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Updated: Nov 29, 2025

Generation and Assembly of Virus-Specific Nucleocapsids of the Respiratory Syncytial Virus
Published on: July 27, 2021
Capsid Structure of Leishmania RNA Virus 1
Michaela Procházková1, Tibor Füzik1, Danyil Grybchuk1
1Central European Institute of Technology, Masaryk University, Brno, Czech Republic.
Abstract:
Leishmania parasites cause a variety of symptoms, including mucocutaneous leishmaniasis, which results in the destruction of the mucous membranes of the nose, mouth, and throat. The species of Leishmania carrying Leishmania RNA virus 1 (LRV1), from the family Totiviridae, are more likely to cause severe disease and are less sensitive to treatment than those that do not contain the virus. Although the importance of LRV1 for the severity of leishmaniasis was discovered a long time ago, the structure of the virus remained unknown. Here, we present a cryo-electron microscopy reconstruction of the virus-like particle of LRV1 determined to a resolution of 3.65 Å. The capsid has icosahedral symmetry and is formed by 120 copies of a capsid protein assembled in asymmetric dimers. RNA genomes of viruses from the family Totiviridae are synthetized, but not capped at the 5' end, by virus RNA polymerases. To protect viral RNAs from degradation, capsid proteins of the L-A totivirus cleave the 5' caps of host mRNAs, creating decoys to overload the cellular RNA quality control system. Capsid proteins of LRV1 form positively charged clefts, which may be the cleavage sites for the 5' cap of Leishmania mRNAs. The putative RNA binding site of LRV1 is distinct from that of the related L-A virus. The structure of the LRV1 capsid enables the rational design of compounds targeting the putative decapping site. Such inhibitors may be developed into a treatment for mucocutaneous leishmaniasis caused by LRV1-positive species of LeishmaniaIMPORTANCE Twelve million people worldwide suffer from leishmaniasis, resulting in more than 30 thousand deaths annually. The disease has several variants that differ in their symptoms. The mucocutaneous form, which leads to disintegration of the nasal septum, lips, and palate, is caused predominantly by Leishmania parasites carrying Leishmania RNA virus 1 (LRV1). Here, we present the structure of the LRV1 capsid determined using cryo-electron microscopy. Capsid proteins of a related totivirus, L-A virus, protect viral RNAs from degradation by cleaving the 5' caps of host mRNAs. Capsid proteins of LRV1 may have the same function. We show that the LRV1 capsid contains positively charged clefts that may be sites for the cleavage of mRNAs of Leishmania cells. The structure of the LRV1 capsid enables the rational design of compounds targeting the putative mRNA cleavage site. Such inhibitors may be used as treatments for mucocutaneous leishmaniasis.
Insights
Leishmania RNA virus 1 (LRV1) causes severe mucocutaneous leishmaniasis. Researchers determined the LRV1 capsid structure, revealing positively charged clefts that may cleave host mRNAs, enabling new treatment development.
Area of Science:
- Virology
- Structural Biology
- Parasitology
Background:
- Leishmania parasites cause leishmaniasis, a disease affecting millions globally.
- Leishmania RNA virus 1 (LRV1) is associated with severe mucocutaneous leishmaniasis and treatment resistance.
- The viral structure of LRV1 was previously unknown, hindering therapeutic development.
Purpose of the Study:
- To determine the three-dimensional structure of the Leishmania RNA virus 1 (LRV1) capsid.
- To elucidate the structural basis for LRV1's role in leishmaniasis pathogenesis.
- To identify potential targets for novel anti-leishmaniasis drug development.
Main Methods:
- Cryo-electron microscopy (cryo-EM) was used to reconstruct the LRV1 virus-like particle.
- Analysis of the capsid's icosahedral symmetry and protein assembly.
- Identification of structural features potentially involved in RNA binding and host mRNA interaction.
Main Results:
- The cryo-EM reconstruction revealed the LRV1 capsid structure at 3.65 Å resolution.
- The capsid is composed of 120 capsid protein units forming asymmetric dimers with icosahedral symmetry.
- Positively charged clefts on the capsid proteins suggest potential mRNA decapping sites, distinct from related viruses.
Conclusions:
- The determined structure of the LRV1 capsid provides crucial insights into its biology.
- The identified putative decapping sites offer a target for rational drug design.
- Development of inhibitors targeting these sites could lead to new treatments for LRV1-associated mucocutaneous leishmaniasis.
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