S before the 5' domain is integrated. This final incorporation depends on a contact between a heterotrimer Enp2-Bfr2-Lcp5 recruited to the flexible 5' domain and Kre33, which reconstitutes the Kre33-Enp-Brf2-Lcp5 module on the compacted 90S. Keeping the 5' domain temporarily segregated from the 90S scaffold could provide extra time to complete the multifaceted 5' domain folding, which depends on a distinct set of snoRNAs and processing factors.
真核生物核糖体生物发生涉及 RNA 折叠和加工,这依赖于组装因子和小核仁 RNA(snoRNA)。90S(SSU-加工体)是最早被结构分析的前核糖体,它被建议沿着生长的 pre-rRNA 从 5' > 3' 逐步组装,但这种方向性可能不准确。在这里,通过分析嗜热毛壳菌(Chaetomium thermophilum)的一系列 90S 组装中间体的结构,我们发现 18S rRNA 亚结构域的掺入顺序相反。18S rRNA 的大部分 3' 和中心结构域首先组装到 90S 中,然后再整合 5' 结构域。这种最终的掺入取决于招募到柔性 5' 结构域的 Enp2-Bfr2-Lcp5 异三聚体与 Kre33 之间的接触,Kre33 重新构建了在紧凑的 90S 上的 Kre33-Enp-Brf2-Lcp5 模块。使 5' 结构域暂时与 90S 支架隔离开来,可以为完成依赖于独特 snoRNA 和加工因子的多方面 5' 结构域折叠提供额外的时间。