Prof. Dr.

Elena Conti

B2
Principal Investigator

Prof. Dr.

Elena Conti

Director Department Structural Cell Biology

Max-Planck-Institut für Biochemie

Research background

The regulation of gene expression relies on the ability of cells to precisely control the quality and quantity of their RNA repertoire. Eukaryotic cells contain a vast diversity of RNA molecules with distinct functions, and transcripts that are aberrant due to genomic mutations or errors in processing must be selectively recognized and eliminated. How RNA surveillance pathways distinguish functional RNA from defective molecules, and how RNA turnover is coordinated with ongoing gene expression, remain central questions in molecular biology.

The research of Elena Conti investigates the cellular mechanisms that monitor and degrade RNA in eukaryotic cells. Her work has elucidated the atomic structures and biochemical principles of major RNA degradation machineries, including the exosome and deadenylation complexes, which recognize and process specific RNA substrates. Using structural biology, eukaryotic expression systems, and biophysical characterization, she analyzes how these macromolecular assemblies engage RNA and execute controlled degradation. A current focus lies on understanding how the RNA decay machinery is physically coupled and coordinated with the translation apparatus. By defining the structural and mechanistic basis of RNA quality control, this research advances insight into the regulation of gene expression and cellular homeostasis.

Research fields
Publications

Structural basis of mRNA decay by the human exosome-ribosome supercomplex.

Kögel, A.; Keidel, A.; Loukeri, MJ.; Kuhn, CC.; Langer, LM.; Schäfer, IB.; Conti, E.

Nature. · 2024

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The interplay between translation and mRNA decay is widespread in human cells. In quality-control pathways, exonucleolytic degradation of mRNA associated with translating ribosomes is mediated largely by the cytoplasmic exosome, which includes the exoribonuclease complex EXO10 and the helicase complex SKI238 (refs. ). The helicase can extract mRNA from the ribosome and is expected to transfer it to the exoribonuclease core through a bridging factor, HBS1L3 (also known as SKI7), but the mechanisms of this molecular handover remain unclear. Here we reveal how human EXO10 is recruited by HBS1L3 (SKI7) to an active ribosome-bound SKI238 complex. We show that rather than a sequential handover, a direct physical coupling mechanism takes place, which culminates in the formation of a cytoplasmic exosome-ribosome supercomplex. Capturing the structure during active decay reveals a continuous path in which an RNA substrate threads from the 80S ribosome through the SKI2 helicase into the exoribonuclease active site of the cytoplasmic exosome complex. The SKI3 subunit of the complex directly binds to HBS1L3 (SKI7) and also engages a surface of the 40S subunit, establishing a recognition platform in collided disomes. Exosome and ribosome thus work together as a single structural and functional unit in co-translational mRNA decay, coordinating their activities in a transient supercomplex.

Concerted structural rearrangements enable RNA channeling into the cytoplasmic Ski238-Ski7-exosome assembly.

Keidel, A.; Kögel, A.; Reichelt, P.; Kowalinski, E.; Schäfer, IB.; Conti, E.

Mol Cell. · 2023

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The Ski2-Ski3-Ski8 (Ski238) helicase complex directs cytoplasmic mRNAs toward the nucleolytic exosome complex for degradation. In yeast, the interaction between Ski238 and exosome requires the adaptor protein Ski7. We determined different cryo-EM structures of the Ski238 complex depicting the transition from a rigid autoinhibited closed conformation to a flexible active open conformation in which the Ski2 helicase module has detached from the rest of Ski238. The open conformation favors the interaction of the Ski3 subunit with exosome-bound Ski7, leading to the recruitment of the exosome. In the Ski238-Ski7-exosome holocomplex, the Ski2 helicase module binds the exosome cap, enabling the RNA to traverse from the helicase through the internal exosome channel to the Rrp44 exoribonuclease. Our study pinpoints how conformational changes within the Ski238 complex regulate exosome recruitment for RNA degradation. We also reveal the remarkable conservation of helicase-exosome RNA channeling mechanisms throughout eukaryotic nuclear and cytoplasmic exosome complexes.

Nuclear mRNPs are compact particles packaged with a network of proteins promoting RNA-RNA interactions.

Bonneau, F.; Basquin, J.; Steigenberger, B.; Schäfer, T.; Schäfer, IB.; Conti, E.

Genes Dev. · 2023

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Messenger RNAs (mRNAs) are at the center of the central dogma of molecular biology. In eukaryotic cells, these long ribonucleic acid polymers do not exist as naked transcripts; rather, they associate with mRNA-binding proteins to form messenger ribonucleoprotein (mRNP) complexes. Recently, global proteomic and transcriptomic studies have provided comprehensive inventories of mRNP components. However, knowledge of the molecular features of distinct mRNP populations has remained elusive. We purified endogenous nuclear mRNPs from by harnessing the mRNP biogenesis factors THO and Sub2 in biochemical procedures optimized to preserve the integrity of these transient ribonucleoprotein assemblies. We found that these mRNPs are compact particles that contain multiple copies of Yra1, an essential protein with RNA-annealing properties. To investigate their molecular and architectural organization, we used a combination of proteomics, RNA sequencing, cryo-electron microscopy, cross-linking mass spectrometry, structural models, and biochemical assays. Our findings indicate that yeast nuclear mRNPs are packaged around an intricate network of interconnected proteins capable of promoting RNA-RNA interactions via their positively charged intrinsically disordered regions. The evolutionary conservation of the major mRNA-packaging factor (yeast Yra1 and Aly/REF in metazoans) points toward a general paradigm governing nuclear mRNP packaging.

Structure and regulation of the nuclear exosome targeting complex guides RNA substrates to the exosome.

Gerlach, P.; Garland, W.; Lingaraju, M.; Salerno-Kochan, A.; Bonneau, F.; Basquin, J.; Jensen, TH.; Conti, E.

Mol Cell. · 2022

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In mammalian cells, spurious transcription results in a vast repertoire of unproductive non-coding RNAs, whose deleterious accumulation is prevented by rapid decay. The nuclear exosome targeting (NEXT) complex plays a central role in directing non-functional transcripts to exosome-mediated degradation, but the structural and molecular mechanisms remain enigmatic. Here, we elucidated the architecture of the human NEXT complex, showing that it exists as a dimer of MTR4-ZCCHC8-RBM7 heterotrimers. Dimerization preconfigures the major MTR4-binding region of ZCCHC8 and arranges the two MTR4 helicases opposite to each other, with each protomer able to function on many types of RNAs. In the inactive state of the complex, the 3' end of an RNA substrate is enclosed in the MTR4 helicase channel by a ZCCHC8 C-terminal gatekeeping domain. The architecture of a NEXT-exosome assembly points to the molecular and regulatory mechanisms with which the NEXT complex guides RNA substrates to the exosome.

Molecular Basis for poly(A) RNP Architecture and Recognition by the Pan2-Pan3 Deadenylase.

Schäfer, IB.; Yamashita, M.; Schuller, JM.; Schüssler, S.; Reichelt, P.; Strauss, M.; Conti, E.

Cell. · 2019

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The stability of eukaryotic mRNAs is dependent on a ribonucleoprotein (RNP) complex of poly(A)-binding proteins (PABPC1/Pab1) organized on the poly(A) tail. This poly(A) RNP not only protects mRNAs from premature degradation but also stimulates the Pan2-Pan3 deadenylase complex to catalyze the first step of poly(A) tail shortening. We reconstituted this process in vitro using recombinant proteins and show that Pan2-Pan3 associates with and degrades poly(A) RNPs containing two or more Pab1 molecules. The cryo-EM structure of Pan2-Pan3 in complex with a poly(A) RNP composed of 90 adenosines and three Pab1 protomers shows how the oligomerization interfaces of Pab1 are recognized by conserved features of the deadenylase and thread the poly(A) RNA substrate into the nuclease active site. The structure reveals the basis for the periodic repeating architecture at the 3' end of cytoplasmic mRNAs. This illustrates mechanistically how RNA-bound Pab1 oligomers act as rulers for poly(A) tail length over the mRNAs' lifetime.