PubMed Health⌕ Search

Biomedical subjects

J Rapacz

Publications and source records attributed to J Rapacz.

At least 37 records · Page 2Linked to original sources

Separation of swine plasma LDL from Lpb2/3 heterozygotes into two apoB allelic haplotypes, Lpb2 and Lpb3, with apoB epitope specific antibodies.

Studies were performed to investigate the separation of Lpb (lipoprotein B) species present in plasma of heterozygous swine bearing the Lpb2 and Lpb3 apoB mutant genes. Low density lipoprotein (LDL) fractions from Lpb2/2 and Lpb3/3 homozygotes were coupled to a matrix and used to isolate affinity-purified antibodies anti-Lpb2 and anti-Lpb3 from swine alloimmune sera, one with specificity for the Lpb2 epitope(s) and the other for Lpb3. These antibodies in turn were used to construct two immunosorbers, anti-Lpb2 and anti-Lpb3 Sepharose columns. To separate the two Lpb haplotype populations present in LDL, a density gradient ultracentrifuge subfraction (d 1.032-1.043 g/ml) obtained from Lpb2/3 heterozygous pigs was applied to the specific immunosorbers. The retained fraction from the anti-Lpb2 column reacted in the double immunodiffusion test with anti-Lpb2 and anti-Lpb13 immune sera but not with either anti-Lpb3 or anti-Lpb12, while the unretained fractions reacted with anti-Lpb3 and anti-Lpb12 but not with either anti-Lpb2 or anti-Lpb13. The reaction patterns obtained with the two sets of alloimmune sera indicate the existence of two separate lipoprotein populations in LDL: one lipoprotein carrying the Lpb2 and Lpb13 epitopes corresponding to the Lpb2 apoB allele, and the other carrying the Lpb3 and Lpb12 allotypes specified by the Lpb2 gene. Immunoblotting with anti-Lpb2 and anti-Lpb3 and silver staining showed that the epitopes of both isolated LDL subpopulations are associated with apoB-100. Neutral lipid analyses showed no differences between the isolated Lpb2 and Lpb3 lipoprotein species from the Lpb2/3 heterozygotes. These studies demonstrate that plasma LDL subfractions from Lpb heterozygous swine can be separated into two haplotype populations, each corresponding to the product of one apoB gene, and reveal a new insight into the phenotypic expression of plasma LDL, and the LDL phenotype-genotype relationship. Furthermore, this approach will facilitate studies on metabolic differences of two structurally distinct LDL, unaffected by in vitro manipulation, exposed to the metabolic milieu of one individual.

Alleles↗

Molecular genetics of the apolipoprotein B gene in pigs in relation to atherosclerosis.

Immunologically defined alleles of the pig apolipoprotein B (ApoB) locus (apoB) are correlated with different blood cholesterol levels and predisposition towards premature coronary heart disease. We show here that these alleles are associated with differences in the apoB gene by identifying six restriction fragment length polymorphisms at the pig apoB locus. We have sequenced a 2.4-kb fragment encompassing exons 11 through 14 of one allele, and 7.1 kb from the 3' one-third of exon 26 to about 1 kb past the last exon from another allele. The decoded amino acids of the pig and human ApoB proteins are identical at 70% of these positions. One region close to the C-terminus of the protein is surprisingly different in pigs and humans (57% identity) but the C-terminal region is relatively well conserved (74% identity). Neither of the two putative low-density lipoprotein (LDL) receptor-binding sites is completely conserved in pigs and humans, but identical stretches of amino acids occur near these sites more frequently than in the other sequenced regions. We compare the nucleotide sequences of the region encompassing the putative LDL receptor-binding sites from four pig alleles, including one implicated directly in atherosclerosis. None of the differences appears to account for the hypercholesterolemic phenotype. We conclude that significant differences in the physiology of LDL particles result from changes outside the putative receptor-binding region.

Alleles↗

Defective receptor binding of low density lipoprotein from pigs possessing mutant apolipoprotein B alleles.

We previously identified a defect in the in vivo catabolism of low density lipoprotein (LDL) from hypercholesterolemic pigs carrying a mutant apolipoprotein B allele. In the present studies, we examined the in vitro metabolism of mutant LDL in cultured pig fibroblasts. A 3-fold higher concentration of mutant LDL (compared to control) was needed to displace 50% of control 125I-LDL binding. Mutant LDL had a 6-fold higher dissociation constant than control LDL. Scatchard plots of the binding data were concave upward, suggesting multiple classes of binding sites or negative cooperativity. The mutant LDL degradation rate was reduced by 40%; this decrease could be attributed to a dense LDL subspecies. Mutant and control buoyant LDL subspecies were degraded more slowly than the corresponding dense LDL subspecies. Together, these studies show that diminished LDL receptor binding can result from mutations in apolipoprotein B and from changes in the lipid composition of LDL particles.

Algorithms↗

Defective catabolism and abnormal composition of low-density lipoproteins from mutant pigs with hypercholesterolemia.

Metabolic and chemical properties of low-density lipoproteins (LDLs) were studied in a strain of pigs carrying a specific apo-B allele associated with hypercholesterolemia and premature atherosclerosis. LDL mass was significantly greater in mutant than in control pigs (400 +/- 55 mg/dL vs 103 +/- 26 mg/dL), as was LDL cholesterol. When normal and mutant LDLs were injected into the bloodstream of normal pigs, the fractional catabolic rate (FCR) of mutant LDL was about 30% lower than that of control LDL. In mutant pigs, the mean FCRs of mutant and control LDL were similar, although they were much lower than the corresponding FCRs observed in normal pigs. The density profile of LDL particles differed in control and mutant pigs; the peak LDL flotation rate was shifted from S0f = 5.3 +/- 1.9 in controls to a more buoyant 7.4 +/- 0.5 in mutants. The elevation of LDL in the mutants was restricted to the most buoyant LDL subspecies. This subpopulation of mutant LDL was enriched with cholesteryl ester (47% vs 37%) and depleted of triglyceride, relative to LDL of similar density and size in controls. The lipid compositions of the denser LDL subpopulations (rho greater than 1.043 g/mL) were similar in mutants and controls. We conclude that the hypercholesterolemia of these mutant pigs is accounted for by defective catabolism of LDL. The buoyant cholesterol ester enriched LDL subspecies that accumulate in plasma may contribute to the accelerated atherogenesis that occurs in these animals.

Animals↗

Primary structure comparison of the proposed low density lipoprotein (LDL) receptor binding domain of human and pig apolipoprotein B: implications for LDL-receptor interactions.

Apolipoprotein B (apoB) is the predominant protein in low density lipoprotein (LDL) and is responsible for LDL binding to the LDL receptor. Although the primary amino acid sequence of human apoB has been determined, little is known about the structural domains involved in mediating apoB binding to the LDL receptor. Amino acid sequence comparisons across species lines provide a means of defining structures that are essential for function. We have sequenced a l.l kb fragment of pig apoB genomic DNA, corresponding to a 363 amino acid segment proposed to mediate human apoB binding to the LDL receptor. In human apoB this domain contains two regions enriched in positively charged amino acids flanking two disulfide-linked cysteine residues. The pig amino acid sequence shared 72% identity with the human sequence. However, there were differences that have significant structural and functional implications. Human apoB arginine-3,359 corresponds to a critical arginine (position 142) residue in the apoE LDL receptor binding domain. In the pig, this arginine residue was not conserved. Also, the two disulfide-linked cysteine residues found near the proposed apoB binding domain were not conserved in the pig. Despite these differences, pig LDL had a higher affinity than human LDL for both the pig and human LDL receptor. Thus, these features are not required for high affinity binding of pig LDL to the LDL receptor, and may not be necessary for the binding of human LDL to the LDL receptor.

Amino Acid Sequence↗

Tonsillar mapping of determinants found on normal lymphoreticular (T,B,K, immature and macrophage) and myeloblastic leukemia cells.

A monoclonal immunocytochemical method with 25 monoclonal antibodies was used to study the distribution in human tonsil of determinants expressed on T cells (mature and immature), Langerhans cells, B cells, killer/natural killer cells, macrophages, immature myeloid and lymphoblastic leukemia cells. Many of the respective determinants were found to have a discrete topographic distribution in normal reactive tonsil. The common acute lymphoblastic leukemia antigen and a determinant found on myeloblastic leukemia cells (My10) were not found in the specimens of the tonsil examined.

Antibodies, Monoclonal↗

Lipoprotein mutations in pigs are associated with elevated plasma cholesterol and atherosclerosis.

A strain of pigs bearing three immunogenetically defined lipoprotein-associated markers (allotypes), designated Lpb5, Lpr1, and Lpu1, has marked hypercholesterolemia on a low fat, cholesterol-free diet. Unlike individuals with familial hypercholesterolemia or WHHL rabbits, the affected pigs have normal low density lipoprotein receptor activity. The animals, by 7 months of age, have extensive atherosclerotic lesions in all three coronary arteries. This strain of pig represents an animal model for atherosclerosis and hypercholesterolemia associated with mutations affecting the structures of plasma lipoproteins. One of the variant apolipoproteins, Lpb5, is apolipoprotein-B. A second variant apolipoprotein (Lpr1), termed apo-R, is a 23-kilodalton protein present in both the very low density (d less than 1.006 g/ml) and the very high density (d greater than 1.21 g/ml) fractions of pig plasma. Isoforms of this protein correlate with two Lpr alleles, Lpr1 and Lpr2. The Lpr genes segregate independently of the Lpb5 and Lpu1 alleles. The Lpu1 allotype is a component of low density lipoprotein and is genetically linked to Lpb5.

Alleles↗

Immunogenetic polymorphism of lipoproteins in swine: genetic, immunological and physiochemical characterization of the two allotypes Lpr1 and Lpr2.

Results of immunogenetic, immunochemical and physicochemical investigations on two serum allotypes of swine are reported. The allotypes, designated Lpr1 and Lpr2, have been identified by specific alloprecipitins in agar gel. Genetic studies indicate that the allotypes are specified by two codominant autosomal allelic genes, Lpr1 and Lpr2. All pigs 3 months of age or older were classified as belonging to one of three phenotypes, Lpr1, Lpr2 or Lpr1,2, each corresponding to one of three genotypes Lpr1/1, Lpr2/2 or Lpr1/2, respectively. The Lpr1 gene was absent or was found at low frequency in the breeds tested. The allotypes were found to occur in two physicochemical forms; in association with chylomicrons and very low density lipoproteins (VLDL) and, primarily, as a Lpr multimer free of the major lipoproteins showing very high density (VHD), d greater than 1.21 g/ml, and MW +/- 190,000. Gel-electrophoretic mobility for VHD-Lpr is different for each of the three Lpr genotypes residing in gamma-fast and beta-slow regions, but is identical for VLD-Lpr in which Lpr was found complexed with apo-B, migrating as VLDL in the alpha-2 slow (pre-beta) region. Serum levels of Lpr varied during the lifetime and between individuals and, especially, between sera of homozygous pigs being higher in Lpr1/1 than Lpr2/2. A linear relationship for Lpr1 and an atypical, inverse relationship for Lpr2 have been observed between the gene dosage, heterozygous vs. homozygous, and the Lpr serum level.

Animals↗

Polymorphism and inheritance of swine small intestinal receptors mediating adhesion of three serological variants of Escherichia coli-producing K88 pilus antigen.

Brush borders, enterocytes, or both preparations obtained from the small intestine of 345 pedigreed pigs, carrying components of seven breeds, were tested by adhesion assay in vitro with 6-32 enteropathogenic Escherichia coli strains, each expressing one of the three K88 pilus antigens, K88ab, K88ac and K88ad. With few exceptions, all pigs were classified as belonging to one of four adhesion phenotypes: I I--corresponding to K88ab(-),ac(-),ad(-); II--K88ab(-),ac(-),ad(+); III--K88ab(+),ac(+),ad(-); and IV--K88ab(+),ac(+),ad(+). The non-adhering phenotype I was found to be the most frequent among the pigs tested, with the exception of one commercial herd, and this phenotype seems to be inherited as a recessive trait. The remaining three phenotypes are adhering, or are susceptible to adherence by one K88 variant, K88ad (phenotype II), by two variants, K88ab, ac (phenotype III), or by all three K88 variants, K88ab,ac,ad (phenotype IV). Phenotype II was found to be at low frequency, whereas III and IV occurred with similar frequencies. While the prevailing phenomenon was the bacterial adhesion to all, or none, of the brush borders, some pigs exhibited both adhering and non-adhering brush borders, a mixed adherence phenotype. Preliminary segregation data, obtained from the F1 generation, seem to indicate that phenotypes III and IV correspond to two haplotypes with genes at two or three closely linked loci respectively. An alternative hypothesis is that the phenotypes III and IV are expressions of alleles at a single locus, each allele specifying a receptor able to bind two or three different serological types of K88 E. coli.

Animals↗

Linkage between the porcine genes encoding immunoglobulin heavy-chain allotypes and some serum alpha-protease inhibitors: a conserved linkage in pig, mouse and human.

Linkage between the genes coding for immunoglobulin heavy-chain allotypes and some serum alpha-protease inhibitors was demonstrated in pigs by means of segregation data in families. A recombination frequency of about 8% was estimated. This represents evolutionary conservation of an autosomal linkage group as linkage between the homologous loci has previously been reported, in humans and in mice.

Animals↗

Lipoprotein immunogenetics in primates. I. Two serum beta-lipoprotein allotypes (Lmb1 and Lmb11) in rhesus monkeys and the LP-B immunological relationship with other primates.

Immunogenetic investigations on two serum beta-lipoprotein allotypes of rhesus monkeys (Macaca mulatta) are reported. The allotypes, designated Lmb1 and Lmb11, are associated with the main lipoprotein family, LP-B or beta-lipoprotein, expressed on independent beta-molecules, and classify rhesus monkeys into three phenotypes: Lmb1, Lmb11, and Lmb1,11. Genetic and molecular studies indicate that the allotypes are encoded by two codominant autosomal allelic genes, Lmb1 and Lmb11. Anti-Lmb1 cross-reacts with the sera of two other macaque species, whereas anti-Lmb11 with sera of all Old World monkeys. Heteroimmune sera, antihuman apo-B and antirhesus LP-B, showed high but diversified degrees of cross reactivity with other primates.

Animals↗

Immunogenetic studies on low-density lipoprotein allotypes in chickens (Lcp1 and Lcp2).

Two blood plasma lipoprotein allotypes are described. Specific antiallotypic reagents were obtained from alloimmune precipitating sera produced against normal plasma and subsequently against lipoprotein fraction of d less than 1.072 g/ml. Identification studies by means of centrifugation and specific staining show that Lcp1 and Lcp2 are markers of the low-density lipoprotein class, 1.006 less than d less than 1.063 g/ml. Serological and genetic studies indicate that the two alloantigens behave as products of allelic genes, each occurring with varying frequencies in 20 lines studies. The Lcp1 antigen is always accompanied by Lcp2; however, the latter was also found to occur in plasma of birds lacking the Lcp1 marker.

Animals↗

Lipoprotein immunogenetics and atherosclerosis.

The discovery of the first human lipoprotein polymorphism by Allison and Blumberg [Lancet i:634-637, 1961] and the availability of alloimmune sera stimulated us to begin immunogenetic studies on swine in search of lipoprotein diversity and its relationship to biological functions. We found considerable lipoprotein polymorphism, complexity, and heterogeneity in this species. These results and the correlation between immunogenetically defined lipoprotein type and arterial lipidosis in swine, fed a high fat diet, are discussed. Immunogenetic studies of lipoproteins, initiated more recently in rhesus monkeys, will be reviewed also. Preliminary data show similarities between these two species with regard to polymorphism, complexity, phenotypic expression of lipoprotein genes and, most importantly, their serological relationship to human lipoproteins. We also note immunogenetic studies on lipoproteins done by other investigators, or in other species. Brief remarks on implications of the lipoproteins in atherosclerosis, their general classification, immunological properties, and immunological methods used in their study precede the immunogenetic presentation.

Animals↗

Immunogenetic polymorphism of lipoproteins in swine. 1. Four additional serum beta-lipoprotein allotypes (Lpp2, Lpp4, Lpp5 and Lpp15) in the Lpp system.

Four additional swine serum lipoprotein allotypes are described. Specific anti-allotype reagents were obtained from alloimmune precipitating sera produced in lipoprotein-defined-type recipients immunized with normal sera and subsequently with lipoprotein fractions. Identification studies indicate that the four serologically defined low-density lipoprotein (LDL) variants, designated Lpp2, Lpp4, Lpp5 and Lpp15, are members of a previously described Lpp system. The individual specificities, Lpp2, Lpp4 and Lpp5, are determined by three co-dominant autosomal genes, Lpp2, Lpp4 and Lpp5, respectively, whereas the common specificity, Lpp15, is controlled by a complex of genetic information of the Lpp2 and Lpp4 genes, and by the two previously described alleles, Lpp1 and Lpp3; Lpp15 occurs on the same molecule with respective individual specificity. The Lpp5 and Lpp15 antigens behave as a pair of alternative allotypic specificities. The double immunodiffusion test in agar was employed to demonstrate independent phenotypic expression of each allelic gene in the Lpp heterozygous animals, for the analysis of the immune sera, and for lipoprotein testing of 3305 sera. Marked differences in gene frequencies were found between the swine breeds tested. As a result of characteristic frequencies, only nine of 15 possible Lpp genotypes were found in the breeding herds tested; the remaining six genotypes were obtained from testcross matings.

Alleles↗