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Published on: June 12, 2019
New insights into flavivirus biology: the influence of pH over interactions between prM and E proteins
Edson R A Oliveira1, Ricardo B de Alencastro1, Bruno A C Horta2
1Instituto de Química - Universidade Federal do Rio de Janeiro, Av. Athos da Silveira Ramos, 149 Centro de Tecnologia, Bloco A, Sala 609, Cidade Universitária, Rio de Janeiro, RJ, CEP: 21941-909, Brazil.
Abstract:
Diseases caused by flaviviruses, such as dengue and zika, are globally recognized as major threats. During infection, a critical point in their replicative cycle is the maturation step, which occurs throughout the cellular exocytic pathway. This step is a pH-dependent process that involves the modification of the viral envelope by converting prM (pre-membrane) into M (membrane) proteins with the release of a "pr peptide". After this reaction, the pr peptides remain bound to the viral envelope while the virions cross the acidic trans-Golgi network, and are released only at neutral pH after secretion of the virus particles. Despite this current knowledge, the molecular basis of the flavivirus maturation step is largely unknown. Here, based on the crystal structure of the dengue pr-E complex ("pr peptide" bound to virus envelope protein) and using molecular dynamics simulations, we found that the pH shift from acidic to neutral yields considerable structural changes in the system. Dynamic cross correlation maps and root mean square deviation analyses revealed that the pr-E junction is clearly unstable under neutral pH. Secondary structure analysis also revealed that the fusion loop region, present in the E protein, is sensitive to pH and tends to unstructure at a neutral environment. Moreover, we found that five residues present in the E protein, Gly102, His244, Thr70, Thr68 and Asn67 are critical to confer stability to the pr-E complex while inside the Golgi apparatus. This work brings details about the dynamical behavior of the pr-E system, helps to better understand the flavivirus biology and may also be of use in the development of novel antiviral strategies.
Insights
Flavivirus maturation involves pH-dependent structural changes. The pr-E complex becomes unstable at neutral pH, revealing key residues in the E protein critical for viral stability and potential antiviral targets.
Area of Science:
- Virology
- Structural Biology
- Biochemistry
Background:
- Flaviviruses like dengue and zika pose global health threats.
- Viral maturation, a key replicative step, occurs via the exocytic pathway and is pH-dependent.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying flavivirus maturation.
- To investigate the structural dynamics of the dengue virus pr-E complex during pH transition.
Main Methods:
- Utilized crystal structure of the dengue virus pr-E complex.
- Employed molecular dynamics simulations to analyze structural changes.
- Performed dynamic cross correlation maps, root mean square deviation, and secondary structure analyses.
Main Results:
- A shift from acidic to neutral pH induced significant structural changes in the pr-E complex.
- The pr-E junction demonstrated instability at neutral pH.
- The E protein's fusion loop region became unstructured at neutral pH.
- Identified five critical residues (Gly102, His244, Thr70, Thr68, Asn67) in the E protein essential for pr-E complex stability in the Golgi.
Conclusions:
- The study provides detailed insights into the dynamic behavior of the flavivirus pr-E system.
- Understanding these dynamics enhances comprehension of flavivirus biology.
- Findings may inform the development of novel antiviral strategies targeting viral maturation.
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