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Active Site Assembly by SMG5 as a Mechanism for SMG6 Endonuclease Licencing in Nonsense-mediated mRNA Decay
Enes S Arpa1, Michael Taschner2, Mara De Matos1
1Center for Integrative Genomics (CIG), University of Lausanne, 1015 Lausanne, Switzerland.
Abstract:
Nonsense-mediated mRNA decay (NMD) is a conserved eukaryotic surveillance pathway that eliminates transcripts containing premature termination codons (PTCs). Substantial progress has been made in defining the transcript features that mark aberrant translation termination for NMD activation, yet key mechanistic steps remain incompletely understood - including how recruitment of the central NMD factor UPF1 is coupled to the downstream effector phase in which targeted mRNAs are nucleolytically degraded. In metazoans, NMD employs an endonucleolytic route mediated by SMG6, a PIN-domain nuclease, alongside SMG5 and SMG7, which act downstream of PTC recognition. SMG5 has recently been proposed to licence SMG6 activity, yet the molecular basis of this licencing has remained elusive. Here, we combine AlphaFold structural predictions with biochemical assays to investigate interactions among human SMG5, SMG6, and SMG7. Structural models predict a high-confidence interface between SMG5 and SMG6 PIN domains that forms a composite active site: a conserved SMG5 aspartate (D893) complements the SMG6 acidic triad to reinstate the canonical tetrad required for PIN-domain catalysis. In vitro, SMG6 alone exhibits weak endonucleolytic activity, which is enhanced ∼10-fold by the SMG5 PIN domain. Mutational analyses confirm that conserved residues from both proteins are essential for this composite configuration. Our findings reveal that the SMG5 PIN domain, previously considered catalytically inert, plays a critical role in activating SMG6 by completing its active site. This work provides mechanistic insight into the SMG5-dependent licencing step and uncovers a composite PIN nuclease architecture at the heart of the metazoan NMD effector phase.
Insights
Nonsense-mediated mRNA decay (NMD) uses SMG5 to activate the SMG6 nuclease. This study reveals how SMG5 completes SMG6's active site, enhancing its RNA degradation activity crucial for NMD.
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- Nonsense-mediated mRNA decay (NMD) is a crucial surveillance pathway eliminating transcripts with premature termination codons (PTCs).
- The precise mechanisms linking PTC recognition to mRNA degradation by NMD effectors remain incompletely understood.
- SMG6, a PIN-domain nuclease, mediates mRNA degradation in metazoan NMD, with SMG5 proposed to license its activity.
Purpose of the Study:
- To elucidate the molecular basis of SMG5-mediated licensing of SMG6 activity in human NMD.
- To investigate the structural and biochemical interactions between human SMG5, SMG6, and SMG7.
Main Methods:
- Utilized AlphaFold structural predictions to model protein interactions.
- Performed biochemical assays to assess nuclease activity and protein interactions.
- Conducted mutational analyses to identify key residues involved in the SMG5-SMG6 interaction.
Main Results:
- Structural models revealed a composite active site formed by SMG5 and SMG6 PIN domains.
- A conserved aspartate in SMG5 (D893) complements SMG6's catalytic triad, forming a functional tetrad.
- SMG5 significantly enhanced SMG6's endonucleolytic activity in vitro, with mutations disrupting this interaction abolishing enhancement.
Conclusions:
- The SMG5 PIN domain is critical for activating SMG6 by completing its active site, contrary to previous assumptions of catalytic inertness.
- This reveals a composite PIN nuclease architecture essential for the NMD effector phase in metazoans.
- Provides mechanistic insight into the SMG5-dependent licensing of SMG6 activity.
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