Related Experiment Video
Updated: Apr 5, 2026

Prediction of HIV-1 Coreceptor Usage Tropism by Sequence Analysis using a Genotypic Approach
Published on: December 1, 2011
HIV-1 Matrix Protein p17 and its Receptors
Francesca Caccuri, Stefania Marsico, Simona Fiorentini
1Section of Microbiology, Department of Molecular and Translational Medicine, School of Medicine, University of Brescia, Brescia, Italy. cinzia.giagulli@unibs.it.
Abstract:
The HIV-1 matrix protein p17 (p17) plays a crucial role in the virus life cycle. It is released in the extracellular space from HIV-1-infected cells and accumulates in the tissues of patients, even in those successfully treated with highly active antiretroviral therapy. Extracellular p17 deregulates the biological functions of many different cells that are directly or indirectly implicated in AIDS pathogenesis. All p17 actions depend on interaction between its functional epitope (AT20), located at the protein N-terminal region, and different receptors expressed on target cells. This finding corroborates the importance of impeding p17/p17 receptors interaction as a contribution to block AIDS. In this article we review the interaction of p17 with heparan sulfate proteoglycans (HSPGs) and with the chemokine (C-X-C motif) receptor 1 (CXCR1) and 2 (CXCR2). We provide details on how p17 interacts with its receptors and how these interactions are central to the p17 biological activities. Moreover, we highlight the existence of a p17 variant, named S75X, which displays opposite effects on B-cell proliferation as compared to p17. A two-site model for p17 interaction with G-coupled receptors provides a possible explanation on how mutations naturally occurring within the primary amino acid structure can lead S75X to activate the Akt signaling pathway and to promote B-cell growth and transformation. Identification of p17 interaction with HSPGs, CXCR1 and CXCR2 as a fundamental event in supporting its activity could help to find new treatment approaches aimed at blocking all p17/p17 receptors interactions and, consequently, p17 detrimental activities.
Insights
The HIV-1 matrix protein p17 (p17) interacts with cell receptors, driving AIDS pathogenesis. Blocking these interactions, including with HSPGs, CXCR1, and CXCR2, offers a potential new HIV treatment strategy.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- The HIV-1 matrix protein p17 (p17) is released extracellularly and accumulates in patients, even those on therapy.
- Extracellular p17 disrupts cellular functions implicated in AIDS pathogenesis.
- p17's actions rely on its N-terminal epitope (AT20) interacting with cell receptors.
Purpose of the Study:
- To review the interactions of p17 with specific receptors: heparan sulfate proteoglycans (HSPGs), CXCR1, and CXCR2.
- To detail the mechanisms of these interactions and their centrality to p17's biological activities.
- To explore a p17 variant (S75X) with opposing effects on B-cell proliferation.
Main Methods:
- Literature review focusing on p17-receptor interactions.
- Analysis of molecular mechanisms underlying p17's biological activities.
- Discussion of a two-site model for p17 interaction with G-protein coupled receptors.
Main Results:
- p17 interacts with HSPGs, CXCR1, and CXCR2, which are fundamental to its activity.
- A p17 variant, S75X, activates Akt signaling and promotes B-cell growth, unlike wild-type p17.
- Mutations in p17's amino acid structure can alter its signaling pathway activation.
Conclusions:
- Impeding p17/receptor interactions is a promising strategy to block AIDS progression.
- Understanding p17's interactions with HSPGs, CXCR1, and CXCR2 can lead to novel therapeutic approaches.
- Targeting these interactions could mitigate the detrimental activities of extracellular p17.
More Related Videos
08:11Assessing the Innate Sensing of HIV-1 Infected CD4+ T Cells by Plasmacytoid Dendritic Cells Using an Ex vivo Co-culture System.
Published on: September 1, 2015
07:22A High-throughput Cre-Lox Activated Viral Membrane Fusion Assay to Identify Inhibitors of HIV-1 Viral Membrane Fusion
Published on: August 14, 2018
Related Concept Videos
Matrix Proteoglycans and Glycoproteins
Extracellular Matrix
Retroviruses
Retrovirus Life Cycles