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| SARS-CoV-2 Non-structural Protein 9 (Nsp9) – Structure and Peptide-Binding Insights
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| This page provides a structural and functional overview of the SARS-CoV-2 Nsp9 protein,
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| based on the 2020 iScience study that solved its crystal structure in both apo and
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| unexpected peptide-bound forms.
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| In this study , the researchers produced SARS-CoV-2 Nsp9 in the lab and sloved its X-ray crystal structure
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| <StructureSection load='6wxd' size='340' side='right'caption='[[6wxd]], [[Resolution|resolution]] 2.00Å' scene=''>
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| == Introduction ==
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|
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| The <scene name='10/1096916/Overview/1'>SARS-CoV-2 Non-structural protein 9 (Nsp9)</scene> is a small but essential RNA-binding protein encoded by
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| SARS-CoV-2. It contributes to viral replication by stabilizing viral RNA and assisting the
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| replication–transcription machinery. Nsp9 is highly conserved across coronaviruses, indicating
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| that its structure is crucial for efficient genome replication.
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| crystal structure in two states:
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|
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| * **Apo Nsp9** – Nsp9 without any ligand
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| * **Peptide-bound Nsp9** – unexpectedly containing a short peptide (**LEVL**) derived from a
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| rhinovirus 3C protease cleavage tag used during purification
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|
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| The peptide was found bound close to the **dimer interface**, causing subtle but significant
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| changes in the relative orientation of the two Nsp9 monomers. Since Nsp9 functions as a
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| homodimer during RNA binding, even small shifts in this interface may influence replication
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| efficiency and protein–RNA interactions.
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|
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| The structure confirmed that SARS-CoV-2 Nsp9 maintains a highly conserved **oblong β-barrel
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| fold**, similar to Nsp9 structures from SARS-CoV and other coronaviruses. The discovery of an
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| unexpected peptide-binding site suggests that Nsp9 may interact with regulatory elements or
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| protein partners during viral replication.
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| </structureSection>
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| == Structure highlights ==
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|
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| The SARS-CoV-2 Nsp9 monomer adopts a compact **7-stranded β-barrel fold**, a hallmark feature
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| of the Nsp9 family. Two monomers form a **homodimer**, which is necessary for RNA-binding
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| function.
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|
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|
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| === β-Barrel Core ===
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| <scene name='10/1096916/Beta_barrel/4'>beta barrel structure</scene>
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| The Nsp9 monomer contains **seven antiparallel β-strands** arranged into a barrel-like fold.
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| This β-barrel provides rigidity and forms the structural foundation needed for RNA interaction.
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| The fold is nearly identical to SARS-CoV Nsp9, highlighting strong evolutionary conservation.
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| The central feature of SARS-CoV-2 Nsp9 is its compact seven-stranded β-barrel, which gives the
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| protein a stable and highly conserved structural backbone. The strands are arranged in an oblong,
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| slightly twisted barrel that creates a rigid core ideal for interacting with viral RNA. This
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| β-barrel fold is almost identical across coronavirus Nsp9 proteins, showing how crucial it is
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| for viral replication. By providing a firm scaffold and maintaining the protein’s overall shape,
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| the β-barrel helps Nsp9 position itself correctly during RNA binding and supports the dimer
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| formation needed for its function.
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| === Dimer Interface ===
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| <scene name='10/1096916/Dimer_interface/1'>dimer interface</scene>
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| Nsp9 functions as a **homodimer**. The dimer interface is primarily stabilized by:
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| * β5–β6 region interactions
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| * Hydrophobic packing
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| * A conserved **GxGxG motif** situated near the dimerization surface
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| The alignment of the two monomers creates a positively charged groove thought to accommodate
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| viral RNA.
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| === Peptide-Binding Site (LEVL peptide) ===
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| In the peptide-bound structure (6WXD), a short peptide (**LEVL**) occupies a groove near the
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| dimer interface. This interaction was **not biologically intended** but arose from purification
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| artifacts involving the rhinovirus 3C protease.
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|
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| Nevertheless, the peptide influences monomer orientation, providing insight into how small
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| ligands or interacting partners may modulate Nsp9 dimer architecture.
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| In the 6WXD structure, Nsp9 was unexpectedly found bound to a short peptide with the sequence
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| LEVL, which originated from the rhinovirus 3C protease tag used during purification. Although
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| this peptide is not part of the virus, its binding revealed a hidden groove located right next
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| to the dimer interface. The peptide fits into a shallow hydrophobic pocket and makes several
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| contacts that slightly shift how the two Nsp9 monomers sit together. These small structural
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| changes suggest that the dimer interface of Nsp9 is sensitive to ligand binding and may
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| naturally interact with RNA or other viral and host partners during infection. This accidental
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| finding highlights a potentially important regulatory site on Nsp9 that might influence its
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| role in RNA replication
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| Key features:
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| * Peptide binds in a shallow hydrophobic groove
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| * Contacts β-barrel residues at the interface
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| * Causes measurable shifts in dimer alignment
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| * Suggests the site may be relevant for RNA or protein interactions
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| == Apo Form ==
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| In its apo state, Nsp9 appears in its natural, unbound conformation without any peptide or RNA
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| attached. The apo structure highlights the clean seven-stranded β-barrel core and the default
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| arrangement of its dimer interface. Because nothing is bound to the protein, the apo form shows
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| how the two monomers naturally align to create the shallow surface that is proposed to interact
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| with viral RNA. Comparing the apo and peptide-bound forms reveals that Nsp9 is somewhat flexible:
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| even a small ligand can cause subtle shifts in the dimer interface. This makes the apo form an
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| important reference point for understanding how Nsp9 behaves before it encounters RNA or any
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| other interacting partners during viral replication.
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|
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| == Conserved Motif ==
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| Nsp9 contains a small but extremely important glycine-rich sequence known as the GxGxG motif,
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| located close to the dimer interface. This flexible loop is highly conserved across almost all
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| coronaviruses, showing how essential it is for the protein’s stability and function. The repeated
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| glycine residues allow this region to bend and adjust its shape easily, helping Nsp9 maintain the
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| correct orientation needed for dimer formation and RNA interaction. Studies on related viruses
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| have shown that even minor changes in this motif can weaken the dimer or disrupt RNA binding,
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| ultimately reducing the efficiency of viral replication. Because of this, the GxGxG loop is
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| considered a structural “hotspot” that keeps Nsp9 properly folded and functionally active during
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| the replication cycle.
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|
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| == Functions ==
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| Nsp9 may look like a small protein, but it performs several key functions that help SARS-CoV-2
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| replicate efficiently. Its primary role is to bind and stabilize viral RNA, preventing the long
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| genomic strands from folding incorrectly or breaking during replication. Nsp9 becomes fully
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| functional only when it forms a homodimer, and this dimerization creates a surface that can
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| engage RNA more effectively. Because Nsp9 is part of the larger replication–transcription
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| complex, it likely works alongside other non-structural proteins to organize and position the
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| viral RNA for copying.
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| In addition to RNA binding, structural studies suggest that Nsp9 may help coordinate interactions
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| between different replication proteins, acting almost like a small structural “support piece”
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| within the replication machinery. The newly discovered peptide-binding groove near the dimer
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| interface also hints that Nsp9 could interact with small molecules or regulatory partners inside
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| the infected cell. Overall, Nsp9 improves the stability, efficiency, and accuracy of viral genome
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| replication, making it a quiet but essential contributor to SARS-CoV-2 survival.
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| == Disease Relevance ==
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| Nsp9 plays an indirect but important role in the progression of COVID-19 because it supports the
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| replication of the SARS-CoV-2 genome. The virus cannot multiply inside human cells unless its RNA
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| is copied efficiently, and Nsp9 acts as a stabilizing factor for this process. By binding RNA and
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| helping organize the replication–transcription complex, Nsp9 allows the virus to produce large
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| amounts of genomic RNA and viral proteins, which directly contributes to viral load and disease
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| severity.
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| Although Nsp9 itself does not damage human tissues, its activity drives the rapid spread of the
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| virus inside the body. Higher replication efficiency is linked to stronger transmission and more
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| severe clinical outcomes, especially in individuals with weak immune responses. Because Nsp9 is
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| conserved and essential for replication, any disruption of its dimerization or RNA-binding
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| ability could significantly slow down viral growth. This makes Nsp9 an attractive candidate for
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| future antiviral targeting, even though no current drugs directly inhibit it. Understanding its
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| structure opens the door to designing small molecules that might weaken the viral replication
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| cycle and reduce the impact of COVID-19.
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|
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| == Biological Significance ==
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| Nsp9 is essential for:
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| * Assembly of the replication–transcription complex
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| * Stabilization of viral RNA
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| * Viral protein–protein interactions
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| * Efficient SARS-CoV-2 genome replication
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| The structural analysis in this paper showed:
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| * Nsp9’s β-barrel is rigid and conserved
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| * Dimerization is critical for function
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| * The unexpected LEVL peptide reveals a **potential regulatory pocket**
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| * Small ligands may modulate Nsp9 dimer dynamics
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|
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| Because Nsp9 lacks close human homologs, identifying druggable sites on this protein could
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| offer future antiviral opportunities.
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| == References ==
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| 1. Littler, D. R., et al. (2020). *Crystal Structure of the SARS-CoV-2 Non-structural Protein 9, Nsp9.*
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| iScience, 23(7): 101258. https://doi.org/10.1016/j.isci.2020.101258
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| — Main paper describing apo and peptide-bound Nsp9 structures (6WXD).
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|
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| 2. PDB entry 6WXD. *SARS-CoV-2 Nsp9 RNA-binding protein.*
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| RCSB Protein Data Bank. https://www.rcsb.org/structure/6WXD
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| — High-resolution crystal structure used in this page.
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|
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| 3. Sutton, G., et al. (2004). *The nsp9 Replicase Protein of SARS Coronavirus: Structure and Functional Insights.*
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| EMBO Journal, 23(23): 4463–4474. https://doi.org/10.1038/sj.emboj.7600455
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| — Earlier coronavirus Nsp9 structure showing conserved β-barrel and dimerization interface.
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| 4. Konkolova, E., et al. (2020). *Structural Analysis of Coronavirus Nsp9 Proteins Across Genera.*
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| Viruses, 12(9): 1028. https://doi.org/10.3390/v12091028
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| — Comparative study showing conservation of the GxGxG motif and β-barrel fold.
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| 5. Miknis, Z., et al. (2009). *Functional and Structural Studies of the SARS-CoV Nsp9 Dimerization Interface.*
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| Journal of Molecular Biology, 392(3): 592–603. https://doi.org/10.1016/j.jmb.2009.07.032
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| — Explains why dimerization is essential for RNA binding.
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| 6. Rogstam, A., et al. (2020). *Structural and Functional Characterization of SARS-CoV-2 Nsp9.*
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| Acta Crystallographica F, 76: 402–408. https://doi.org/10.1107/S2053230X20008650
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| — Supports functional roles of Nsp9 in the replication–transcription complex.
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| 7. Romano, M., et al. (2020). *A Structural View of Coronavirus Replication Proteins.*
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| Journal of Molecular Biology, 432(19): 4697–4719. https://doi.org/10.1016/j.jmb.2020.06.021
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| — Overview of replication machinery where Nsp9 functions as an RNA-binding component.
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