Related Experiment Video
Updated: May 2, 2026

Purification and Visualization of Influenza A Viral Ribonucleoprotein Complexes
Published on: February 9, 2009
Human parainfluenza virus fusion complex glycoproteins imaged in action on authentic viral surfaces
Tara C Marcink1,2, Tong Wang3, Amedee des Georges3,4
1Department of Pediatrics, Columbia University Vagelos College of Physicians & Surgeons, New York, New York, United States of America.
Abstract:
Infection by human parainfluenza viruses (HPIVs) causes widespread lower respiratory diseases, including croup, bronchiolitis, and pneumonia, and there are no vaccines or effective treatments for these viruses. HPIV3 is a member of the Respirovirus species of the Paramyxoviridae family. These viruses are pleomorphic, enveloped viruses with genomes composed of single-stranded negative-sense RNA. During viral entry, the first step of infection, the viral fusion complex, comprised of the receptor-binding glycoprotein hemagglutinin-neuraminidase (HN) and the fusion glycoprotein (F), mediates fusion upon receptor binding. The HPIV3 transmembrane protein HN, like the receptor-binding proteins of other related viruses that enter host cells using membrane fusion, binds to a receptor molecule on the host cell plasma membrane, which triggers the F glycoprotein to undergo major conformational rearrangements, promoting viral entry. Subsequent fusion of the viral and host membranes allows delivery of the viral genetic material into the host cell. The intermediate states in viral entry are transient and thermodynamically unstable, making it impossible to understand these transitions using standard methods, yet understanding these transition states is important for expanding our knowledge of the viral entry process. In this study, we use cryo-electron tomography (cryo-ET) to dissect the stepwise process by which the receptor-binding protein triggers F-mediated fusion, when forming a complex with receptor-bearing membranes. Using an on-grid antibody capture method that facilitates examination of fresh, biologically active strains of virus directly from supernatant fluids and a series of biological tools that permit the capture of intermediate states in the fusion process, we visualize the series of events that occur when a pristine, authentic viral particle interacts with target receptors and proceeds from the viral entry steps of receptor engagement to membrane fusion.
Insights
Human parainfluenza virus type 3 (HPIV3) entry involves complex viral fusion mechanisms. This study visualizes HPIV3
Area of Science:
- Virology
- Structural Biology
- Molecular Biology
Background:
- Human parainfluenza viruses (HPIVs) cause significant lower respiratory tract infections like pneumonia, with no available vaccines or treatments.
- HPIV3, a member of the Respirovirus genus, utilizes a fusion complex of hemagglutinin-neuraminidase (HN) and fusion (F) glycoproteins for host cell entry.
- Understanding the transient intermediate states of viral entry is crucial for developing antiviral strategies but is challenging with standard methods.
Purpose of the Study:
- To dissect the stepwise process of HPIV3 viral entry, focusing on how the HN protein triggers F-mediated membrane fusion.
- To visualize the conformational changes and intermediate states during viral entry using advanced cryo-electron tomography techniques.
Main Methods:
- Utilized cryo-electron tomography (cryo-ET) to visualize viral structures at high resolution.
- Employed an on-grid antibody capture method for examining fresh, biologically active HPIV3 strains.
- Developed biological tools to capture and analyze transient intermediate states during the fusion process.
Main Results:
- Visualized the sequential events of HPIV3 entry, from receptor engagement to membrane fusion.
- Captured and analyzed intermediate structural states of the viral fusion complex during receptor interaction.
- Provided unprecedented insight into the mechanism of HN-mediated triggering of F glycoprotein conformational changes.
Conclusions:
- Cryo-ET successfully visualized the dynamic process of HPIV3 entry and membrane fusion.
- The study elucidates the critical role of the HN protein in initiating the fusion cascade.
- Findings offer a foundation for designing targeted antiviral therapies against HPIV infections.
More Related Videos
07:24Single-Cell Multiplexed Fluorescence Imaging to Visualize Viral Nucleic Acids and Proteins and Monitor HIV, HTLV, HBV, HCV, Zika Virus, and Influenza Infection
Published on: October 29, 2020
08:26Subnanometer-resolution Structural Determination of Hemagglutinin from Cryo-electron Tomography of Influenza Viruses
Published on: November 7, 2025