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Updated: Oct 29, 2025

Nucleocapsid Annealing-Mediated Electrophoresis NAME Assay Allows the Rapid Identification of HIV-1 Nucleocapsid Inhibitors
Published on: January 19, 2015
HIV-1 capsid exploitation of the host microtubule cytoskeleton during early infection
1Department of Microbiology-Immunology, Northwestern University Feinberg School of Medicine, Chicago, IL, USA. mojgan.naghavi@northwestern.edu.
Abstract:
Microtubules (MTs) form a filamentous array that provide both structural support and a coordinated system for the movement and organization of macromolecular cargos within the cell. As such, they play a critical role in regulating a wide range of cellular processes, from cell shape and motility to cell polarization and division. The array is radial with filament minus-ends anchored at perinuclear MT-organizing centers and filament plus-ends continuously growing and shrinking to explore and adapt to the intracellular environment. In response to environmental cues, a small subset of these highly dynamic MTs can become stabilized, acquire post-translational modifications and act as specialized tracks for cargo trafficking. MT dynamics and stability are regulated by a subset of highly specialized MT plus-end tracking proteins, known as +TIPs. Central to this is the end-binding (EB) family of proteins which specifically recognize and track growing MT plus-ends to both regulate MT polymerization directly and to mediate the accumulation of a diverse array of other +TIPs at MT ends. Moreover, interaction of EB1 and +TIPs with actin-MT cross-linking factors coordinate changes in actin and MT dynamics at the cell periphery, as well as during the transition of cargos from one network to the other. The inherent structural polarity of MTs is sensed by specialized motor proteins. In general, dynein directs trafficking of cargos towards the minus-end while most kinesins direct movement toward the plus-end. As a pathogenic cargo, HIV-1 uses the actin cytoskeleton for short-range transport most frequently at the cell periphery during entry before transiting to MTs for long-range transport to reach the nucleus. While the fundamental importance of MT networks to HIV-1 replication has long been known, recent work has begun to reveal the underlying mechanistic details by which HIV-1 engages MTs after entry into the cell. This includes mimicry of EB1 by capsid (CA) and adaptor-mediated engagement of dynein and kinesin motors to elegantly coordinate early steps in infection that include MT stabilization, uncoating (conical CA disassembly) and virus transport toward the nucleus. This review discusses recent advances in our understanding of how MT regulators and their associated motors are exploited by incoming HIV-1 capsid during early stages of infection.
Insights
Human immunodeficiency virus (HIV-1) exploits cellular microtubules (MTs) and their associated motor proteins for transport and replication. HIV-1 capsid mimics EB1 proteins to engage MTs, facilitating nuclear entry and infection.
Area of Science:
- Cell Biology
- Virology
- Molecular Biology
Background:
- Microtubules (MTs) are dynamic cytoskeletal polymers crucial for intracellular transport and cellular organization.
- MT dynamics and stability are regulated by plus-end tracking proteins (+TIPs), notably the EB family.
- HIV-1 infection relies on cellular machinery, including the cytoskeleton, for replication.
Purpose of the Study:
- To review recent advances in understanding how HIV-1 utilizes MTs during early infection stages.
- To elucidate the mechanisms by which HIV-1 engages MT regulators and motors.
- To highlight the exploitation of MTs for viral transport and replication.
Main Methods:
- Review of existing literature on MT dynamics, +TIPs, and HIV-1-cytoskeleton interactions.
- Analysis of molecular mechanisms involving HIV-1 capsid (CA) and MT-associated motor proteins.
- Integration of findings on actin-MT cross-linking and cargo transport.
Main Results:
- HIV-1 capsid (CA) mimics EB1 to interact with MT plus-ends.
- HIV-1 engages dynein and kinesin motors for directed transport towards the nucleus.
- The virus manipulates MT stability and facilitates uncoating during early infection.
Conclusions:
- HIV-1 actively exploits the cellular MT network and its regulatory proteins for efficient entry and nuclear transport.
- Understanding these interactions provides insights into viral pathogenesis and potential therapeutic targets.
- The virus employs sophisticated strategies to hijack host cell components for its life cycle.
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