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Amplification, Next-generation Sequencing, and Genomic DNA Mapping of Retroviral Integration Sites
Published on: March 22, 2016
NKNK: a New Essential Motif in the C-Terminal Domain of HIV-1 Group M Integrases
Marine Kanja1,2, Pierre Cappy1,2, Nicolas Levy3
1Université de Strasbourg, CNRS, Architecture et Réactivité de l'ARN, Strasbourg, France.
Abstract:
Using coevolution network interference based on comparison of two phylogenetically distantly related isolates, one from the main group M and the other from the minor group O of HIV-1, we identify, in the C-terminal domain (CTD) of integrase, a new functional motif constituted by four noncontiguous amino acids (N222K240N254K273). Mutating the lysines abolishes integration through decreased 3' processing and inefficient nuclear import of reverse-transcribed genomes. Solution of the crystal structures of wild-type (wt) and mutated CTDs shows that the motif generates a positive surface potential that is important for integration. The number of charges in the motif appears more crucial than their position within the motif. Indeed, the positions of the K's could be permutated or additional K's could be inserted in the motif, generally without affecting integration per se Despite this potential genetic flexibility, the NKNK arrangement is strictly conserved in natural sequences, indicative of an effective purifying selection exerted at steps other than integration. Accordingly, reverse transcription was reduced even in the mutants that retained wt integration levels, indicating that specifically the wt sequence is optimal for carrying out the multiple functions that integrase exerts. We propose that the existence of several amino acid arrangements within the motif, with comparable efficiencies of integration per se, might have constituted an asset for the acquisition of additional functions during viral evolution.IMPORTANCE Intensive studies of HIV-1 have revealed its extraordinary ability to adapt to environmental and immunological challenges, an ability that is also at the basis of antiviral treatment escape. Here, by deconvoluting the different roles of the viral integrase in the various steps of the infectious cycle, we report how the existence of alternative equally efficient structural arrangements for carrying out one function opens up the possibility of adapting to the optimization of further functionalities exerted by the same protein. Such a property provides an asset to increase the efficiency of the infectious process. On the other hand, though, the identification of this new motif provides a potential target for interfering simultaneously with multiple functions of the protein.
Insights
Researchers discovered a new functional motif in HIV-1 integrase (N222K240N254K273) crucial for viral integration and replication. This motif
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- Human Immunodeficiency Virus type 1 (HIV-1) exhibits remarkable adaptability, contributing to treatment escape.
- The viral integrase protein plays a critical role in the HIV-1 infectious cycle.
- Understanding the functional domains of HIV-1 integrase is key to developing antiviral strategies.
Purpose of the Study:
- To identify novel functional motifs within the C-terminal domain (CTD) of HIV-1 integrase.
- To elucidate the role of a newly identified motif (N222K240N254K273) in viral integration and other functions.
- To investigate the structural basis and evolutionary significance of this motif.
Main Methods:
- Coevolution network interference analysis comparing HIV-1 group M and group O isolates.
- Site-directed mutagenesis of the identified integrase motif.
- Biochemical assays to assess 3' processing and nuclear import efficiency.
- X-ray crystallography to determine the structures of wild-type and mutated integrase CTDs.
Main Results:
- A new functional motif (N222K240N254K273) in the integrase CTD was identified, essential for viral integration.
- Mutations in this motif impaired 3' processing and nuclear import, abolishing integration.
- The motif's positive surface potential, generated by charged residues (lysines), is critical for integration; charge number is more important than precise position.
- While integration efficiency is maintained with permuted or additional lysines, the wild-type NKNK arrangement is conserved due to selection acting on other viral functions, like reverse transcription.
Conclusions:
- The identified integrase motif exhibits flexibility in amino acid arrangement for integration, potentially facilitating the acquisition of additional functions during viral evolution.
- The strict conservation of the NKNK arrangement suggests it is optimal for multiple integrase functions, enhancing the overall efficiency of the HIV-1 infectious cycle.
- This motif represents a potential therapeutic target for simultaneously inhibiting multiple functions of HIV-1 integrase.
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