PubMed HealthSearch

SEARCH · PubMed Health

Results for “host factor”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

The host factor required for RNA phage Qbeta RNA replication in vitro. Intracellular location, quantitation, and purification by polyadenylate-cellulose chromatography.

The Qbeta host factor, a heat-stable protein necessary in concert with Qbeta replicase for phage Qbeta RNA replication in vitro, has been localized in Escherichia coli and found to be associated primarily with ribosomes. This location has been established both by complement fixation assays with highly specific antiserum directed against the host factor, and by in vitro stimulation of Qbeta RNA replication by the Qbeta replicase. The complement fixation assay has provided the estimate that there are approximately 2500 copies of the host factor polypeptide per cell. The host factor is released from the ribosomes by a 1 M NH4Cl wash and concentrated by ammonium sulfate precipitation. It can be purified to apparent homogeneity in one further step by chromatography on poly(A)-cellulose. Ribosomal protein S1 subunit I of Qbeta replicase) also binds to the poly(A)-cellulose column and elutes before the host factor. In agreement with previous reports, we find that the host factor has a monomer molecular weight of 12,000 as judged by sodium dodecyl sulfate-polyacrylamide gels, and a native molecular weight of 72,000 as judged by the stoichiometric interaction of the host factor with Qbeta RNA, by sedimentation in sucrose velocity gradients, and by sodium dodecyl sulfate gel mobility when incompletely disaggregated. The Qbeta host factor is a potent inhibitor of an in vitro poly(A)-directed polylysine protein-synthesizing system, but has less effect on the in vitro translation of poly(U), R17 RNA, late T7 mRNA, or endogenous E. coli mRNA. The amino acid composition and NH2- terminal sequence rule out the host factor as one of the known 30 S or 50 S E. coli ribosomal proteins. The finding that the Qbeta host factor is associated with ribosomes in vivo completes the demonstration that all of the host-supplied proteins required for phage Qbeta RNA replication in vitro are either associated with ribosomes or are involved in the protein-synthetic machinery of the cell.

Animals

Exploring phage-host interactions in Burkholderia cepacia complex bacterium to reveal host factors and phage resistance genes using CRISPRi functional genomics and transcriptomics.

Complex interactions of bacteriophages with their bacterial hosts determine phage host range and infectivity. While phage defense systems and host factors have been identified in model bacteria, they remain challenging to predict in non-model bacteria. In this paper, we integrate functional genomics and transcriptomics to investigate phage-host interactions, revealing active phage resistance and host factor genes in Burkholderia cenocepacia K56-2. Burkholderia cepacia complex species are commonly found in soil and are opportunistic pathogens in immunocompromised patients. We studied infection of B. cenocepacia K56-2 with Bcep176, a temperate phage isolated from Burkholderia multivorans. A genome-wide dCas9 knockdown library targeting B. cenocepacia K56-2 was constructed, and a pooled infection experiment identified 63 novel genes or operons coding for candidate host factors or phage resistance genes. The activities of a subset of candidate host factor and resistance genes were validated via single-gene knockdowns. Transcriptomics of B. cenocepacia K56-2 during Bcep176 infection revealed that expression of genes coding for host factor and resistance candidates identified in this screen was significantly altered during infection by 4 h post-infection. Identifying which bacterial genes are involved in phage infection is important to understand the ecological niches of B. cenocepacia and its phages, and for designing phage therapies.IMPORTANCEBurkholderia cepacia complex bacteria are opportunistic pathogens inherently resistant to antibiotics, and phage therapy is a promising alternative treatment for chronically infected patients. Burkholderia bacteria are also ubiquitous in soil microbiomes. To develop improved phage therapies for pathogenic Burkholderia bacteria, or engineer phages for applications, such as microbiome editing, it's essential to know the bacterial host factors required by the phage to kill bacteria, as well as how the bacteria prevent phage infection. This work identified 65 genes involved in phage-host interactions in Burkholderia cenocepacia K56-2 and tracked their expression during infection. These findings establish a knowledge base to select and engineer phages infecting or transducing Burkholderia bacteria.

Bacteriophages

EIF4H and YBX1 are essential host factors for hepatitis E virus replication and pathogenesis.

Hepatitis E virus (HEV) is a leading cause of acute viral hepatitis worldwide, responsible for approximately 20 million infections annually. Despite the availability of a vaccine in China, no direct-acting antivirals are approved, and host factors required for HEV replication remain poorly defined. Here, using a genome-wide CRISPR/Cas9 knockout screen in a replicon system, we identified Eukaryotic Translation Initiation Factor 4H (EIF4H) and Y-Box Binding Protein 1 (YBX1) as essential host factors for HEV replication and pathogenesis. Knockout of either factor markedly impaired replication of HEV genotypes 1, 3, and 4, as well as HEV infection and production in hepatocellular carcinoma cells and human induced pluripotent stem cell-derived hepatocyte-like cells, while leaving SARS-CoV-2, hepatitis B virus, hepatitis C virus, and Zika virus unaffected, underscoring their HEV-specific roles. Mechanistically, EIF4H interacts with ORF1 via its methyltransferase-Y-papain-like protease region, and EIF4H deficiency alters the composition of the ORF1-associated replication complex. By contrast, YBX1 is dispensable for ORF1 translation and RNA binding but is specifically required for ORF1 proteolytic processing, a prerequisite for assembling a functional replication machinery. EIF4H knockout rats and liver-specific YBX1 knockout rats were largely resistant to rat HEV-C1 infection, showing profound reductions in viral shedding, suppressed hepatic and intestinal viral loads, and protection from liver pathology. Together, our findings establish EIF4H and YBX1 as essential host factors for HEV infection and pathogenesis and reveal potential targets for antiviral intervention.

Virus Replication

[Various factors influencing toxicity and metabolism of metals--metal-metal interactions and host factors (author's transl)].

This paper is a brief overview on metal-metal interactions and various other factors involved in the toxicity and metabolism of metals, including host factors, nutrition, habits, etc. Humans and other organisms are exposed to various metals in many ways, and even in an occupation in which workers are exposed to a metal such as lead, they are at the same time also exposed to other metals, although concentrations of these latter metals are usually not very high. This can result in effects different from those produced by a single metal by itself. Furthermore, individual differences which are caused by genetic, nutritional, hormonal, habitual, and many other factors may alter the toxic or metabolic effects of a single metal. Information on this subject is rather limited. This paper is a brief introduction to the importance of future studies on the topic, and the author hopes that it will stimulate more studies by those who are interested in the field of metal toxicology.

Animals

COG6 is an essential host factor for influenza A virus infection.

Influenza A virus (IAV) relies on the host cellular machinery to support its replication. Understanding these host dependencies can inform the development of novel antiviral strategies. In this study, we identified conserved oligomeric Golgi complex subunit 6 (COG6) as a novel host factor critical for IAV replication through a genome-wide clustered regularly interspaced short palindromic repeats/CRISPR-associated protein 9 (CRISPR/Cas9) knockout screen. Disruption of COG6 significantly impaired viral replication. Mechanistically, COG6 supports IAV replication via two distinct means. First, consistent with the role of the COG complex in Golgi homeostasis, COG6 is required for the proper presentation of surface sialic acids, the primary receptor for IAV entry. Second, COG6 deficiency unexpectedly led to lysosome-dependent degradation of viral proteins. Notably, lysosomal activity was also upregulated in IAV-infected wild-type cells, albeit to a lesser extent than in COG6-deficient cells. Treatment with lysosomal inhibitors rescued viral protein stability in COG6 knockout cells. Protein interaction analysis further demonstrated that COG6-mediated stabilization of viral proteins did not rely on viral protein-COG6 interaction, refuting the hypothesis that COG6 acts as a shield factor to protect viral protein from lysosomal degradation. Moreover, knockout of other COG subunits produced similar antiviral effects, suggesting that an intact COG complex is required for IAV replication. Together, these findings uncover a critical role of the COG complex in regulating IAV replication and highlight a previously unappreciated functional link between the Golgi and lysosomes that could be exploited for treating IAV infections.IMPORTANCEDespite advances in virology, numerous host determinants facilitating influenza A virus (IAV) pathogenesis remain uncharacterized. Our study establishes conserved oligomeric Golgi complex subunit 6 (COG6) as a critical host factor promoting IAV infection through complementary mechanisms: receptor modulation and viral protein stabilization. This represents the first demonstration that the COG complex regulates viral pathogenesis through proteostasis mechanisms, fundamentally expanding our understanding of host-virus interactions at the organelle interface. These findings not only provide new perspectives on viral exploitation of Golgi trafficking networks but also identify potential therapeutic targets against evolving influenza strains.

Influenza A virus

Site-specific interaction of Qbeta host factor and ribosomal protein S1 with Qbeta and R17 bacteriophage RNAs.

We have studied the interaction of the host factor (HF) required for bacteriophage Qbeta RNA replication and of ribosomal protein S1, a subunit of Qbeta replicase, with Qbeta and R17 RNA. Both proteins bind to both Qbeta and R17 RNA; HF has a higher affinity than S1 for these phages RNAs. HF binds to a single site in R17 RNA located in the replicase cistron, and to two sites of Qbeta RNA, one of which is located approximately 60 nucleotides from the 6' end of Qbeta RNA. The three HF binding sites all have portions rich in adenylate residues; all are bound by HF when contained in oligonucleotides which are predicted to exist only in single-stranded form. S1 selects a single site in Qbeta RNA, also near the 6' end, but binds to a large number of sites in R17 RNA. These results suggest that HF and possibly S1, through their interaction with the 3'-terminal region of Qbeta RNA, are directly involved in the recognition of the 6' end of Qbeta RNA by Qbeta replicase. Under conditions where specific protein-R1M RNA complexes are formed, we have also tested host factor and S1 for cistron-specific interference with ribosome binding to R17 RNA. Although S1 and HF lower the efficiency of initiation complex formation as described previously, we detect no discrimination against any particular cistron. We therefore conclude that translational interference exhibited by the two proteins probably reflects simply their high affinity for RNA and certain defined polynucleotides.

Base Sequence

Host factor for coliphage Q beta RNA replication: presence in procaryotes and association with the 30S ribosomal subunit in Escherichia coli.

The Host Factor required for in vitro coliphage Q beta RNA replication, a heat-stable RNA binding protein present in uninfected Escherichia coli, has been detected by both immunological and functional tests in Acinetobacter calcoaceticus, Klebsiella pneumoniae, Pseudomonas aeruginosa and Pseudomonas putida. It was not detectable by these criteria in Bacillus stearothermophilus, Bacillus subtilis, Caulobacter crescentus, Micrococcus lysodeikticus, Rhodopseudomonas capsulata or Saccharomyces cerevisiae. In Escherichia coli the Host Factor protein has been shown to be associated with ribosomes. It is demonstrated here that this association is specific for the 30S ribosomal subunit.

Acinetobacter

Identification of glycogen synthase kinase 3alpha/beta as a host factor required for HBV transcription using high-throughput screening.

BACKGROUND AND AIMS: HBV leads to severe liver diseases, such as cirrhosis and HCC. Identification of host factors that regulate HBV replication can provide new therapeutic targets. The discovery of sodium taurocholate cotransporting polypeptide (NTCP) as an HBV entry receptor has enabled the establishment of hepatic cell lines for analyzing HBV infection and propagation. Using this new system, studies aimed at identifying host factors that regulate HBV propagation have increased. APPROACH AND RESULTS: We established an HBV-based-reporter gene expression system that mimics HBV replication from transcription to virus egress. Using this approach, we screened 1827 Food and Drug Administration-approved compounds and identified glycogen synthase kinase 3 (GSK3)alpha/beta inhibitors, including AZD1080, CHIR-98014, CHIR-98021, BIO, and AZD2858, as anti-HBV compounds. These compounds suppressed HBeAg and HBsAg production in HBV-infected human primary hepatocytes. Proteome analysis revealed that GSK3alpha/beta phosphorylated forkhead box K1/2 (FOXK1/2)s. A double-knockout of FOXK1/2 in HBV-infected HepG2-NTCP cells reduced HBeAg and HBsAg production. The rescue of FOXK2 expression, but not FOXK1 expression, in FOXK1/2-double-knockout cells restored HBeAg and HBsAg production. Importantly, phosphorylation of FOXK2 at Ser 424 is required for GSK3alpha/beta-mediated HBeAg and HBsAg production. We observed the binding of FOXK2 to HBV DNA in HepG2-NTCP cells. CONCLUSIONS: Our recombinant HBV-based screening system enables the discovery of new targets. Using our approach, we identified GSK3 inhibitors as potential anti-HBV agents.

Humans

Genome-wide CRISPR screen identifies RNF24 as a critical host factor for foot-and-mouth disease virus entry.

BACKGROUND: Foot-and-mouth disease virus (FMDV) causes substantial economic losses in global livestock production; however, the key host factors supporting its early infection process remain poorly characterized. METHODS: In this study, we performed an unbiased genome-wide CRISPR/Cas9 knockout screening using porcine cells to screen and identify host factors involved in FMDV infection. RESULTS: We identified that the E3 ubiquitin ligase RNF24 supports efficient FMDV entry. RNF24 depletion inhibits viral entry and replication, whereas its overexpression enhances viral infectivity. Mechanistically, RNF24 preferentially promotes K27-linked non-degradative polyubiquitination of leupaxin (LPXN) at lysine 162, driving LPXN's trafficking to the plasma membrane. At the membrane, LPXN assembles a ternary integrin-LPXN-VP1 complex that strengthens virus-receptor interactions and promotes viral adsorption and entry. Disruption of this ubiquitination event via the LPXN K162R mutation impairs complex formation and compromises viral entry. CONCLUSION: Together, our study reveals a ubiquitin-dependent RNF24-LPXN regulatory axis that supports FMDV entry, highlights the role of non-degradative ubiquitination in viral pathogenesis, and proposes this interface as a potential target for antiviral intervention.

CRISPR screening

Host factors affecting perinatal carcinogenesis by resorptive alkylnitrosoureas in rats.

Host factors are operative in transplacental carcinogenesis. There are species, strain, sex, and individual differences in susceptibility to carcinogens. Rat fetuses are over 50 times more susceptible than adults to the oncogenic effects of ENU, yet are less susceptible to tumor induction with DMN. Immune mechanisms do not seem to affect the latency period, incidence, location, and type of neurogenic neoplasms, although tumor-specific antigens are demonstrable in neoplastic neuroectodermal cells. Although placental barriers, DNA repair capacities, age at exposure, hormonal interaction, and immune responsiveness may be singled out as possible causes for species, strain, sex, and individual variations in susceptibility to the neuro-oncogenic potential of ENU, no definitive proof of the mechanism of action of any of these factors has yet been presented.

Animals

Genome-wide bidirectional CRISPR screens identify mucins as host factors modulating SARS-CoV-2 infection.

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) causes a range of symptoms in infected individuals, from mild respiratory illness to acute respiratory distress syndrome. A systematic understanding of host factors influencing viral infection is critical to elucidate SARS-CoV-2-host interactions and the progression of Coronavirus disease 2019 (COVID-19). Here, we conducted genome-wide CRISPR knockout and activation screens in human lung epithelial cells with endogenous expression of the SARS-CoV-2 entry factors ACE2 and TMPRSS2. We uncovered proviral and antiviral factors across highly interconnected host pathways, including clathrin transport, inflammatory signaling, cell-cycle regulation, and transcriptional and epigenetic regulation. We further identified mucins, a family of high molecular weight glycoproteins, as a prominent viral restriction network that inhibits SARS-CoV-2 infection in vitro and in murine models. These mucins also inhibit infection of diverse respiratory viruses. This functional landscape of SARS-CoV-2 host factors provides a physiologically relevant starting point for new host-directed therapeutics and highlights airway mucins as a host defense mechanism.

Animals

Host factors involved in the growth of microvirid phage alpha 3.

Host factors involed in the growth of microvirid phage alpha3 were determined using various replication mutants of Escherichia coli. The viral multiplication was dependent on functional products of dnaE, dnaF(NRDA), DNAG, and dnaZ genes. Host functions directed by dnaA, so-alled dnaH, dnaI, and dnaP genes were dispensable for the viral growth. In contrast with phiZ174 and G4, alpha3 would grow sufficiently In dnaB and dnaC(D) mutants. The viral growth was not significantly affected by host polAts, seg, and groPC mutations.

Coliphages

An epidemiologic approach to host factors in the etiology of cancer.

We examined the contribution of host factors in carcinogenesis by evaluating the frequency distributions and secular trends in available epidemiologic data of mortality and morbidity around the world. In most developed countries, the age-adjusted death rates of cancer of all sites have levelled off in recent years and the intercountry difference in mortality is small. Deaths from cancer account for approximately 20% of total deaths in these countries. It is believed that the difference in cancer mortality of all sites between the developed and developing countries can be explained by the different levels of mortality from infectious and parasitic diseases, including deaths from tuberculosis. A certain upper limit for the number of cancer deaths in each population is strongly suggested by the unaltered cumulative mortality rate from cancer and tuberculosis up to 85 years of age in a defined birth cohort in the developed countries. The apparent age dependency in cancer mortality as well as some other essential epidemiologic implications in carcinogenesis, the commonly observed proportion of cancer deaths of around 20% of total deaths, and the well-known etiologic importance of environmental factors which determines the site-specific cancer mortality and morbidity lead one to consider the definite existence of "susceptibles to cancer" in each population. However, the concept of susceptibles to cancer is different from the usual one of hereditary predisposition to so-called "intractable diseases," which have low incidence rates.

Adolescent

Global siRNA screen identifies human host factors critical for SARS-CoV-2 replication and late stages of infection.

Defining the subset of cellular factors governing SARS-CoV-2 replication can provide critical insights into viral pathogenesis and identify targets for host-directed antiviral therapies. While a number of genetic screens have previously reported SARS-CoV-2 host dependency factors, most of these approaches relied on utilizing pooled genome-scale CRISPR libraries, which are biased toward the discovery of host proteins impacting early stages of viral replication. To identify host factors involved throughout the SARS-CoV-2 infectious cycle, we conducted an arrayed genome-scale siRNA screen. Resulting data were integrated with published functional screens and proteomics data to reveal (i) common pathways that were identified in all OMICs datasets-including regulation of Wnt signaling and gap junctions, (ii) pathways uniquely identified in this screen-including NADH oxidation, or (iii) pathways supported by this screen and proteomics data but not published functional screens-including arachionate production and MAPK signaling. The identified proviral host factors were mapped into the SARS-CoV-2 infectious cycle, including 32 proteins that were determined to impact viral replication and 27 impacting late stages of infection, respectively. Additionally, a subset of proteins was tested across other coronaviruses revealing a subset of proviral factors that were conserved across pandemic SARS-CoV-2, epidemic SARS-CoV-1 and MERS-CoV, and the seasonal coronavirus OC43-CoV. Further studies illuminated a role for the heparan sulfate proteoglycan perlecan in SARS-CoV-2 viral entry and found that inhibition of the non-canonical NF-kB pathway through targeting of BIRC2 restricts SARS-CoV-2 replication both in vitro and in vivo. These studies provide critical insight into the landscape of virus-host interactions driving SARS-CoV-2 replication as well as valuable targets for host-directed antivirals.

Humans

Rat polyvinyl sponge model for the study of infections: host factors and microbial proliferation.

Female rats were treated with several administration regimens of methylprednisolone, cobra venom anti-complementary factor, and cyclophosphamide in conjunction with polyvinyl sponge implantations. The effect of these drugs on host factors active against bacteria was evaluated with Staphylococcus aureus ATCC 25933, Escherichia coli K-12, and Pseudomonas aeruginosa CDC 7725. One of two implants in each animal was infected with 10(8) of one of the three bacteria, and bacterial and granulocyte content was determined in the infected and control sponges after 48 h. The single large dose of methylprednisolone decreased staphylococcal and E. coli clearance while promoting dissemination of P. aeruginosa. A low chronic dose of the steroid inhibited E. coli chemotaxis only. A higher dose of the steroid administered chronically interfered markedly with S. aureus and E. coli curtailment by the host while leading to enhanced dissemination of P. aeruginosa, accompanied by a precipitous decline in granulocytes. Results with cobra factor resembled the higher chronic dose of steroid enhancing, especially the dissemination of the pseudomonad and its anti-granulocytic propensity. Cyclophosphamide depression of granulocytes revealed the rat's ability to curtail the proliferation of particular S. aureus and E.coli strains even in the absence of leukocytes. This treatment resulted in the rapid spread of P. aeruginosa, leading to the death of some experimental animals. These experiments underline the versatility of this animal model in the study of host and microbial factors influential in infectious disease.

Animals

Host factor for coliphage Qbeta RNA replication as an aid in elucidating phylogenetic relationships: the genus Pseudomonas.

Host Factor (HF) is a heat-stable RNA-binding protein required along with Qbeta replicase for in vitro transcription of coliphage Qbeta RNA. We have found that HF activity and antigenicity are conserved among certain Gram-negative bacterial species. We examined selected species within the genus Pseudomonas for the presence of the HF polypeptide's antigenicity and Qbeta RNA replication function. While we were unable to detect either of these in Pseudomonas diminuta or Pseudomonas vesicularis, the other eleven species tested contained cross-reacting material to Escherichia coli HF. Furthermore, in six of these eleven species we were able to detect HF activity. The detection of HF structure and function allowed the examined species to be grouped into three categories which we have called 'sets'. The results correlate well with those of previous studies on ribosomal RNA homology (Palleroni et al., 1973).

Antigens, Bacterial

A respiratory survey of cedar mill workers. II. Influence of work-related and host factors on the prevalence of symptoms and pulmonary function abnormalities.

The influence of certain work-related and host factors on the prevalence of respiratory symptoms and pulmonary function abnormalities in 405 red cedar workers and 187 control workers was examined. In cedar workers, but not in controls, the prevalence of chest symptoms increased with duration of exposure. The decline in pulmonary function with increasing duration of exposure was also more marked in cedar workers, but in both groups smoking was a more important determinant. Substantial proportions of cedar workers and, to a lesser extent, controls noted improvement of cough and wheeze, and particularly of conjunctivitis and rhinitis, when away from work. No deterioration, however, was found in pulmonary function during the work week in either exposure group. Atopic status was unrelated to the prevalence of chest symptoms or pulmonary function abnormalities; it was more common in workers with conjunctivitis and rhinitis, particularly in the cedar group. Similarly, Pi phenotype did not appear to influence the occurrence of either symptoms or lung function abnormalities.

Adult

Host factor requirements and some properties of phiXtB. An evolutionary aspect of phiX-type phages.

Replication of phiXtB, a capsid mutant of bacteriophage phiX174, depends on the host functions directed by the E.coli genes dnaE, dnaF, dnaG, dnaZ, lig and rep. The cellular products of dnaA, dnaB, dnaC(D), dnaI, dnaP, polA, polB and xth genes are, however, dispensable for the viral growth. In these host factor requirements, phiXtB resembles phages phiK and St-1 rather than phiX174. Host ranges of phiXtB, St-1 and phiK overlap considerably, and growth temperature of the three phages is somewhat higher than that of phiX174. Furthermore, phiXtB is, like phiK, inactivated by antiserum against St-1. phiXtB may thus fill an evolutionary gap between the phiX174 group and the St-1 group.

Biological Evolution