#nucleocapsids
Our new preprint is out 🥳🥳🥳

Henipaviruses, like Nipah and Hendra, package their genomes inside helical shells built by thousands of nucleoproteins. These nucleocapsids are essential to protect the viral RNA, but how do they ever let the polymerase in to read the sequence?

👇
November 3, 2025 at 12:26 PM
I see viruses...everywhere! I think that's a retrovirus on the left - conical nucleocapsid - while the one on the right's a myxovirus. Genome divided among multiple nucleocapsids, you see 😎🤣
September 22, 2026 at 2:00 PM
“Here we report that circulating mature virions are inactivated by the acidity of mosquito haemolymph; thus, extracellular vesicles carrying replication-competent viral nucleocapsids serve as the predominant means of intercellular viral dissemination.” 👀🦟
February 5, 2026 at 3:13 PM
Protein nanotech!
1. Mod protein that forms containers for RNA -> now can add other proteins to surface

2. Directed evolution optimizes RNA-container-formation

Potential to deliver RNA and other payloads to specific cells!

H/T @logantcollins.bsky.social
onlinelibrary.wiley.com/doi/10.1002/...
A Nonviral Neo‐Nucleocapsid for Cell‐Specific RNA Delivery Developed by Pseudo‐Cyclic Peptide Grafting and Directed Evolution
Nonviral neo-nucleocapsids developed from a repurposed bacterial protein cage, and macrocyclic peptide pharmacophores via protein-protein ligation, bacteria-based directed evolution, lasso-grafting, ...
onlinelibrary.wiley.com
January 15, 2026 at 11:09 PM
🗓️El próximo 8 de abril a las 16h "Webinar del grupo Estructura y Función de Proteínas" coordinado por María José Sánchez Barrena.

🗣️José Manuel Pérez Cañadillas, @iqf-csic.bsky.social 
Viral nucleocapsids as potential targets for the discovery of new broad-spectrum antivirals.
March 17, 2025 at 9:51 AM
🗓️El próximo 8 de abril a las 16h "Webinar del grupo Estructura y Función de Proteínas" coordinado por María José Sánchez Barrena.

🗣️José Manuel Pérez Cañadillas, @iqf-csic.bsky.social 
Viral nucleocapsids as potential targets for the discovery of new broad-spectrum antivirals.
April 3, 2025 at 11:51 AM
NEW ON DRYAD: The herpes simplex virus pUL16 and pUL21 proteins prevent capsids from docking at nuclear pore complexes

Dataset▶️ bit.ly/4isumqa
Article▶️ bit.ly/4lH0N6U published in PLOS Pathogens

@plos.org #openaccess #opendata #virology #nucleocapsids #herpessimplex #sciencesky
April 24, 2025 at 7:01 AM
Intracellular Ebola virus nucleocapsid assembly revealed by in situ cryo-electron tomography
www.cell.com/cell/fulltex...
Intracellular Ebola virus nucleocapsid assembly revealed by in situ cryo-electron tomography
In-cell cryo-electron tomography has uncovered the Ebola virus nucleocapsid assembly and condensation processes. The resulting 9 Å map of fully assembled nucleocapsids within the viral replication fac...
www.cell.com
September 17, 2024 at 2:54 PM
🧬 A breakthrough for safer virus research

By delivering purified nucleocapsids directly into cells—bypassing receptor-mediated infection—they open the door to non-infectious, biosafe approaches for studying and handling dangerous viruses.

More: https://www.nature.com/articles/s41598-025-22282-x
Negative-sense RNA virus nucleocapsid as a versatile platform for gene delivery, vaccine development, and antiviral screening - Scientific Reports
Viruses typically infiltrate host cells via specialized cellular receptors, a pivotal step that is challenging when suitable permissive cell lines or hosts are unavailable. Leveraging the unique internal replication machinery of negative-stranded (ns) RNA viruses, we demonstrate that purified nucleo...
www.nature.com
November 10, 2025 at 6:00 AM
Autographa californica multiple nucleopolyhedrovirus e18 is essential for the formation of normal intranuclear membrane microvesicles and intranuclear envelopment and nuclear egress of nucleocapsids journals.asm.org/doi/10.1128/...
Autographa californica multiple nucleopolyhedrovirus e18 is essential for the formation of normal intranuclear membrane microvesicles and intranuclear envelopment and nuclear egress of nucleocapsids |...
The envelope protein E18 is a conserved component common to both ODV and BV virion types of baculoviruses, yet its functional role in virion morphogenesis remains unclear. This study investigated the ...
journals.asm.org
January 6, 2026 at 2:48 PM
Cryo-electron microscopy structure of the bovine ephemeral fever virus RNA-nucleoprotein assembly bioRxivpreprint
Cryo-electron microscopy structure of the bovine ephemeral fever virus RNA-nucleoprotein assembly
Bovine ephemeral fever virus (BEFV), a member of the Rhabdoviridae family, is an arthropod-borne pathogen that causes acute febrile disease in cattle. The structural basis of its genome encapsidation and virion assembly remains unexplored, with the current knowledge largely limited to predictions derived from bioinformatic comparisons with other rhabdoviruses. Furthermore, the structural principles that permit the formation of variable-diameter nucleocapsids, resulting in the distinctive bullet-shaped morphology of rhabdoviruses, remain poorly understood. Here, we report the cryoelectron microscopy structure of the BEFV nucleoprotein (N) in complex with RNA, in the absence of other viral components. The complex predominantly forms circular decameric oligomers that we propose to act as nucleation intermediates during assembly of the bullet-shaped nucleocapsids. Direct subunit interactions are limited to a small polar surface area, with additional intersubunit links mediated by flexible N- and C-terminal loops. These interfaces generate a structurally plastic oligomeric lattice in which neighbouring N subunits can undergo substantial rigid-body rotations and positional rearrangements while preserving conserved local contacts and continuous RNA encapsidation. Such quasi-equivalent interactions provide a plausible mechanism for accommodating the progressive changes in helical diameter required for the transition from the highly curved bullet tip to the wider cylindrical trunk of rhabdovirus nucleocapsids. The assembly is stabilised by the bound RNA molecule, where nine RNA bases are accommodated by each N subunit. The RNA-binding mechanism is consistent with that of VSV, the closest BEFV homologue characterised structurally, but differs at about half of the RNA-binding residues, demonstrating the versatility of the nucleoprotein scaffold in interacting with ssRNA. Comparative analysis with other rhabdoviruses, as well as negative-sense RNA viruses with constant-diameter nucleocapsids, such as Ebola, further confirms the structural features that enable bullet-shaped versus cylindrical nucleocapsid assembly.
dlvr.it
June 29, 2026 at 1:53 PM
Cryo-electron microscopy structure of the bovine ephemeral fever virus RNA-nucleoprotein assembly bioRxivpreprint
Cryo-electron microscopy structure of the bovine ephemeral fever virus RNA-nucleoprotein assembly
Bovine ephemeral fever virus (BEFV), a member of the Rhabdoviridae family, is an arthropod-borne pathogen that causes acute febrile disease in cattle. The structural basis of its genome encapsidation and virion assembly remains unexplored, with the current knowledge largely limited to predictions derived from bioinformatic comparisons with other rhabdoviruses. Furthermore, the structural principles that permit the formation of variable-diameter nucleocapsids, resulting in the distinctive bullet-shaped morphology of rhabdoviruses, remain poorly understood. Here, we report the cryoelectron microscopy structure of the BEFV nucleoprotein (N) in complex with RNA, in the absence of other viral components. The complex predominantly forms circular decameric oligomers that we propose to act as nucleation intermediates during assembly of the bullet-shaped nucleocapsids. Direct subunit interactions are limited to a small polar surface area, with additional intersubunit links mediated by flexible N- and C-terminal loops. These interfaces generate a structurally plastic oligomeric lattice in which neighbouring N subunits can undergo substantial rigid-body rotations and positional rearrangements while preserving conserved local contacts and continuous RNA encapsidation. Such quasi-equivalent interactions provide a plausible mechanism for accommodating the progressive changes in helical diameter required for the transition from the highly curved bullet tip to the wider cylindrical trunk of rhabdovirus nucleocapsids. The assembly is stabilised by the bound RNA molecule, where nine RNA bases are accommodated by each N subunit. The RNA-binding mechanism is consistent with that of VSV, the closest BEFV homologue characterised structurally, but differs at about half of the RNA-binding residues, demonstrating the versatility of the nucleoprotein scaffold in interacting with ssRNA. Comparative analysis with other rhabdoviruses, as well as negative-sense RNA viruses with constant-diameter nucleocapsids, such as Ebola, further confirms the structural features that enable bullet-shaped versus cylindrical nucleocapsid assembly.
dlvr.it
June 28, 2026 at 6:52 AM
Structural landscape of the respiratory syncytial virus nucleocapsids
https://www.nature.com/articles/s41467-023-41439-8
Structural landscape of the respiratory syncytial virus n...
The authors explore the structural polymorphism of the Hu...
www.nature.com
November 22, 2024 at 10:32 AM
Open Access UCL Research: An engineered non-toxic superantigen increases cross presentation of hepatitis B virus nucleocapsids by human dendritic cells discovery.ucl.ac.uk/id/eprint/10...
January 28, 2025 at 12:58 PM
Happy to announce our latest Rift Valley fever virus paper: nucleotide resolution mapping of N protein - genome/antigenome RNA interactions reveal that the intergenic region (IGR) is part of a larger, unencapsidated RNA element with regulatory function.
www.nature.com/articles/s41...
Nucleocapsids of the Rift Valley fever virus ambisense S segment contain an exposed RNA element in the center that overlaps with the intergenic region - Nature Communications
Rift Valley fever virus is a WHO-prioritized zoonotic pathogen. The authors identified an RNA element on its genome that is devoid of nucleoprotein, has the potential for a hairpin structure, and is r...
www.nature.com
September 2, 2024 at 8:32 AM
🔎 Spotted in Journal of Virology!
Researchers from Sun Yat-sen University used DSHB's anti-lamin-B [ADL67.10] mAb in a study on ac106 and its role in the nuclear egress of nucleocapsids and intranuclear microvesicle formation.
March 19, 2025 at 5:31 PM
Disruption of Herpes Simplex Virus Type 2 pUL21 Phosphorylation Impairs Secondary Envelopment of Cytoplasmic Nucleocapsids https://www.biorxiv.org/content/10.1101/2024.04.10.588913v1
Disruption of Herpes Simplex Virus Type 2 pUL21 Phosphorylation Impairs Secondary Envelopment of Cytoplasmic Nucleocapsids https://www.biorxiv.org/content/10.1101/2024.04.10.588913v1
The multifunctional tegument protein pUL21 of HSV-2 is phosphorylated in infected cells. We have ide
www.biorxiv.org
April 11, 2024 at 3:16 AM
🗓️El próximo 8 de abril a las 16h "Webinar del grupo Estructura y Función de Proteínas" coordinado por María José Sánchez Barrena.

🗣️José Manuel Pérez Cañadillas, @iqf-csic.bsky.social 
Viral nucleocapsids as potential targets for the discovery of new broad-spectrum antivirals.
March 25, 2025 at 11:51 AM
Disruption of Herpes Simplex Virus Type 2 pUL21 Phosphorylation Impairs Secondary Envelopment of Cytoplasmic Nucleocapsids https://www.biorxiv.org/content/10.1101/2024.04.10.588913v1
Disruption of Herpes Simplex Virus Type 2 pUL21 Phosphorylation Impairs Secondary Envelopment of Cytoplasmic Nucleocapsids https://www.biorxiv.org/content/10.1101/2024.04.10.588913v1
The multifunctional tegument protein pUL21 of HSV-2 is phosphorylated in infected cells. We have ide
www.biorxiv.org
April 11, 2024 at 3:16 AM
Goodness me... it states right there, nucleocapsid. Do COVID-19 vaccines create nucleocapsids???

Does she even read what she posts? Or just make stuff up???
February 27, 2025 at 3:03 AM