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152 result(s) for "Spumavirus - genetics"
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Tenth International Foamy Virus Conference 2014–Achievements and Perspectives
For the past two decades, scientists from around the world, working on different aspects of foamy virus (FV) research, have gathered in different research institutions almost every two years to present their recent results in formal talks, to discuss their ongoing studies informally, and to initiate fruitful collaborations. In this report we review the 2014 anniversary conference to share the meeting summary with the virology community and hope to arouse interest by other researchers to join this exciting field. The topics covered included epidemiology, virus molecular biology, and immunology of FV infection in non-human primates, cattle, and humans with zoonotic FV infections, as well as recent findings on endogenous FVs. Several topics focused on virus replication and interactions between viral and cellular proteins. Use of FV in biomedical research was highlighted with presentations on using FV vectors for gene therapy and FV proteins as scaffold for vaccine antigen presentation. On behalf of the FV community, this report also includes a short tribute to commemorate Prof. Axel Rethwilm, one of the leading experts in the field of retrovirology and foamy viruses, who passed away 29 July 2014.
Structural basis for retroviral integration into nucleosomes
Retroviruses such as HIV rely on the intasome, a tetramer of integrase protein bound to the viral DNA ends interacting with host chromatin, for integration into the host genome; the structure of the intasome as it interacts with a nucleosome is now solved, giving insight into the integration process. Pinpointing retroviral integration preference Retroviruses such as HIV have an RNA genome that is reverse-copied into double-stranded DNA, which subsequently inserts into the host genome. The integration process involves an intasome — a tetramer of integrase proteins bound to the viral DNA ends interacting with host chromatin. Peter Cherepanov and colleagues have solved the structure of the intasome as it interacts with a nucleosome, the basic block of chromatin composed of a histone octamer around which DNA is spooled. They find that the intasome lifts the DNA off the octamer at the region of the H2A–H2B heterodimer. This property dictates the location of viral DNA integration, and abolishing these contacts leads to loss of integration positioning preference. Retroviral integration is catalysed by a tetramer of integrase (IN) assembled on viral DNA ends in a stable complex, known as the intasome 1 , 2 . How the intasome interfaces with chromosomal DNA, which exists in the form of nucleosomal arrays, is currently unknown. Here we show that the prototype foamy virus (PFV) intasome is proficient at stable capture of nucleosomes as targets for integration. Single-particle cryo-electron microscopy reveals a multivalent intasome–nucleosome interface involving both gyres of nucleosomal DNA and one H2A–H2B heterodimer. While the histone octamer remains intact, the DNA is lifted from the surface of the H2A–H2B heterodimer to allow integration at strongly preferred superhelix location ±3.5 positions. Amino acid substitutions disrupting these contacts impinge on the ability of the intasome to engage nucleosomes in vitro and redistribute viral integration sites on the genomic scale. Our findings elucidate the molecular basis for nucleosome capture by the viral DNA recombination machinery and the underlying nucleosome plasticity that allows integration.
Retroviral intasome architecture shapes the dynamics of target DNA search and integration
Recombinant retroviral intasomes assembled from purified integrase (IN) and oligonucleotides mimicking viral DNA ends (vDNA) faithfully recapitulate concerted integration in vitro. Structural studies of retroviral intasomes have revealed an array of IN oligomer forms, which appear to share a conserved intasome core coordinating the vDNA ends for strand transfer into target DNA. Here we have explored the biochemical and dynamic properties of the mouse mammary tumor virus (MMTV) octameric intasome. We show that MMTV intasomes continue to accumulate concerted integration products for ~80 min in vitro, whereas prototype foamy virus (PFV) intasomes plateau within ~2 min. MMTV integration activity peaks within the range of physiological ionic strength and is more active in the presence of manganese compared to magnesium. Single-molecule images demonstrate that the target DNA search by MMTV intasomes appears rate-limiting, similar to PFV intasomes. The time between strand transfer of the two MMTV vDNA ends into the target DNA is ~ 3 fold slower than PFV intasomes. This is the first report of the dynamics of an orthoretrovirus intasome interacting with target DNA with single molecule resolution.
DNA strand breaks and gaps target retroviral intasome binding and integration
Retrovirus integration into a host genome is essential for productive infections. The integration strand transfer reaction is catalyzed by a nucleoprotein complex (Intasome) containing the viral integrase (IN) and the reverse transcribed (RT) copy DNA (cDNA). Previous studies suggested that DNA target-site recognition limits intasome integration. Using single molecule Förster resonance energy transfer (smFRET), we show prototype foamy virus (PFV) intasomes specifically bind to DNA strand breaks and gaps. These break and gap DNA discontinuities mimic oxidative base excision repair (BER) lesion-processing intermediates that have been shown to affect retrovirus integration in vivo. The increased DNA binding events targeted strand transfer to the break/gap site without inducing substantial intasome conformational changes. The major oxidative BER substrate 8-oxo-guanine as well as a G/T mismatch or +T nucleotide insertion that typically introduce a bend or localized flexibility into the DNA, did not increase intasome binding or targeted integration. These results identify DNA breaks or gaps as modulators of dynamic intasome-target DNA interactions that encourage site-directed integration. Here the authors use biochemical assays and single molecule imaging to show that DNA breaks and single-stranded gaps modulate dynamic PFV retroviral intasome interactions with target DNA and encourage site-specific integration.
Functional dissection of the prototype foamy virus glycoprotein heparan sulfate binding site
Background The foamy virus (FV) glycoprotein complex (GPC) facilitates exceptionally broad species and tissue tropism. While cell surface heparan sulfate (HS) serves as a known attachment factor, it is not essential for viral entry. Recent high-resolution structures of GPCs from various FV species identified an evolutionarily conserved, positively charged surface patch (PCSP) on the receptor-binding domain (RBD) as a putative HS-binding site (HSBS). To date, only the gorilla FV (SFVggo) HSBS has been functionally characterized, demonstrating the role of basic PCSP residues in HS-dependent attachment. Experimental evidence supporting a universal role for the GPC PCSP across other FV species is currently lacking. Results The prototype FV (PFV) GPC PCSP consists of four central residues surrounded by five peripheral, positively charged residues. Using charge-switch mutagenesis, we investigated the functional role of eight PCSP residues. The central residues—K 343 , K 355 , R 357 , and K 368 —proved essential for HS-dependent attachment and infection across various target cells. Individual mutations of these residues reduced attachment and infectivity in HT1080 cells by 50- to 100-fold. Among peripheral residues, only K 356 contributed significantly to these processes on different HS-expressing target cells. Notably, all mutant PFV GPCs maintained levels of attachment and infectivity in HS-deficient cells similar to those of the wild-type, though these levels were 10- to 30-fold lower than in HS-expressing parental cells but well above background. Conclusions The minimal HSBS of the PFV GPC is defined by four central, evolutionarily conserved positively charged residues. Substituting these with negatively charged amino acids abolishes HS-dependent attachment and severely reduces specific infectivity. The minor impact of the peripheral residue mutation K 356 E, combined with the lack of evolutionary conservation among most peripheral positively charged residues in primate FV species, suggests these residues play only a secondary role in HS interaction. Furthermore, the residual infectivity of PCSP mutants in HS-deficient cells confirms that HS is an important attachment factor but not an essential entry receptor. The functional homology between PFV and SFVggo GPCs strongly suggests that this conserved PCSP constitutes a universal HS-binding site across all FV species.
The free energy landscape of retroviral integration
Retroviral integration, the process of covalently inserting viral DNA into the host genome, is a point of no return in the replication cycle. Yet, strand transfer is intrinsically iso-energetic and it is not clear how efficient integration can be achieved. Here we investigate the dynamics of strand transfer and demonstrate that consecutive nucleoprotein intermediates interacting with a supercoiled target are increasingly stable, resulting in a net forward rate. Multivalent target interactions at discrete auxiliary interfaces render target capture irreversible, while allowing dynamic site selection. Active site binding is transient but rapidly results in strand transfer, which in turn rearranges and stabilizes the intasome in an allosteric manner. We find the resulting strand transfer complex to be mechanically stable and extremely long-lived, suggesting that a resolving agent is required in vivo. Retroviral integration of DNA into the host genome is a point of no return in the replication cycle but how efficient integration can take place remains unclear. Here the authors demonstrate that consecutive nucleoprotein intermediates are increasingly stable, resulting in a net forward rate.
Retroviral foamy virus gag induces parkin-dependent mitophagy
Background Prototype foamy virus (PFV) is a complex retrovirus that can maintain latent infection for life after viral infection of the host. However, the mechanism of latent infection with PFV remains unclear. Our previous studies have shown that PFV promotes autophagy flux, but whether PFV causes mitophagy remains unclear. Results In this study, we demonstrated that PFV infection damages mitochondria, increases mitochondria reactive oxygen species (mtROS) production, and induces mitophagy in a time-dependent manner. Further investigation revealed that PFV Gag is a crucial protein responsible for triggering mitophagy. The overexpression of Gag leads to mitochondrial damage and stimulates mitophagy in a dose-dependent manner. Additionally, overexpression of Gag activates the PINK1-Parkin signaling pathway, while the knockdown of Parkin inhibits Gag-induced mitophagy. Furthermore, Rab5a was significantly upregulated in cells overexpressed Gag, and the inhibition of Rab5a reversed the effects of Gag-induced mitophagy. Conclusions Our data suggested that PFV can induce mitophagy and Gag induces Parkin-dependent mitophagy by upregulating Rab5a. These findings not only enhance a better understanding of the foamy virus infection mechanisms but also provide critical insights into novel virus-host cell interactions.
The Regulation of Prototype Foamy Virus 5'Long Terminal Repeats and Internal Promoter by Endogenous Transcription Factors
For foamy virus, the transactivator of spumaretrovirus (Tas) could bind directly to target DNA sequences termed as Tas responsive elements and trigger the viral internal promoter (IP) and long terminal repeat (LTR) promoters. The cellular endogenous factors also play an important role in viral gene expressions. We hypothesized that except the viral transcription factor Tas, the cellular endogenous factors also affect the viral gene expression. The full length of the prototype foamy virus (PFV) genome (U21247) was used to predict the potential binding sites of the transcription factors by online software JASPAR (http://jaspar.genereg.net) and Softberry (http://linux1.softberry.com/berry.phtml?topic=index&group=programs&subgroup=promoter). The Dual-Luciferase® Reporter Assay System (Promega, USA) was used to confirm the relative luciferase activities of the test groups. The different representative activating agents or inhibitors of each canonical signal pathway were used to identify the impact of these pathways on PFV 5'LTR and IP promoters. The results showed different cellular endogenous factors might have respective effects on PFV 5'LTR and IP. It is worth mentioning that activator protein-1 and BCL2-associated athanogene 3, 2 kinds of vital proteins associated with NF-κB and PKC pathways, could activate the basal activity of 5'LTR and IP promoters but inhibit the Tas-regulated activity of both promoters. Furthermore, PFV Tas was identified to trigger the transcription of the NF-κB promoter. NF-κB had a negative effect on PFV 5'LTR and IP promoter activities, the PKC pathway might upregulate 5'LTR and IP promoter activities, and the JNK and NF-AT signal pathway could increase the Tas-regulated promoter activity of PFV 5'LTR. This study sheds light on the interaction between PFV and the host cell and may help utilize the viral promoters in retroviral vectors designed for gene transfer experiments.
Thirteenth International Foamy Virus Conference—Meeting Report
The 13th International Foamy Virus (FV) Conference was held from 8 to 10 November 2023 at the BioParque/Zoological Garden in Rio de Janeiro, Brazil. This was the first conference on spumaretroviruses to be held in the Southern Hemisphere and in the unique environment of the rainforest. New developments and current perspectives in FV research were presented. Highlights of the conference included the structural biology of the envelope protein (Env) and insights into its function and evolution, epidemiologic identification of Amazonian indigenous people with a high prevalence of simian FV (SFV) infections, investigations of virus biology and genomics using synthetic FV DNAs, studies of humoral immune response, and development and applications of SFV vectors. The last day of the meeting was a special tour of the Centro de Primatologia do Rio de Janeiro, located northeast of Rio de Janeiro amidst the protected rainforest, where New World primate hosts of spumaretroviruses are rescued and studied. Our report summarizes the meeting highlights and outcomes for future discussions.
Macroevolution of Complex Retroviruses
Retroviruses can leave a \"fossil record\" in their hosts' genomes in the form of endogenous retroviruses. Foamy viruses, complex retroviruses that infect mammals, have been notably absent from this record. We have found an endogenous foamy virus within the genomes of sloths and show that foamy viruses were infecting mammals more than 100 million years ago and codiverged with their hosts across an entire geological era. Our analysis highlights the role of evolutionary constraint in maintaining viral genome structure and indicates that accessory genes and mammalian mechanisms of innate immunity are the products of macroevolutionary conflict played out over a geological time scale.