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Biology subjects

Fromm, S. A.

Publications and source records attributed to Fromm, S. A..

3 recordsLinked to original sources

The translating bacterial ribosome at 1.55 A resolution by open access cryo-EM

Our understanding of protein synthesis has been conceptualised around the structure and function of the bacterial ribosome1-4. This complex macromolecular machine is the target of important antimicrobial drugs5, an integral line of defence against infectious diseases. Here, we describe how open access to state-of-the-art cryogenic electron microscopy facilities combined with bespoke user support offered by the newly established EMBL Imaging Centre enabled structural determination of the translating ribosome from Escherichia coli at 1.55 [A] resolution. The obtained structures allow for direct determination of the rRNA sequence to identify ribosome polymorphism sites in the E. coli strain used in this study and enables interpretation of the ribosomal active and peripheral sites at unprecedented resolution. This includes scarcely populated chimeric hybrid states of the ribosome engaged in several tRNA translocation steps resolved at ~2 [A] resolution. The current map not only improves our understanding of protein synthesis but also allows for more precise structure-based drug design of antibiotics to tackle rising bacterial resistance.

molecular biology↗

Structural basis for FLCN RagC GAP activation in MiT-TFE substrate-selective mTORC1 regulation

mTORC1 regulates cell growth and catabolism in response to fluctuations in nutrients through phosphorylation of key substrates. The tumor suppressor FLCN is a RagC GTPase activating protein (GAP) that regulates mTORC1 phosphorylation of TFEB, controlling lysosome biogenesis and autophagy. Here, we determined the cryo-EM structure of the active FLCN complex (AFC) containing FLCN, FNIP2, the N-terminal tail of SLC38A9, the RagAGDP:RagCGDP.BeFx- GTPase dimer, and the Ragulator scaffold. Relative to the inactive lysosomal FLCN complex (LFC) structure, FLCN reorients by 90{degrees}, breaks its contacts with RagA, and makes new contacts with RagC that position its Arg164 finger for catalysis. Disruption of the AFC-specific interfaces of FLCN and FNIP2 with RagC eliminated GAP activity in vitro and led to nuclear retention of TFE3, with no effect on mTORC1 phosphorylation of S6K or 4E-BP1. The structure thus provides a roadmap to discover TFEB-selective mTORC1 antagonists. One-Sentence SummaryThe cryo-EM structure of the active FLCN RagC GAP complex provides a structural basis for TFEB/TFE3 substrate-selective targeting of mTORC1.

biochemistry↗

Mechanism of RNA Polymerase I selection by transcription factor UAF

Pre-ribosomal RNA is selectively transcribed by RNA Polymerase (Pol) I in eukaryotes. The yeast transcription factor Upstream Activating Factor (UAF) represses Pol II transcription and mediates Pol I preinitiation complex (PIC) formation during the early stages of transcription initiation at the 35S ribosomal RNA gene. To unravel the DNA recognition and Pol I selection mechanisms of UAF, we determined the structure of UAF bound to native promoter DNA and transcription factor TBP. We found that UAF recognizes DNA using a hexameric histone-like scaffold with markedly different interactions than the nucleosome and the histone-fold-rich TFIID. UAF strategically sequesters TBP from DNA and Pol II/III-specific factors, and positions it for Core Factor binding, supporting Pol I recruitment. Our findings therefore reveal the molecular basis of Pol I selection for ribosome biogenesis. As well, they reveal an unexpected potential within the histone fold as a motif for specific protein-DNA interactions inside the cell.

molecular biology↗