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Ultrastructural localization of sucrases in Streptococcus mutans GS-5 and an extracellular polysaccharide mutant: a comparative cytochemical and immunocytochemical study.

Electron microscopy and cytochemical and immunocytochemical procedures were used to study the ultrastructural distribution of sucrase enzymes in two strains of Streptococcus mutans. In a strongly adherent and virulent parent strain, GS-5, most of the invertase and fructosyltransferase activities were demonstrated extracellularly or bound to the cell surfaces. Intracellularly, enzymatic sites were detected near the plasma membrane on the periphery of the nucleoid and central mesosome. In GS-511, a mutant of diminished virulence and adherence, most of the enzymatic activity was not located on the cell surfaces, but was found away from the cell walls and associated with extracellular polysaccharides. Intracellularly, GS-511 manifested the same distribution of invertase and fructosyltransferase as did GS-5; however, the close association of these enzymes with the plasma membrane was not shown in GS-511. In both strains, extracellular areas near regions associated with cross wall formation appeared to show localized concentrations of these sucrases. Antibodies against partially purified glucosyltransferase (GTF) enzymes from GS-5 were used to localize GTF by immunocytochemical techniques. Indirect ferritin localization procedures showed that the extracellular and cell-bound GTF enzymes were distributed in similar locations as the fructosyltransferase and invertase enzymes. By absorption of the antiserum with whole GS-511 cells, the location of extracellular GTF and surface antigens unique to GS-5 was demonstrated. The dramatically reduced levels of cell-bound sucrase activity in GS-511 indicates the significant role of these enzymes in adherence and cariogenicity.

Cell Membrane

Gs, an allele of chickens for endogenous avian leukosis viral antigens, segregates with ev 3, a genetic locus that contains structural genes for virus.

Gs is an allele of chickens for the expression of endogenous avian leukosis virus-related core (gs) and envelope (chf) antigens. Progeny of a genetic cross in which Gs was segregating were analyzed for endogenous viral DNA as well as for the expression of endogenous viral antigens. Viral genetic information was identified by cleavage of embryo DNA with restriction endonucleases, electrophoretic separation of the resulting fragments, and identification of bands containing viral sequences by hybridization of the DNA to 32P-labeled viral RNA. Four different chromosomal sites of residence of endogenous viral sequences were identified by this method. These sites were the same as those previously assigned to the endogenous viral loci ev 1, ev 3, ev 4, and ev 5. ev 1 was present in all of the progeny of the cross. ev 3, ev 4, and ev5 were present in various combinations with ev 1. ev 3 cosegregated with the gs+chf+ phenotpye. Cells which did not contain ev 3 but contained ev 1, ev 4, and/or ev 5, did not express detectable levels of viral antigens. We suggest that Gs contains the structural genes for endogenous virus which reside at ev 3 and that these structural genes code for gs and chf in gs+chf+ cells.

Alleles

[About the heterogeneity of the murine oncornavirus group-specific antigen gs-1 (author's transl)].

In isoelectric focusing of twofold gradienpturified and Tween 80-ether disrupted RLV the groupspecific antigen (gs-1) was found in 3 pH-zones (4,45-5,5; 5,65-6,0; 6,45-6,6). For the gs-1 from plasma und spleen cells of leukemic mice was shown heterogeneity by several methods: 1. Gs-1 from plasma showed in isoelectric focusing a scattering along the whole elution profile. 2. Agarimmunoelectrophoresis resulted in a longer precipitationline for gs-1 from plasma in comparison with gs-1 from spleen cells. 3. Polyacrylamidgelelectrophoresis with following immunodiffusion made evident the particularly discrete character of this heterogeneity: gs-1 from both materials were found in two main zones.

Animals

[Properties of pigeon sera containing complement-fixing antibodies to the gs-antigen of the avian leukosis-sarcoma complex].

Pigeons bearing tumors caused by the Schmidt-Ruppin strain of Rous sarcoma virus were used for withdrawing sera containing complement-fixing (CF) antibody to the gs-antigen of avian leukosis-sarcoma complex. In the course of this study it was found that some of these sera, while having a high titer of CF antibody to the gs-antigen of the tumor tissue, did not detect this antigen in chicken embryonal tissue and feather follicles. It is suggested that these sera distinguish different components of gs-antigen in the tumor tissue on the one hand and in the embryonal tissue and feather follicles on the other. There was a correlation in the detection or lack of gs-antigen in preparations of feather follicles and embryonal tissue with all the sera examined. Feather follicles may serve as a convenient source of gs-antigen in practical work.

Alpharetrovirus

PGS-GS: a framework integrating polygenic scores and genomic selection in animal breeding.

Genomic prediction has become a central paradigm in biology, enabling quantitative inference of genetic contributions to complex traits across humans, animals, and plants. Although genomic research in human genetics and animal breeding shares a highly homologous methodological foundation, significant barriers persist in their analytical paradigms and application scenarios. This study aims to promote cross-disciplinary integration by introducing human-derived polygenic scores (PGS) algorithms into animal genomic selection (GS) and proposing a PGS-GS framework with a preliminary weighting-based implementation. We systematically benchmarked the predictive performance and computational efficiency of 20 algorithms, including classical linear models, machine learning, PGS, and PGS-GS using both array and whole-genome sequencing (WGS) data across four major agricultural species: beef cattle, sheep, pigs, and chickens. Our results demonstrate that PGS and PGS-GS algorithms achieve predictive accuracy competitive with genomic best linear unbiased prediction (GBLUP) while offering markedly higher computational efficiency. Moreover, incorporating PGS-derived prior information into weighted linear and non-linear models outperformed conventional weighted GBLUP. The results provide empirical evidence to inform algorithm selection and highlight the potential of integrating human-derived PGS methodologies into animal genomic prediction frameworks.

Animals

Antigens of Streptococcus mutans: characterization of a polysaccharide antigen from walls of strain GS-5.

A cell wall-associated polysaccharide antigen was isolated from Streptococcus mutans GS-5 and appeared to determine serotype c specificity. Ouchterlony double-diffusion analysis of crude formamide extracts derived from purified cell walls of two serotype c strains (GS-5 and JC-2) showed complete identify when reacted with anti-GS-5 sera. Immunoelectrophoresis of this extract demonstrated the typical mobility for this serotype as described by others. Column chromatography on BioGel P-100 of the crude formamide extracts derived from GS-5 walls resulted in a single antigenic peak being resolved. This material, when loaded onto a diethylaminoethylcellulose column and eluted with a linear gradient of ammonium carbonate (0.0 to 0.2 M), was resolved further into two serologically reactive peaks (I and II). Only two consituents, rhamnose and glucose, were detected in the purified column fractions. Peak 1 had a rhamnoseto-glucose molar ratio of 0.9:1.0, and peak II, the major resolvable fraction, had a molar ratio of 1.7:1.0, The peak II ratio was very similar to that found in the formamide extract residue pellet (1.6:1.0)9 Ouchterlony analysis of the crude formamide extract and the purified fractions revealed only partial identify between peaks I and II but complete identify between peak II and the crude extract. Likewise, immunoelectrophoresis showed no differences in mobility of peak II and the crude extract, whereas peak I moved towards the cathode. Possible structural relationships between the two antigenic fractions are discussed below. Hapten inhibition studies suggested that an alpha-glucosyl group is at the immunodeterminant site of the antigen.

Antigens, Bacterial

Comparative analysis of GS and BK virus genomes.

Analysis of heteroduplexing between the genomes of GS virus, a BK-group virus, and the prototype BK virus revealed one region of nonhomology. Further analysis by cleavage of viral DNA with the restriction endonucleases EcoRI, HindIII, and HaeIII revealed that base changes in the GS virus genome spanned 0.6 to 0.7 map unit from the EcoRI site. Large T and small t antigens of GS virus appear to be similar in size to the BK virus antigens.

Antigens, Neoplasm

Effect of selection for high egg production in chickens on shedding of lymphoid leukosis virus and gs antigen into eggs.

Lymphoid leukosis virus (LLV) and group specific (gs) viral antigen were detected less frequently in albumen of eggs from two strains of Single Comb White Leghorns that had been selected for high egg production than in corresponding random-bred control strains, which represented the original base population. In a third selected strain, for which no comparable control strain was available, the frequency with which LLV and gs antigen were detected was similar to the other two selected strains. The greatest contrast was between selected Strain 1 and control Strain 5 in which the percentage of eggs with LLV in albumen was 1.4 and 21.4, respectively, and the percentage with gs antigen was 1.2 and 19.9. These differences between control and selected strains of chickens were not related to genetic cellular resistance to virus infection, because inoculation of chorioallantoic membranes with Rous sarcoma virus of subgroups A and B revealed that the proportion of birds resistant to subgroups A and B viruses was not greater in the selected strains than in the control strains.

Animals

Oncogenesis by Marek's disease herpesvirus in chickens lacking expression of endogenous (gs, chick helper factor, Rous-associated virus-O) and exogenous avian RNA tumor viruses.

Chickens free of exogenous avian leukosis virus (ALV) infection, replicating endogenous ALV (Rous-associated virus-O), gs antigen, and chick helper factor were fully susceptible to induction of Marek's disease (MD) by ALV-free MD viruses. Dual infection with Rous-associated virus-2 and MD virus did not significantly alter the character of the MD lesions. Thus exogenous ALV infection was not requisite for MD virus-induced oncogenesis. Although participation of endogenous RNA tumor virus genes in MD lesion induction could not be excluded, expression of such genes in MD tumors as gs antigen was not established.

Animals

The expression of avian gs antigen in mammalian Rous sarcoma virus-transformed cells after treatment with 5-iododeoxyuridine and dexamethasone.

The content of avian gs antigen in RSV-transformed rat cells LW13-RsK1 and LW13-RsK4 showed a transient increase after treatment with 5-iododeoxyuridine. Higher levels of gs antigen were found when treated cells were cultivated in the presence of dexamethasone. In no case was the production of RSV found in treated RSV-transformed rat cell lines when, in addition, XC cells were tested.

Animals

Seed-type vacuolar processing enzymes recognize the 619th asparagine residue to posttranslationally cleave the HMW-GS 1Dy10-m619SN allele.

High molecular weight glutenin subunits (HMW-GSs) are critical grain storage proteins in wheat, which govern its unique processing quality. A HMW-GS 1Dy10 allele variant (1Dy10-m619SN), carrying a serine-to-asparagine substitution at the 619th residue, undergoes partial posttranslational cleavage. This modification leads to improved cookie-making quality. However, the enzymes mediating this cleavage remain unknown. In this study, we identified vacuolar processing enzymes (VPEs) as candidates for 1Dy10-m619SN processing using TurboID-based proximity labeling and RNA-seq analysis. In vitro cleavage assays confirmed that VPEs catalyzed 1Dy10-m619SN cleavage. Phylogenic analysis revealed that there are two seed-type VPEs in wheat, TaVPEI and TaVPEII, with TaVPEI being further subdivided into TaVPEI-1, TaVPEI-2, and TaVPEI-3. Despite sharing conserved catalytic domains, these isoforms display distinct temporal expression patterns, with TaVPEI-1 expression showing the strongest correlation with the posttranslational cleavage of 1Dy10-m619SN. TaVPEI-1 protein is localized to the vacuole, the well-known deposition site for HMW-GSs. Overexpression of TaVPEI-1 in wheat enhances the 1Dy10-m619SN cleavage. Collectively, these findings demonstrate that the seed-type VPEs in wheat are responsible for the posttranslational cleavage of 1Dy10-m619SN, which provides new insights into the molecular basis of wheat's unique processing quality.

Triticum

The presence of complement fixing antibodies to the avian group-specific ("gs") sarcoma-leukosis antigen in the human population and in cancer patients.

Antibodies to the avian group-specific "gs" sarcoma-leukosis antigen were made evident by complement fixation reaction in human sera collected from apparently healthy subjects and from patients with different forms of cancer and non-neoplastic diseases. The number of sera investigated was of 2,123. The possible mechanisms that might account for this paraimmune response of the human organism and the prospects of developing prophylactic steps against cancer are discussed.

Agricultural Workers' Diseases