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1.
Nature ; 626(8000): 843-851, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38267583

ABSTRACT

HIV-1 infection requires nuclear entry of the viral genome. Previous evidence suggests that this entry proceeds through nuclear pore complexes (NPCs), with the 120 × 60 nm capsid squeezing through an approximately 60-nm-wide central channel1 and crossing the permeability barrier of the NPC. This barrier can be described as an FG phase2 that is assembled from cohesively interacting phenylalanine-glycine (FG) repeats3 and is selectively permeable to cargo captured by nuclear transport receptors (NTRs). Here we show that HIV-1 capsid assemblies can target NPCs efficiently in an NTR-independent manner and bind directly to several types of FG repeats, including barrier-forming cohesive repeats. Like NTRs, the capsid readily partitions into an in vitro assembled cohesive FG phase that can serve as an NPC mimic and excludes much smaller inert probes such as mCherry. Indeed, entry of the capsid protein into such an FG phase is greatly enhanced by capsid assembly, which also allows the encapsulated clients to enter. Thus, our data indicate that the HIV-1 capsid behaves like an NTR, with its interior serving as a cargo container. Because capsid-coating with trans-acting NTRs would increase the diameter by 10 nm or more, we suggest that such a 'self-translocating' capsid undermines the size restrictions imposed by the NPC scaffold, thereby bypassing an otherwise effective barrier to viral infection.


Subject(s)
Capsid Proteins , Capsid , Glycine , HIV-1 , Nuclear Pore Complex Proteins , Nuclear Pore , Phenylalanine , Humans , Active Transport, Cell Nucleus , Capsid/chemistry , Capsid/metabolism , Glycine/metabolism , HIV-1/chemistry , HIV-1/genetics , HIV-1/metabolism , Nuclear Pore/chemistry , Nuclear Pore/metabolism , Nuclear Pore/virology , Nuclear Pore Complex Proteins/chemistry , Nuclear Pore Complex Proteins/metabolism , Permeability , Phenylalanine/metabolism , Solubility , Virus Internalization , Capsid Proteins/chemistry , Capsid Proteins/metabolism
2.
Nature ; 626(8000): 836-842, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38267582

ABSTRACT

HIV can infect non-dividing cells because the viral capsid can overcome the selective barrier of the nuclear pore complex and deliver the genome directly into the nucleus1,2. Remarkably, the intact HIV capsid is more than 1,000 times larger than the size limit prescribed by the diffusion barrier of the nuclear pore3. This barrier in the central channel of the nuclear pore is composed of intrinsically disordered nucleoporin domains enriched in phenylalanine-glycine (FG) dipeptides. Through multivalent FG interactions, cellular karyopherins and their bound cargoes solubilize in this phase to drive nucleocytoplasmic transport4. By performing an in vitro dissection of the nuclear pore complex, we show that a pocket on the surface of the HIV capsid similarly interacts with FG motifs from multiple nucleoporins and that this interaction licences capsids to penetrate FG-nucleoporin condensates. This karyopherin mimicry model addresses a key conceptual challenge for the role of the HIV capsid in nuclear entry and offers an explanation as to how an exogenous entity much larger than any known cellular cargo may be able to non-destructively breach the nuclear envelope.


Subject(s)
Capsid Proteins , Glycine , HIV , Karyopherins , Molecular Mimicry , Nuclear Pore Complex Proteins , Nuclear Pore , Phenylalanine , Humans , Active Transport, Cell Nucleus , Capsid Proteins/chemistry , Capsid Proteins/metabolism , Diffusion , Dipeptides/chemistry , Dipeptides/metabolism , Glycine/metabolism , HIV/chemistry , HIV/metabolism , In Vitro Techniques , Intrinsically Disordered Proteins/chemistry , Intrinsically Disordered Proteins/metabolism , Karyopherins/metabolism , Nuclear Pore/chemistry , Nuclear Pore/metabolism , Nuclear Pore/virology , Nuclear Pore Complex Proteins/chemistry , Nuclear Pore Complex Proteins/metabolism , Permeability , Phenylalanine/metabolism , Solubility , Virus Internalization , Capsid/chemistry , Capsid/metabolism
3.
Viruses ; 13(8)2021 07 22.
Article in English | MEDLINE | ID: mdl-34452291

ABSTRACT

HIV-1 can infect non-dividing cells. The nuclear envelope therefore represents a barrier that HIV-1 must traverse in order to gain access to the host cell chromatin for integration. Hence, nuclear entry is a critical step in the early stages of HIV-1 replication. Following membrane fusion, the viral capsid (CA) lattice, which forms the outer face of the retroviral core, makes numerous interactions with cellular proteins that orchestrate the progress of HIV-1 through the replication cycle. The ability of CA to interact with nuclear pore proteins and other host factors around the nuclear pore determines whether nuclear entry occurs. Uncoating, the process by which the CA lattice opens and/or disassembles, is another critical step that must occur prior to integration. Both early and delayed uncoating have detrimental effects on viral infectivity. How uncoating relates to nuclear entry is currently hotly debated. Recent technological advances have led to intense discussions about the timing, location, and requirements for uncoating and have prompted the field to consider alternative uncoating scenarios that presently focus on uncoating at the nuclear pore and within the nuclear compartment. This review describes recent advances in the study of HIV-1 nuclear entry, outlines the interactions of the retroviral CA protein, and discusses the challenges of investigating HIV-1 uncoating.


Subject(s)
Capsid Proteins/metabolism , Capsid/metabolism , Cell Nucleus/virology , HIV Infections/virology , HIV-1/physiology , Virus Uncoating , Animals , Cell Nucleus/metabolism , HIV-1/genetics , Host-Pathogen Interactions , Humans , Nuclear Envelope/physiology , Nuclear Envelope/virology , Nuclear Pore/physiology , Nuclear Pore/virology , Retroviridae/physiology , Reverse Transcription
4.
Viruses ; 13(6)2021 06 20.
Article in English | MEDLINE | ID: mdl-34203080

ABSTRACT

Viruses are pathogens that have evolved to hijack the cellular machinery to replicate themselves and spread to new cells. During the course of evolution, viruses developed different strategies to overcome the cellular defenses and create new progeny. Among them, some RNA and many DNA viruses require access to the nucleus to replicate their genome. In non-dividing cells, viruses can only access the nucleus through the nuclear pore complex (NPC). Therefore, viruses have developed strategies to usurp the nuclear transport machinery and gain access to the nucleus. The majority of these viruses use the capsid to manipulate the nuclear import machinery. However, the particular tactics employed by each virus to reach the host chromatin compartment are very different. Nevertheless, they all require some degree of capsid remodeling. Recent notions on the interplay between the viral capsid and cellular factors shine new light on the quest for the nuclear entry step and for the fate of these viruses. In this review, we describe the main components and function of nuclear transport machinery. Next, we discuss selected examples of RNA and DNA viruses (HBV, HSV, adenovirus, and HIV) that remodel their capsid as part of their strategies to access the nucleus and to replicate.


Subject(s)
Capsid/metabolism , Cell Nucleus/metabolism , Cell Nucleus/virology , Host Microbial Interactions , Viruses/metabolism , Active Transport, Cell Nucleus , Humans , Nuclear Pore/virology , Virion/metabolism , Virus Physiological Phenomena , Virus Replication
5.
Cell ; 184(4): 1032-1046.e18, 2021 02 18.
Article in English | MEDLINE | ID: mdl-33571428

ABSTRACT

Human immunodeficiency virus (HIV-1) remains a major health threat. Viral capsid uncoating and nuclear import of the viral genome are critical for productive infection. The size of the HIV-1 capsid is generally believed to exceed the diameter of the nuclear pore complex (NPC), indicating that capsid uncoating has to occur prior to nuclear import. Here, we combined correlative light and electron microscopy with subtomogram averaging to capture the structural status of reverse transcription-competent HIV-1 complexes in infected T cells. We demonstrated that the diameter of the NPC in cellulo is sufficient for the import of apparently intact, cone-shaped capsids. Subsequent to nuclear import, we detected disrupted and empty capsid fragments, indicating that uncoating of the replication complex occurs by breaking the capsid open, and not by disassembly into individual subunits. Our data directly visualize a key step in HIV-1 replication and enhance our mechanistic understanding of the viral life cycle.


Subject(s)
Capsid/metabolism , HIV-1/metabolism , Nuclear Pore/metabolism , Active Transport, Cell Nucleus , Capsid/ultrastructure , Cryoelectron Microscopy , HEK293 Cells , HIV Infections/virology , HIV-1/ultrastructure , Humans , Models, Biological , Nuclear Pore/ultrastructure , Nuclear Pore/virology , Reverse Transcription , Virion/metabolism , Virus Internalization , mRNA Cleavage and Polyadenylation Factors/metabolism
6.
Viruses ; 13(2)2021 01 22.
Article in English | MEDLINE | ID: mdl-33499411

ABSTRACT

Understanding the detailed nuclear import kinetics of adeno-associated virus (AAV) through the nuclear pore complex (NPC) is essential for the application of AAV capsids as a nuclear delivery instrument as well as a target for drug development. However, a comprehensive understanding of AAV transport through the sub-micrometer NPCs in live cells calls for new techniques that can conquer the limitations of conventional fluorescence microscopy and electron microscopy. With recent technical advances in single-molecule fluorescence microscopy, we are now able to image the entire nuclear import process of AAV particles and also quantify the transport dynamics of viral particles through the NPCs in live human cells. In this review, we initially evaluate the necessity of single-molecule live-cell microscopy in the study of nuclear import for AAV particles. Then, we detail the application of high-speed single-point edge-excitation sub-diffraction (SPEED) microscopy in tracking the entire process of nuclear import for AAV particles. Finally, we summarize the major findings for AAV nuclear import by using SPEED microscopy.


Subject(s)
Active Transport, Cell Nucleus , Cell Nucleus/virology , Dependovirus/metabolism , Nuclear Pore/virology , Single Molecule Imaging , Capsid/metabolism , Cell Line , Cell Nucleus/metabolism , Humans , Microscopy, Fluorescence , Nuclear Pore/metabolism
7.
Sci China Life Sci ; 64(1): 66-76, 2021 Jan.
Article in English | MEDLINE | ID: mdl-32430850

ABSTRACT

It is recognized that HIV-1 capsid cores are disassembled in the cytoplasm, releasing their genomes into the nucleus through nuclear pores, but there is also evidence showing the capsid (CA) exists in the nucleus. Whether HIV-1 enters the nucleus and how it enters the nucleus through the undersized nuclear pore remains mysterious. Based on multicolor labeling and real-time imaging of the viral and cellular components, our observations via light and electron microscopy suggest that HIV-1 selectively gathered at the microtubule organization center (MTOC), leading the nearby nuclear envelope (NE) to undergo deformation, invagination and restoration to form a nuclear vesicle in which the viral particles were wrapped; then, the inner membrane of the nuclear vesicle ruptured to release HIV-1 into the nucleus. This unexpected discovery expands our understanding of the complexity of HIV-1 nuclear entry, which may provide new insights to HIV-1 virology.


Subject(s)
Capsid Proteins/metabolism , Cell Nucleus/metabolism , Endocytosis , HIV-1/metabolism , Nuclear Pore/metabolism , Virion/metabolism , Active Transport, Cell Nucleus , Cell Line, Tumor , Cell Nucleus/ultrastructure , Cell Nucleus/virology , HEK293 Cells , HIV Infections/virology , HIV-1/genetics , HIV-1/physiology , Humans , Microscopy, Confocal , Microscopy, Electron, Transmission , Microtubule-Organizing Center/metabolism , Microtubule-Organizing Center/virology , Nuclear Envelope/metabolism , Nuclear Envelope/ultrastructure , Nuclear Envelope/virology , Nuclear Pore/ultrastructure , Nuclear Pore/virology , Time-Lapse Imaging/methods , Virion/ultrastructure
8.
Nat Microbiol ; 5(9): 1088-1095, 2020 09.
Article in English | MEDLINE | ID: mdl-32483230

ABSTRACT

Retroviral infection involves the reverse transcription of the viral RNA genome into DNA, which is subsequently integrated into the host cell genome. Human immunodeficiency virus type 1 (HIV-1) and other lentiviruses mediate the infection of non-dividing cells through the ability of the capsid protein1 to engage the cellular nuclear import pathways of the target cell and mediate their nuclear translocation through components of the nuclear pore complex2-4. Although recent studies have observed the presence of the capsid protein in the nucleus during infection5-8, reverse transcription and disassembly of the viral core have conventionally been considered to be cytoplasmic events. Here, we use an inducible nuclear pore complex blockade to monitor the kinetics of HIV-1 nuclear import and define the biochemical staging of these steps of infection. Surprisingly, we observe that nuclear import occurs with relatively rapid kinetics (<5 h) and precedes the completion of reverse transcription in target cells, demonstrating that reverse transcription is completed in the nucleus. We also observe that HIV-1 remains susceptible to the capsid-destabilizing compound PF74 following nuclear import, revealing that uncoating is completed in the nucleus. Additionally, we observe that certain capsid mutants are insensitive to a Nup62-mediated nuclear pore complex blockade in cells that potently block infection by wild-type capsid, demonstrating that HIV-1 can use distinct nuclear import pathways during infection. These studies collectively define the spatio-temporal staging of critical steps of HIV-1 infection and provide an experimental system to separate and thereby define the cytoplasmic and nuclear stages of infection by other viruses.


Subject(s)
Cell Nucleus/metabolism , HIV Infections/virology , HIV-1/genetics , Nuclear Pore/metabolism , Nuclear Pore/virology , Reverse Transcription , Active Transport, Cell Nucleus , CD4-Positive T-Lymphocytes/virology , Capsid/metabolism , Capsid Proteins/metabolism , Cytoplasm/metabolism , HEK293 Cells , HIV-1/physiology , HeLa Cells , Host-Pathogen Interactions , Humans , Indoles , Macrophages/virology , Phenylalanine/analogs & derivatives , Virus Replication
9.
Cell Rep ; 29(12): 3785-3795.e8, 2019 12 17.
Article in English | MEDLINE | ID: mdl-31851912

ABSTRACT

Adenoviruses (AdVs) cause respiratory, ocular, and gastrointestinal tract infection and inflammation in immunocompetent people and life-threatening disease upon immunosuppression. AdV vectors are widely used in gene therapy and vaccination. Incoming particles attach to nuclear pore complexes (NPCs) of post-mitotic cells, then rupture and deliver viral DNA (vDNA) to the nucleus or misdeliver to the cytosol. Our genome-wide RNAi screen in AdV-infected cells identified the RING-type E3 ubiquitin ligase Mind bomb 1 (Mib1) as a proviral host factor for AdV infection. Mib1 is implicated in Notch-Delta signaling, ciliary biogenesis, and RNA innate immunity. Mib1 depletion arrested incoming AdVs at NPCs. Induced expression of full-length but not ligase-defective Mib1 in knockout cells triggered vDNA uncoating from NPC-tethered virions, nuclear import, misdelivery of vDNA, and vDNA expression. Mib1 is an essential host factor for AdV uncoating in human cells, and it provides a new concept for licensing virion DNA delivery through the NPC.


Subject(s)
Adenoviridae Infections/virology , Adenoviridae/genetics , Genome, Viral , Nuclear Pore/virology , Ubiquitin-Protein Ligases/metabolism , Ubiquitin/metabolism , Virus Replication , Active Transport, Cell Nucleus , Adenoviridae/immunology , Adenoviridae Infections/genetics , Adenoviridae Infections/immunology , DNA, Viral/genetics , HEK293 Cells , HeLa Cells , Humans , Nuclear Pore/genetics , Protein Binding , RNA Interference , Ubiquitin-Protein Ligases/antagonists & inhibitors , Ubiquitin-Protein Ligases/genetics , Ubiquitination , Virion
10.
Nat Commun ; 10(1): 4059, 2019 09 06.
Article in English | MEDLINE | ID: mdl-31492853

ABSTRACT

HIV-1 recurrently targets active genes and integrates in the proximity of the nuclear pore compartment in CD4+ T cells. However, the genomic features of these genes and the relevance of their transcriptional activity for HIV-1 integration have so far remained unclear. Here we show that recurrently targeted genes are proximal to super-enhancer genomic elements and that they cluster in specific spatial compartments of the T cell nucleus. We further show that these gene clusters acquire their location during the activation of T cells. The clustering of these genes along with their transcriptional activity are the major determinants of HIV-1 integration in T cells. Our results provide evidence of the relevance of the spatial compartmentalization of the genome for HIV-1 integration, thus further strengthening the role of nuclear architecture in viral infection.


Subject(s)
CD4-Positive T-Lymphocytes/metabolism , Cell Nucleus/genetics , Enhancer Elements, Genetic , HIV-1/genetics , Virus Integration/genetics , Base Sequence , CD4-Positive T-Lymphocytes/virology , Cell Nucleus/metabolism , Cell Nucleus/virology , Chromatin/genetics , Chromatin/virology , HIV Infections/genetics , HIV Infections/immunology , HIV Infections/virology , HIV-1/physiology , Humans , Nuclear Pore/genetics , Nuclear Pore/virology , Promoter Regions, Genetic/genetics , Transcription, Genetic
12.
J Virol ; 92(19)2018 10 01.
Article in English | MEDLINE | ID: mdl-29997211

ABSTRACT

Human immunodeficiency virus type 1 (HIV-1) displays the unique ability to infect nondividing cells. The capsid of HIV-1 is the viral determinant for viral nuclear import. To understand the cellular factors involved in the ability of HIV-1 to infect nondividing cells, we sought to find capsid mutations that allow the virus to infect dividing but not nondividing cells. Because the interaction of capsid with the nucleoporin protein 153 (Nup153) is important for nuclear import of HIV-1, we solved new crystal structures of hexameric HIV-1 capsid in complex with a Nup153-derived peptide containing a phenylalanine-glycine repeat (FG repeat), which we used to guide structure-based mutagenesis of the capsid-binding interface. HIV-1 viruses with mutations in these capsid residues were tested for their ability to infect dividing and nondividing cells. HIV-1 viruses with capsid N57 substitutions infected dividing but not nondividing cells. Interestingly, HIV-1 viruses with N57 mutations underwent reverse transcription but not nuclear translocation. The mutant capsids also lost the ability to interact with Nup153 and CPSF6. The use of small molecules PF74 and BI-2 prevented the interaction of FG-containing nucleoporins (Nups), such as Nup153, with the HIV-1 core. Analysis of integration sites in HIV-1 viruses with N57 mutations revealed diminished integration into transcriptionally active genes in a manner resembling that of HIV-1 in CPSF6 knockout cells or that of HIV-1-N74D. The integration pattern of the N57 mutant HIV-1 can be explained by loss of capsid interaction with CPSF6, whereas capsid interaction with Nup153 is required for HIV-1 to infect nondividing cells. Additionally, the observed viral integration profiles suggested that integration site selection is a multiparameter process that depends upon nuclear factors and the state of the cellular chromatin.IMPORTANCE One of the key advantages that distinguish lentiviruses, such as HIV-1, from all other retroviruses is its ability to infect nondividing cells. Interaction of the HIV-1 capsid with Nup153 and CPSF6 is important for nuclear entry and integration; however, the contribution of each of these proteins to nuclear import and integration is not clear. Using genetics, we demonstrated that these proteins contribute to different processes: Nup153 is essential for the HIV-1 nuclear import in nondividing cells, and CPSF6 is important for HIV-1 integration. In addition, nuclear factors such as CPSF6 and the state of the chromatin are known to be important for integration site selection; nevertheless, the preferential determinant influencing integration site selection is not known. This work demonstrates that integration site selection is a multiparameter process that depends upon nuclear factors and the state of the cellular chromatin.


Subject(s)
Capsid/metabolism , Cell Division , HIV-1/metabolism , Mutation , Nuclear Pore Complex Proteins/metabolism , Nuclear Pore/metabolism , Active Transport, Cell Nucleus/genetics , Cell Line , Gene Knockdown Techniques , HIV-1/genetics , Humans , Nuclear Pore/genetics , Nuclear Pore/virology , Nuclear Pore Complex Proteins/genetics , mRNA Cleavage and Polyadenylation Factors/genetics , mRNA Cleavage and Polyadenylation Factors/metabolism
13.
Cell Host Microbe ; 23(4): 536-548.e6, 2018 04 11.
Article in English | MEDLINE | ID: mdl-29649444

ABSTRACT

The HIV-1 core consists of capsid proteins (CA) surrounding viral genomic RNA. After virus-cell fusion, the core enters the cytoplasm and the capsid shell is lost through uncoating. CA loss precedes nuclear import and HIV integration into the host genome, but the timing and location of uncoating remain unclear. By visualizing single HIV-1 infection, we find that CA is required for core docking at the nuclear envelope (NE), whereas early uncoating in the cytoplasm promotes proteasomal degradation of viral complexes. Only docked cores exhibiting accelerated loss of CA at the NE enter the nucleus. Interestingly, a CA mutation (N74D) altering virus engagement of host factors involved in nuclear transport does not alter the uncoating site at the NE but reduces the nuclear penetration depth. Thus, CA protects HIV-1 complexes from degradation, mediates docking at the nuclear pore before uncoating, and determines the depth of nuclear penetration en route to integration.


Subject(s)
Active Transport, Cell Nucleus , HIV Core Protein p24/metabolism , HIV Infections/virology , HIV-1/physiology , Host-Pathogen Interactions , Nuclear Pore/virology , Virus Uncoating , HEK293 Cells , Humans , Microscopy, Fluorescence , Optical Imaging
14.
J Theor Biol ; 395: 87-96, 2016 Apr 21.
Article in English | MEDLINE | ID: mdl-26860658

ABSTRACT

Although HIV viremia in infected patients proceeds in a manner that may be accounted for by deterministic mathematical models, single virus-cell encounters following initial HIV exposure result in a variety of outcomes, only one of which results in a productive infection. The development of single molecule tracking techniques in living cells allows studies of intracellular transport of HIV, but it remains less clear what its impact may be on viral integration efficiency. Here, we present a stochastic intracellular mathematical model of HIV replication that incorporates microtubule transport of viral components. Using this model, we could study single round infections and observe how viruses entering cells reach one of three potential fates - degradation of the viral RNA genome, formation of LTR circles, or successful integration and establishment of a provirus. Our model predicts global trafficking properties, such as the probability and the mean time for a HIV viral particle to reach the nuclear pore. Interestingly, our model predicts that trafficking determines neither the probability or time of provirus establishment - instead, they are a function of vRNA degradation and reverse transcription reactions. Thus, our spatio-temporal model provides novel insights into the HIV infection process and may constitute a useful tool for the identification of promising drug targets.


Subject(s)
Genome, Viral/physiology , HIV Infections/metabolism , HIV-1/physiology , Models, Biological , RNA, Viral/metabolism , Virus Replication/physiology , Biological Transport, Active , Humans , Nuclear Pore/metabolism , Nuclear Pore/virology , Stochastic Processes
15.
Traffic ; 17(6): 569-92, 2016 06.
Article in English | MEDLINE | ID: mdl-26875443

ABSTRACT

Viruses are spherical or complex shaped carriers of proteins, nucleic acids and sometimes lipids and sugars. They are metastable and poised for structural changes. These features allow viruses to communicate with host cells during entry, and to release the viral genome, a process known as uncoating. Studies have shown that hundreds of host factors directly or indirectly support this process. The cell provides molecules that promote stepwise virus uncoating, and direct the virus to the site of replication. It acts akin to a snooker player who delivers accurate and timely shots (cues) to the ball (virus) to score. The viruses, on the other hand, trick (snooker) the host, hijack its homeostasis systems, and dampen innate immune responses directed against danger signals. In this review, we discuss how cellular cues, facilitators, and built-in viral mechanisms promote uncoating. Cues come from receptors, enzymes and chemicals that act directly on the virus particle to alter its structure, trafficking and infectivity. Facilitators are defined as host factors that are involved in processes which indirectly enhance entry or uncoating. Unraveling the mechanisms of virus uncoating will continue to enhance understanding of cell functions, and help counteracting infections with chemicals and vaccines.


Subject(s)
Virus Uncoating , Viruses/pathogenicity , Animals , Endosomes/virology , Humans , Nuclear Pore/virology , Viruses/metabolism
17.
Curr Opin Virol ; 12: 59-65, 2015 Jun.
Article in English | MEDLINE | ID: mdl-25846849

ABSTRACT

The nuclear import of viral genomes is an important step of the infectious cycle for viruses that replicate in the nucleus of their host cells. Although most viruses use the cellular nuclear import machinery or some components of this machinery, others have developed sophisticated ways to reach the nucleus. Some of these have been known for some time; however, recent studies have changed our understanding of how some non-enveloped DNA viruses access the nucleus. For example, parvoviruses enter the nucleus through small disruptions of the nuclear membranes and nuclear lamina, and adenovirus tugs at the nuclear pore complex, using kinesin-1, to disassemble their capsids and deliver viral proteins and genomes into the nucleus. Here we review recent findings of the nuclear import strategies of three small non-enveloped DNA viruses, including adenovirus, parvovirus, and the polyomavirus simian virus 40.


Subject(s)
Cell Nucleus/metabolism , Cell Nucleus/virology , DNA Viruses/physiology , DNA, Viral/metabolism , Nuclear Pore/virology , Active Transport, Cell Nucleus , Adenoviridae/physiology , DNA Viruses/genetics , Genome, Viral , Humans , Parvovirus/physiology , Simian virus 40/physiology , Virus Internalization , Virus Replication
18.
Traffic ; 15(11): 1266-81, 2014 Nov.
Article in English | MEDLINE | ID: mdl-25131140

ABSTRACT

Many viruses deliver their genomes into the nucleoplasm for viral transcription and replication. Here, we describe a novel cell-free system to elucidate specific interactions between viruses and nuclear pore complexes (NPCs). Nuclei reconstituted in vitro from egg extracts of Xenopus laevis, an established biochemical system to decipher nuclear functions, were incubated with GFP-tagged capsids of herpes simplex virus, an alphaherpesvirus replicating in the nucleus. Capsid binding to NPCs was analyzed using fluorescence and field emission scanning electron microscopy. Tegument-free capsids or viral capsids exposing inner tegument proteins on their surface bound to nuclei, while capsids inactivated by a high-salt treatment or covered by inner and outer tegument showed less binding. There was little binding of the four different capsid types to nuclei lacking functional NPCs. This novel approach provides a powerful system to elucidate the molecular mechanisms that enable viral structures to engage with NPCs. Furthermore, this assay could be expanded to identify molecular cues triggering viral genome uncoating and nuclear import of viral genomes.


Subject(s)
Capsid/metabolism , Nuclear Pore/metabolism , Active Transport, Cell Nucleus , Animals , Capsid/ultrastructure , Capsid Proteins/metabolism , Cell-Free System , Herpesvirus 1, Human/metabolism , Nuclear Pore/virology , Protein Binding , Xenopus
19.
PLoS Pathog ; 9(10): e1003744, 2013 Oct.
Article in English | MEDLINE | ID: mdl-24204278

ABSTRACT

Hepatitis C virus (HCV) infection induces formation of a membranous web structure in the host cell cytoplasm where the viral genome replicates and virions assemble. The membranous web is thought to concentrate viral components and hide viral RNA from pattern recognition receptors. We have uncovered a role for nuclear pore complex proteins (Nups) and nuclear transport factors (NTFs) in the membranous web. We show that HCV infection leads to increased levels of cytoplasmic Nups that accumulate at sites enriched for HCV proteins. Moreover, we detected interactions between specific HCV proteins and both Nups and NTFs. We hypothesize that cytoplasmically positioned Nups facilitate formation of the membranous web and contribute to the compartmentalization of viral replication. Accordingly, we show that transport cargo proteins normally targeted to the nucleus are capable of entering regions of the membranous web, and that depletion of specific Nups or Kaps inhibits HCV replication and assembly.


Subject(s)
Hepacivirus/physiology , Hepatitis C/metabolism , Intracellular Membranes/metabolism , Nuclear Pore/metabolism , Virus Replication/physiology , Active Transport, Cell Nucleus/genetics , Cell Line , Hepatitis C/genetics , Hepatitis C/pathology , Humans , Intracellular Membranes/virology , Nuclear Pore/genetics , Nuclear Pore/pathology , Nuclear Pore/virology
20.
Int Rev Cell Mol Biol ; 299: 117-59, 2012.
Article in English | MEDLINE | ID: mdl-22959302

ABSTRACT

The nuclear envelope (NE) is a vital structure that separates the nucleus from the cytoplasm. Because the NE is such a critical cellular barrier, many viral pathogens have evolved to modulate its permeability. They do this either by breaching the NE or by disrupting the integrity and functionality of the nuclear pore complex (NPC). Viruses modulate NE permeability for different reasons. Some viruses disrupt NE to deliver the viral genome into the nucleus for replication, while others cause NE disruption during nuclear egress of newly assembled capsids. Yet, other viruses modulate NE permeability and affect the compartmentalization of host proteins or block the nuclear transport of host proteins involved in the host antiviral response. Recent scientific advances demonstrated that other viruses use proteins of the NPC for viral assembly or disassembly. Here we review the ways in which various viruses affect NE and NPC during infection.


Subject(s)
Nuclear Envelope/pathology , Nuclear Pore Complex Proteins/metabolism , Nuclear Pore/pathology , Virus Diseases/pathology , Virus Diseases/virology , Viruses/metabolism , Nuclear Envelope/metabolism , Nuclear Envelope/virology , Nuclear Pore/metabolism , Nuclear Pore/virology
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