Aminopeptidase when in its integral form interacts with lecithin to form a stable lipoprotein complex. The reconstituted system is a single-bilayer vesicle about 30 nm in diameter. The hydrophobic part of the amphipathic hydrolase is incorporated in the lecithin bilayer with the portion carrying enzymic activity oriented towards the external aqueous phase. This part can be detached by proteases.
Marginal-zone B cells of the mucosa-associated lymphoid tissue (MALT) are the normal counterpart of the neoplastic cells in MALT lymphoma. In both cases these lymphocytes express surface immunoglobulins, but are negative when stained for B cell associated antigens like CD10 and CD23. Furthermore, the B cell gene rearrangement has been found in Helicobacter pylori associated chronic gastritis and in extranodal type of marginal-zone lymphoma. The aim of this study was to quantify the number of IgM-, CD10-, and CD23-positive lymphocytes in patients with type B gastritis and to compare the results with the antigen profile of mononuclear cells in patients with gastritis not associated with H. pylori. Additionally, the immunoglobulin heavy-chain (IgH) gene rearrangement in H. pylori positive and H. pylori negative gastritis was studied. From 23 patients with a positive urease test and/or histologically proven H. pylori infection and chronic gastritis and from 22 patients with H. pylori negative chronic gastritis mucosa biopsy specimens were taken. Single-cell suspensions were obtained following enzymatic digestion. For immunocytochemistry, an alkaline phosphatase-antialkaline phosphatase method was applied. IgH gene rearrangement in formalin-fixed, paraffin-embedded specimens was determined by polymerase chain reaction in 11 patients with chronic gastritis. An increase in mu-positive plasma cells and B lymphocytes was detected in patients with H. pylori positive gastritis as compared with patients with H. pylori negative gastritis (10.0 vs. 3.9%, p < 0.001, and 4.3 vs. 1.6%, p < 0.01, respectively). In both groups, the proportion of CD10- and CD23-positive lymphocytes was <1%. IgH gene rearrangement was not restricted to type B gastritis; single bands were also present in 3 of 7 patients with H. pylori negative chronic gastritis. Our finding of IgH gene rearrangement in some of the patients with H. pylori negative chronic gastritis indicates that additional factors may be critical for these genotypical changes and for the pathogenesis of gastric MALT lymphoma.
We have isolated and investigated an esterase/phospholipase A (EC 3.1.1) which is an intrinsic protein of the small-intestine brush border membrane of adult but not of preweaning rabbits. This enzyme had been referred to previously as AdRabB [Bell, W., Schmid-Chanda, T., Semenza, G., & Mantel, N. (1993) J. Biol. Chem. 268, 12901-12911]. Its amino acid sequence shows four extensive, homologous repeats between the signal sequence and a hydrophobic stretch in the C-terminal region. We have identified a serine residue (Ser(400)) in the (unexpectedly) single catalytic site and indicate that this esterase is likely to operate by way of a Ser-His-Asp/Glu triad. This esterase/phospholipase A is synthesized as a single polypeptide chain of 170-180 kDa, agreeing well with the size deduced from its cognate cDNA sequence [Boll, W., et al. (1993) J. Biol. Chern. 268, 12901-12911], and it undergoes (at least) N-glycosylation. Once it has reached the brush border membrane, it is subjected in vivo to two types of proteolytic processing, presumably by pancreatic protease(s): a split after Arg(263), With loss of the first N-terminal repeat, and two or more cleavages much farther downstream but still located in the luminal bulk of the protein; these splits lead to multiple bands of approximately 140, 125, 100, and 90 kDa.
Subjecting rabbit small intestinal brush border membrane vesicles (BBMV) to freeze-thaw cycles releases water-soluble lipid exchange (transfer) proteins into the supernatant. They differ widely in apparent molecular weight and catalyze cholesterol, phosphatidylcholine, and phosphatidylinositol exchange between two populations of small unilamellar lipid vesicles. In order to determine their interrelations, the smallest water-soluble lipid exchange protein was purified to homogeneity by gel filtration on Sephadex G-75 and cation exchange chromatography on Mono S. It is a basic protein of apparent molecular mass of 13 +/- 0.5 kDa. The purified protein was used to raise polyclonal antibodies, Polyclonal antibodies were also produced against a lipid exchange protein of apparent molecular mass of 100-120 kDa. By comparing lipid exchange, lipid binding, and immunological properties of the water soluble lipid exchange proteins it can be shown that the 13-kDa (peak 3) protein is related to the 100-120 kDa (peak 1) protein; the properties of these two proteins are different from those of the peak 2 lipid exchange protein of apparent molecular mass of 22 kDa. Based on the immunological cross-reactivity observed between the 13 and 100-120 kDa and the lipid binding properties of these two proteins, a working hypothesis is proposed: both proteins are probably part of an intergral membrane protein of the brush border membrane that facilitates cholesterol and phosphatidylcholine absorption in this membrane. Evidence derived from immunogold labeling of BBMV supports the notion that this protein is located on the external (luminal) side of the brush border membrane. The analogous behavior of rabbit and human small intestinal brush border membrane in terms of lipid absorption and the release of water-soluble lipid exchange proteins is discussed.
A. Reiter', M. Tiemann , W.-D. Ludwig, H-H Wacker, E. Yakisan', M. Schrappe', D. Henzler', K.-w. Sykora', A. Brandt', E. Odenwald', H Riehm', R. Parwaresch , für die BFM Studiengruppe. I Abt. Päd. Hämatologie/Onkologie, Med. Hochschule Hannover 2 Lymphknotenregister bei der Deutschen Gesellschaft für Pathologie im Institut für Hämatopathologie. Christian-Albrechts-Unitersität zu Kiel J Abt. Medizinische Onkologie und angewandte Molekularbiologie, FU Berlin, Robert-Rössle Klinik. Berlin
A AgF/TFA-promoted highly efficient synthesis of a wide range of α-haloketones from haloalkynes is described. The reactions are conducted under convenient conditions and provide products in moderate to excellent yields, with broad substrate scope, including a variety of aromatic chloroalkynes and bromoalkynes.
Lactase-phlorizin hydrolase was isolated by immunoadsorption chromatography from rabbit brush-border membrane vesicles. Inactivation of the enzyme with [3H]conduritol-B-epoxide, a covalent active site-directed inhibitor, labeled glutamates at positions 1271 and 1747. Glu1271 was assigned to lactase, Glu1747 to phlorizin hydrolase activity. In contrast, the nucleophiles in the active sites of sucrase-isomaltase are aspartates (Asp505 and Asp1394). Asp505 is a part of the isomaltase active site and is localized on the larger subunit, which carries the membrane anchor also, while Asp1394 is a part of the active of sucrase. Alignment of these 2 nucleophilic Glu residues in lactase-phlorizin hydrolase and of their flanking regions with published sequences of several other beta-glycosidases allows the classification of the configuration retaining glycosidases into two major families: the "Asp" and the "Glu" glycosidases, depending on the carboxylate presumed to interact with the putative oxocarbonium ion in the transition state. We offer some predictions as to the Glu acting as the nucleophile in the active site of some glycosidases. By hydrophobic photolabeling, the membrane-spanning domain of lactase-phlorizin hydrolase was directly localized in the carboxyl-terminal region thus confirming this enzyme as a monotopic type I protein (i.e. with Nout-Cin orientation) of the brush-border membranes. A simplified version of the Me2+ precipitation method to efficiently and simply prepare brush-border membrane vesicles is also reported.
alpha,alpha-Trehalase (EC 3.2.1.28), an intrinsic protein of intestinal brush-border membranes, was purified to homogeneity from rabbits. Partial amino acid sequences were determined. Two degenerate oligonucleotides based on the sequence of a CNBr peptide were employed in a polymerase chain reaction to amplify a 71-base pair fragment of trehalase DNA with rabbit intestine cDNA as a starting template. This fragment was used as a hybridization probe to isolate full length trehalase clones from a rabbit intestine cDNA bank. Sequence analysis revealed that trehalase comprises 578 amino acids, contains at the amino terminus a typical cleavable signal sequence, at the carboxyl terminus a rather hydrophobic region typical of proteins anchored via glycosylphosphatidylinositol, and four potential N-glycosylation sites. Trehalase has no sequence homologies with other sequenced brush-border glycosidases. Northern blot analysis revealed a 1.9-kilobase trehalase mRNA in small intestine and kidney, smaller amounts in liver, and none in lung. Southern blot analysis indicated the gene has a length of 20 kilobase pairs or less. Injection into Xenopus laevis oocytes of mRNA synthesized in vitro from a trehalase template resulted in the expression of trehalase activity several hundredfold above background. The trehalase activity was membrane-bound and could be solubilized upon digestion with phosphatidylinositol-specific phospholipase C from Bacillus thuringiensis. This strongly suggests that rabbit small intestinal trehalase is anchored via glycosylphosphatidylinositol also when expressed in X. laevis oocytes.
We report the primary structures of human and rabbit brush border membrane beta‐glycosidase complexes (pre‐pro‐lactase‐phlorizin hydrolase, or pre‐pro‐LPH, EC 3.2.1.23‐62), as deduced from cDNA sequences. The human and rabbit primary translation products contain 1927 and 1926 amino acids respectively. Based on the data, as well as on peptide sequences and further biochemical data, we conclude that the proteins comprise five domains: (i) a cleaved signal sequence of 19 amino acids; (ii) a large ‘pro’ portion of 847 amino acids (rabbit), none of which appears in mature, membrane‐bound LPH; (iii) the mature LPH, which contains both the lactase and phlorizin hydrolase activities in a single polypeptide chain; (iv) a membrane‐spanning hydrophobic segment near the carboxy terminus, which serves as membrane anchor; and (v) a short hydrophilic segment at the carboxy terminus, which must be cytosolic (i.e. the protein has an Nout‐Cin orientation). The genes have a 4‐fold internal homology, suggesting that they evolved by two cycles of partial gene duplication. This repetition also implies that parts of the ‘pro’ portion are very similar to parts of mature LPH, and hence that the ‘pro’ portion may be a water‐soluble beta‐glycosidase with another cellular location than LPH. Our results have implications for the decline of LPH after weaning and for human adult‐type alactasia, and for the evolutionary history of LPH.
Cell-free translation of total RNA from rabbit intestinal mucosa in a rabbit reticulocyte lysate, after immunoprecipitation with antibodies directed against sucrase-isomaltase, yielded a polypeptide of 200 kDa, which was identified as pro-sucrase-isomaltase. Addition of dog pancreatic microsomal vesicles to the translation system resulted in the appearance of an additional 220-kDa polypeptide. The 220-kDa polypeptide was associated with the membranes in a way that made it inaccessible to proteolysis; this protection was abolished by lytic detergent concentrations, indicating that the polypeptide was segregated into the microsomal vesicle. The 220-kDa polypeptide was glycosylated as evidenced by it being bound to concanavalin A-Sepharose and eluted with alpha-methyl-D-mannopyranoside. The increase in apparent molecular mass (approximately 20 kDa) of the primary translation product upon translocation was due to the addition of carbohydrate; treatment of the 220-kDa polypeptide with endo-beta-N-acetylglucosaminidase H increased its electrophoretic mobility to that of the 200-kDa polypeptide which was obtained in the absence of membranes. Partial N-terminal amino acid sequence of a translation product labeled with [3H]Leu in the absence of membranes revealed that Leu was incorporated into identical positions as in the final (pro)-sucrase-isomaltase, thus indicating the lack of a transient signal peptide.
The enzyme responsible for all of the isomaltase activity and much of the maltase activity in the small intestine of the Californian sea lion (Zalophus californianus) was isolated by detergent solubilization of the brush-border membrane, followed by immunoadsorption chromatography using antibodies directed against rabbit sucrase-isomaltase. In 0.1% Triton X-100, sea lion isomaltase occurs as a monomer of Mr = 245,000 and is composed of a single polypeptide chain. As judged from the stoichiometry of the covalent binding of the affinity label, conduritol-B-epoxide, this polypeptide chain carries two enzymatically active sites; they are apparently identical and do not show either positive or negative cooperativity. In addition to cross-reacting immunologically with rabbit sucrase-isomaltase, sea lion isomaltase has similar overall enzymatic properties, with the exception of not hydrolyzing sucrose. The Alaskan fur seal (Collarhinus ursinus) has a two-active site isomaltase; however, in contrast to the sea lion, this animal is endowed with a small but significant sucrase activity. Along with (fully active) pro-sucrase-isomaltase, sea lion isomaltase is one of the very few examples of enzymes with more than one active site on a single polypeptide chain acting "in parallel" (rather than "in series"). Furthermore, this enzyme triggers some interesting questions on the phylogenetical pedigree of small intestinal sucrase-isomaltase.
The sucrase-isomaltase complex (SI) of the small intestinal brush border membrane accounts for approximately 9-10% of the intrinsic protein. The isomaltase subunit alone interacts with the membrane directly, via a highly hydrophobic segment at its N-terminal region. This segment has a helical conformation for more than 85% and crosses the membrane twice, the N-terminus being located at the outer, luminal side of the membrane. The sucrase subunit is attached to the membrane solely via its interactions with the isomaltase subunit. The sucrase-isomaltase complex is synthesized as a single, very long (Mr approximately 260 000) polypeptide chain (pro-SI, carrying the two sites of sucrase and isomaltase in an already enzymically active form), with the isomaltase portion corresponding to the N-terminal part of pro-SI. Pro-SI is processed into 'final' SI by pancreatic proteases. Recently the cell-free translation of pro-SI has been achieved in vitro. From a detailed knowledge of the anchoring of SI (and pro-SI) in the membrane it has been possible to suggest one particular mechanism as the most likely for the synthesis, insertion and assembly of pro-SI.
This chapter describes the application of chemical labeling reagents developed to gain a better understanding of sucrase-isomaltase enzyme complex, and how this anchoring peptide is structured and folded within the membrane. Knowledge of the folding pattern is an important step toward formulating a possible mechanism of biosynthesis and membrane insertion of this enzyme complex. The chapter also discusses the conditions for the cell-free synthesis of the precursor TM and a possible explanation for the particular topological arrangement of sucrase-isomaltase. This technique, therefore, represents a valuable complement to surface-labeling techniques of membranes. The chapter suggests that pro-sucrase-isomaltase (pro-SI) is synthesized with a leader peptide–an assumption justified by the fact that the N-terminal of I is located on the extracellular side. A first hairpin would establish the first insertion into the membrane, and a second hydrophobic hydrophilic hairpin would follow immediately, and the rest of pro-sucrase-isomaltase could be synthesized and extruded either completely or up to another hydrophobic segment situated closely to the C terminus.
The hog sucrase—isomaltase complex is anchored to the small‐intestinal brush border membrane, as in the rabbit, via a hydrophobic segment located in the N‐terminal region of the isomaltase subunit. The immediate precursor of the ‘final’ sucrase—isomaltase (i.e., pro‐sucrase—isomaltase as prepared from adult hogs whose pancreas had been disconnected from the duodenum) is an amphiphilic single polypeptide chain of M r 260 000–265 000. Its N‐terminal sequence is virtually identical with (not merely homologous to) the corresponding region of the isomaltase subunit of ‘final’ sucrase‐isomaltase. This shows that the isomaltase portion of pro‐sucrase—isomaltase in the N‐terminal ‘half’ of the precursor polypeptide chain. Thus the succession of domains in pro‐sucrase—isomaltase and its mode of anchoring in the membrane could be deduced. On this basis a likely mechanism of biosynthesis and insertion is proposed.
The dimeric enzyme sucrase-isomaltase (a complex of sucrose alpha-glucohydrolase, EC 3.2.1.48 and oligo-1,6-glucosidase (dextrin 6 alpha-D-glucanohydrolase), EC 3.2.1.10) of the rat small intestinal microvillus membrane is synthesized as a single chain enzymatically active precursor protein. This precursor (called pro-sucrase-isomaltase) was purified from fetal intestinal transplants in which sucrase-isomaltase was found almost exclusively in the uncleaved precursor form. A two-step procedure was developed using monoclonal antibody affinity chromatography on protein A Sepharose CL-4B followed by preparative sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The NH2-terminal sequence of purified pro-sucrase-isomaltase was identical with that of the isolated isomaltase subunit which possesses the membrane anchor for the mature enzyme complex but differed from the NH2-terminal sequence of the sucrase subunit. This identity shows that the isomaltase domain comprising the membrane anchor is synthesized prior to the bulk of the protein destined to be localized on the luminal side of the microvillus membrane. A model is proposed for the mode of membrane assembly and the subsequent cleavage of pro-sucrase-isomaltase into its mature subunits.
The hog sucrase—isomaltase complex is anchored to the small-intestinal brush border membrane, as in the rabbit, via a hydrophobic segment located in the N-terminal region of the isomaltase subunit. The immediate precursor of the ‘final’ sucrase—isomaltase (i.e., pro-sucrase—isomaltase as prepared from adult hogs whose pancreas had been disconnected from the duodenum) is an amphiphilic single polypeptide chain of Mr 260 000–265 000. Its N-terminal sequence is virtually identical with (not merely homologous to) the corresponding region of the isomaltase subunit of ‘final’ sucrase-isomaltase. This shows that the isomaltase portion of pro-sucrase—isomaltase in the N-terminal ‘half’ of the precursor polypeptide chain. Thus the succession of domains in pro-sucrase—isomaltase and its mode of anchoring in the membrane could be deduced. On this basis a likely mechanism of biosynthesis and insertion is proposed.