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Published on: September 27, 2014
Ebola Virus Nucleocapsid-Like Structures Utilize Arp2/3 Signaling for Intracellular Long-Distance Transport
Katharina Grikscheit1,2, Olga Dolnik1, Yuki Takamatsu1,3
1Institute of Virology, Philipps University Marburg, Hans-Meerwein-Str. 2, 35043 Marburg, Germany.
Abstract:
The intracellular transport of nucleocapsids of the highly pathogenic Marburg, as well as Ebola virus (MARV, EBOV), represents a critical step during the viral life cycle. Intriguingly, a population of these nucleocapsids is distributed over long distances in a directed and polar fashion. Recently, it has been demonstrated that the intracellular transport of filoviral nucleocapsids depends on actin polymerization. While it was shown that EBOV requires Arp2/3-dependent actin dynamics, the details of how the virus exploits host actin signaling during intracellular transport are largely unknown. Here, we apply a minimalistic transfection system to follow the nucleocapsid-like structures (NCLS) in living cells, which can be used to robustly quantify NCLS transport in live cell imaging experiments. Furthermore, in cells co-expressing LifeAct, a marker for actin dynamics, NCLS transport is accompanied by pulsative actin tails appearing on the rear end of NCLS. These actin tails can also be preserved in fixed cells, and can be visualized via high resolution imaging using STORM in transfected, as well as EBOV infected, cells. The application of inhibitory drugs and siRNA depletion against actin regulators indicated that EBOV NCLS utilize the canonical Arp2/3-Wave1-Rac1 pathway for long-distance transport in cells. These findings highlight the relevance of the regulation of actin polymerization during directed EBOV nucleocapsid transport in human cells.
Insights
Ebola virus (EBOV) nucleocapsid transport relies on actin polymerization, specifically the Arp2/3-Wave1-Rac1 pathway. This study visualizes EBOV nucleocapsid-like structures and their associated actin tails in live and fixed cells.
Area of Science:
- Virology
- Cell Biology
- Biochemistry
Background:
- Intracellular transport of Marburg (MARV) and Ebola virus (EBOV) nucleocapsids is crucial for their life cycle.
- Filoviral nucleocapsid transport depends on actin polymerization, with EBOV requiring Arp2/3-dependent actin dynamics.
Purpose of the Study:
- To elucidate the mechanisms of EBOV nucleocapsid intracellular transport.
- To investigate the role of host actin signaling in EBOV nucleocapsid movement.
Main Methods:
- Utilized a minimalistic transfection system for live cell imaging of nucleocapsid-like structures (NCLS).
- Employed LifeAct to visualize actin dynamics and Super-resolution microscopy (STORM) to image actin tails.
- Applied inhibitory drugs and siRNA to identify key actin regulators.
Main Results:
- NCLS transport was observed with pulsative actin tails at their rear end in live cells.
- Actin tails were visualized in fixed cells and EBOV-infected cells using STORM.
- EBOV NCLS were found to utilize the Arp2/3-Wave1-Rac1 pathway for long-distance transport.
Conclusions:
- Directed EBOV nucleocapsid transport in human cells is dependent on the regulation of actin polymerization.
- The Arp2/3-Wave1-Rac1 pathway is essential for EBOV nucleocapsid movement.
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