Generation of viable cholesterol-free mice.
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Biomedical subjects
Publications and source records attributed to Y Becker.
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Permeation enhancers (PE) are frequently used in the field of dermal research and for the development of transdermal delivery products. However, their influence on skin epidermal Langerhans cells (LC) has not yet been investigated. In this work we studied the effect of four PE, oleic acid (OA), propylene glycol (PG), ethanol, and diethylene glycol monoethyl ether (DGME), and an iontophoretic treatment on the morphometric parameters of epidermal Langerhans cells (LC). Retinoic acid (RA) was used as a positive control. Test solutions were applied to the footpad of Sabra mice. The area, perimeter, density and shape factor (SF) were the morphometric parameters evaluated following ATPase staining of LC. Application of RA led to a large decrease in cell density (-50.2%, P<0.01) and dendritic shape (19.8%, P<0.01). Treatment with 10% OA in ethanolic solution caused a severe decrease in LC density (-69.0%, P<0.01), accompanied by a decrease in dendricity as measured by the changes in SF. Ethanol had no statistically significant effect on the LC morphologic parameters tested. All other PE had a mild, if any, effect on LC morphology. SEM micrographs of the skin of IOPS hairless rats demonstrated that 24 h in vivo treatment with 10% OA in ethanolic solution resulted in the generation of pores on the surface of epidermal corneocytes.
By screening a chemical library for the compounds protecting cells from adriamycin (Adr), a series of small molecules was isolated that interfered with the accumulation of Adr in mouse fibroblasts by enhancing efflux of the drug. Isolated compounds also stimulated efflux of Rhodamine 123 (Rho-123), another substrate of multidrug transporters. Stimulation of drug efflux was detectable in the cells expressing P-glycoprotein (P-gp), but not in their P-gp-negative variants, and was completely reversible by the P-gp inhibitors. A dramatic stimulation of P-gp activity against Adr and Rho-123 by the identified compounds was accompanied by suppression of P-gp-mediated efflux of other substrates, such as Taxol (paclitaxel) or Hoechst 33342, indicating that they act as modulators of substrate specificity of P-gp. Consistently, P-gp modulators dramatically altered the pattern of cross-resistance of P-gp-expressing cells to different P-gp substrates: an increase in resistance to Adr, daunorubicin, and etoposide was accompanied by cell sensitization to Vinca alkaloids, gramicidin D, and Taxol with no effect on cell sensitivity to colchicine, actinomycin D, puromycin, and colcemid, as well as to several non-P-gp substrates. The relative effect of P-gp modulators against different substrates varied among the isolated compounds that can be used as fine tools for analyzing mechanisms of drug selectivity of P-gp. These results raise the possibility of a rational control over cell sensitivity to drugs and toxins through modulation of P-gp activity by small molecules.
Foot-and-mouth disease (FMD) is one of the most dangerous diseases of cloven-hoofed animals and is a constant threat in the Middle-East and other regions throughout the world despite intensive vaccination programs. In this work, we describe the ability of FMDV expression constructs to protect pigs from FMDV challenge when used as a vaccine. The construct consists of encephalomyocarditis virus (EMCV) internal ribosome entry site (IRES), the entire P1 and 2A together with 3CD sequences, all in the same reading frame. Another plasmid that was tested, carries the serotype O1 (G) VP1, Asia1 VP1 and O1 (G) 3C. Between each of the genes the 3C cleavage sequences were inserted. All constructs carried the cytomegalo virus (CMV) promoter. Using immunofluorescent and immunoblot techniques, we could show the expression and processing of viral proteins. Following the application of FMDV expression constructs into pigs skin by 'Gene Gun', pigs were partially protected from FMDV challenge.
The origins of virus evolution may be traced to Archeabacteria since Inouye and Inouye (6) discovered a retroelement with a gene for reverse transcriptase in the bacterial genome and in the satellite, multiple copy single stranded DNA (msDNA) in the soil bacterium Myxococcus xanthus. It was possible (8) to define the evolution of retroelements in eukaryotic cells of plants, insects (gypsy retrovirus) and vertebrates. The replication of RNA viruses in eukaryotic cells allowed for the viral RNA genome to integrate a cellular ubiquitin mRNA, as reported for BVDV (24). Another example is the integration of 28S ribosomal RNA into the hemagglutinin gene of an influenza virus. This change in the hemagglutinin gene led to an increased pathogenicity of the influenza virus (25). In contrast to RNA viruses, DNA viruses had evolved by inserting cDNA molecules derived from mRNA transcripts of cellular genes or foreign viral RNA. It is of interest that the virus acquired cellular genes in the genomes of DNA viruses represent genes that code for proteins that inhibit cellular molecular processes related to HLA class I and II molecules. The other acquired genes are cellular genes that code for cytokines that are capable of inhibiting antigen presentation to T cells by antigen presenting cells (APC) by dendritic Langerhans cells. The acquisition of cellular genes by DNA viruses enhances their pathogenicity by inhibiting the hosts' defense systems.
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The evolution of viruses is reviewed within the perspective of the concepts on the evolution of the lipid membrane bound vesicular structures in the prebiotic soup through the ideas on evolution of cells during the RNA World and the transition into the DNA World. The ancient Archeae bacteria and their retrons that carry the bacterial reverse transcriptase gene and their unique protein splicing capability provide an indication of the evolutionary path for retroviruses and, independently, for RNA and DNA viruses of the prokaryotic Archeae bacteria and the eukaryotic yeast and fungi.
Familial dystautonomia (FD) patients are deficient in type C fibers, suggesting that there may be a different pattern of infection and clinical presentation when infected by Herpes simplex virus type 1 (HSV-1) or Varicella-Zoster virus (VZV). These viruses infect and are reactivated in the periphery of the body through type C sensory nerve fibers. HSV-1 infects epithelial cells, penetrates into type C fibers, and migrates to the ganglia to generate latent infection. In reactivation, the viral DNA migrates through type C fibers, infecting the epidermis at the entry site. VZV infects through the respiratory tract, causing systemic viral infection and latency in the ganglia, from which it is reactivated and reaches the skin. The study was carried by clinical questionnaire and by HSV and VZV IgG antibodies on fifty-one FD patients and eighty matched controls. The questionnaire revealed that no FD patient had a history of clinical HSV-1 infection, compared to 15% in the control group (P < 0.05), while 50% FD patients had been infected by varicella, compared to 66% in the VZV control group. However in FD, VZV clinical manifestations were mild in comparison to controls. There was no difference in infection rates for some other viral diseases. HSV-1 antibodies were detected in 24% of the FD patients, compared to 38% in the control group (P < 0.1). VZV antibodies were similar in FD and controls (66%, 63%). We concluded that the rate of HSV infection in FD is low and clinical reactivation is rare. The rate of varicella infection appears to be the same for patients and controls, but in FD the clinical presentation is mild. We suggest that these differences are due to the lack of type C fibers in FD patients.
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The computer program "Findpatterns" was used to search FMDV- (OK1 and A12 strains) coded structural and nonstructural proteins for the availability of putative proteasome-generated nonapeptides with motifs reported for BoLA class I A11 and A20 haplotypes. These BoLA class I A11 and A20 nonapeptide motifs are identical to motifs of nonapeptides that interact with the peptide binding grooves of HLA class I B35 and B27 haplotypes, respectively. The computer findpattern program was used to analyze the FMDV-coded polyproteins for proteolytically cleavable nonapeptides with motifs for binding to the peptide binding grooves of BoLA class I A11 or 20 haplotypes. The computer simulations revealed that FMDV-infected cells (keratinocytes and antigen presenting cells. e.g., dendritic Langerhans cells in bovines) may be able to present viral nonapeptides to CD8+ cytolytic T cells (CTLs) in a BoLA-restricted manner. The role of the cellular arm of the immune response in the protection of bovines against FMDV is not known. Thus, the present computer analysis may encourage further experiments to develop a new generation of FMDV nonapeptide vaccines to stimulate the anti-FMDV cytolytic T cell response in bovine so this would complement the humoral immune response achieved by immunization with the inactivated virus vaccine.
Mature Langerhans cells (mLC), the ex vivo correlates of interdigitating dendritic cells (IDC), are susceptible to infection with HIV-1. As IDC are important activators of T helper (Th) cells in vivo, we examined the interaction of HIV-1-infected mLC with CD4+ T lymphocytes. HIV-1-infected mLC readily formed clusters with the T cells and efficiently transmitted HIV-1 to the CD4+ Th cells. Formation of syncytia between mLC and T cells was initiated by HIV-1-infected mLC. In the clusters of HIV-1-infected mLC and activated T cells a massive HIV-1 production was observed leading to the subsequent elimination of the activated and infected T helper cells. Examination of the cytokine pattern produced during interaction of infected mLC with CD4+ T cells revealed an enhanced production of IFN-gamma and IL-10 in the cocultures. These results suggest that during antigen presentation-driven T cell activation by IDC in the lymphoid tissues, HIV-1-infected IDC might efficiently transmit the virus to Th cells, leading to altered Th cell responses.
The primary amino acid sequences of the proteins coded by Marburg and Ebola-Zaire filoviruses were studied by computer programs to search for putative proteolytic cleavages which yield nonapeptides with motifs of binding to known HLA class I haplotypes. The computer analyses predicted that numerous nonapeptides with motifs to bind HLA class I A68 and A2 haplotypes were detected. A few nonapeptides with motifs HLA class I A24, B8, B27 and B35 were predicted in Marburg virus proteins. A similar finding is reported for Ebola-Zaire viral proteins (the viral polymerase was not studied). The search for antigenic domains that may induce the humoral immune response in the viral glycoproteins was based on computer analyses of the physical properties and antigenicity predictions of amino acids in certain domains of the primary amino acid sequences. Twelve putative antigenic domains were detected in Marburg virus glycoprotein and 11 putative antigenic domains in Ebola-Zaire virus glycoprotein. Despite the marked differences in the primary amino acid sequences in the putative antigenic domains of the two viral glycoproteins, 8 antigenic domains were found to have similar locations in the viral glycoproteins of the two viruses. Each pair of antigenic domains resemble each other in the physical properties of the amino acids that are different. These computer analyses may provide an approach to developing synthetic peptides capable of induction of both the cellular and humoral responses to protect against infection with Marburg or Ebola viruses.
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The analysis of the history of the research on antivirals especially the treatment of HIV-1 infected individuals with antivirals which were developed prior to the current AIDS epidemic led to suggest a different approach to the targeting of antivirals in the AIDS patients. Since HIV-1 replication in infected individuals occurs in the lymph nodes, it is suggested that modified anti-HIV-1 drugs should be applied to Langerhans cells in the skin. The Langerhans cells can serve as the carries of the antiviral drugs attached to their surfaces due to their ability to migrate from the skin through the lymph vessels and to home to the lymph node. At that site Langerhans cells interact with T cells. Transfer of the anti-HIV-1 drugs to infected CD4+ T cells in the lymph node will reduce virus replication in the lymph nodes and will reduce the cytotoxic systemic effects of the antiviral drug. Such an antiviral treatment requires the development of efficient methods of drug delivery through the skin.
Viral vaccines which stimulate the humoral immune response in humans have been successful in preventing most of the known virus diseases except dengue fever, respiratory syncytial virus infections and HIV-1-related AIDS. Burke [1] raised a concern that anti-HIV-1 antibodies may add a risk factor to immunized individuals infected with HIV-1. An approach to develop HIV-1 vaccines capable of stimulating anti-HIV-1 cytotoxic T cells requires an understanding of the importance of epidermal and epithelial Langerhans cells (LC). These cells are professional antigen-presenting cells which express HLA class I and class II molecules. Epithelial LC are present in a specific layer in the skin, genitalia and gut and may be accessible to viral antigens by local application in a vehicle for transepithelial transport of viral proteins/peptides (designated "HIV-1 Peplotion vaccine"). This approach is supported by the reports that HIV-1 gp160 in ISCOM induced MHC class I CTL response [2], mixing of cationic lipids with viral proteins formed complexes which were delivered to cell cytoplasm and the degraded peptides stimulated CTLs by HLA class I mechanism [3] and viral proteins encapsulated in pH-sensitive liposomes administered to LC induced primary antiviral CTLs [4]. Current studies in our laboratory deal with (a) selection of the vehicle for transepidermal transport of peptides and the conditions for selective uptake by epidermal LC [5]; (b) computer analysis of HIV-1 proteins to detect the putative proteolytic cleavage peptides with amino acid motifs which allow association with different known HLA class I haplotype molecules on LCs and synthetic peptide uptake from "without" by LC. The "HIV-1 Peplotion vaccine", when developed, will be useful for continual stimulation of antiviral CTLs in uninfected individuals and HIV-1 carriers by repetitive application to skin, genitalia and gut. The "Peplotion vaccine" will be applied by vaccinees, will be affordable for all human-populations and, hopefully, will be highly efficient.
In the lymphoid tissues, adaptive immune responses are initiated by the interaction of interdigitating dendritic cells (IDC) with naive T cells. To understand this interplay better, we used mature Langerhans cells (mLC), migrating from human epidermis, as the correlate of IDC ex vivo to evaluate the different effects of tumor necrosis factor (TNF)-alpha. TNF-related activation protein (TRAP; CD40-ligand) and interleukin-10 (IL-10) on induction or prevention of apoptotic cell death in these cells. Spontaneous decrease of mLC viability in culture was due to apoptosis, as determined by the appearance of typical morphological changes such as dilatation of the endoplasmic reticulum (ER), chromatin condensation and membrane blebbing. IL-10 strongly reduced mLC viability, whereas TRAP and TNF-alpha facilitated the survival of mLC. Spontaneous DNA fragmentation was detectable after 24 h in culture. IL-10 led to an earlier onset of DNA fragmentation, whereas TRAP and TNF-alpha delayed internucleosomal DNA cleavage. We found that IL-10-treated mLC were readily ingested and removed by macrophages. TNF-alpha and TRAP, in contrast, reduced engulfment of mLC by macrophages. Interestingly, IL-10, even at low concentrations, reverted the effects of TNF-alpha and TRAP in inhibiting mLC apoptosis. Furthermore, IL-10 led to the down-regulation of various surface antigens, especially of CD86 and CD54, whereas TNF-alpha and TRAP enhanced the expression of MHC class I and II antigens and of the accessory molecules CD40, CD54, CD80 and CD86. Taken together, these results show that mLC spontaneously undergo apoptosis in culture and that the progression of mLC to apoptosis is inhibited by TRAP and TNF-alpha, but accelerated by IL-10.