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Biomedical subjects

B Wiederanders

Publications and source records attributed to B Wiederanders.

At least 37 records · Page 2Linked to original sources

Hybridoma cells producing antibodies to cathepsin L have greatly reduced potential for tumour growth.

Several tumour-forming cell lines are known to secrete the precursor of a lysosomal cysteine proteinase, procathepsin L. The function in tumour growth and proliferation of this neutral-pH-labile proteinase or its precursor outside lysosomes is as yet unknown. Murine myeloma cells (P3X63Ag8.653) secrete procathepsin L and exhibit a high potential for malignant tumour growth and metastasis. Such cells were fused with spleen cells of mice immunized with cathepsin L. Clones of the resulting hybridoma cells continued to secrete procathepsin L, but also secreted the antibody to cathepsin L. Here we show that the hybridoma cells producing an antibody to cathepsin L have, to a great extent, lost the potential that they otherwise exhibit for inducing solid tumours after implantation into mice.

Animals↗

Cathepsin L immunoreactivity in the hypothalamus of normal, streptozotocin-diabetic and vasopressin-deficient Brattleboro rats.

The immunolocalization of cathepsin L in the hypothalamus of normal rats was compared with the distribution of the enzyme in streptozotocin-treated animals and in vasopressin-deficient rats (Brattleboro strain). In rats with a normal metabolic status the neurons of magnocellular nucl. supraopticus and paraventricularis stood out by intense immunostaining for cathepsin L. In rats suffering from an experimentally induced diabetes mellitus and in homozygous Brattleboro rats we observed a strong reduction in enzyme immunoreactivity in these nuclei. Since cathepsin L is capable of splitting certain hypothalamic neuropeptides that are changed in diabetic animals, a role of the enzyme in the metabolism of these peptides is imaginable. Decrease in immunoreactive cathepsin L in vasopressin-deficient rats points to a possible involvement of the enzyme in the control of fluid homeostasis.

Animals↗

Synthesis of phosphorylated oligosaccharides in lysozyme is enhanced by fusion to cathepsin D.

Chinese hamster ovary cells transfected with human lysozyme cDNA encoding Asn instead of Gly22 synthesize a mutant lysozyme, [Asn22]lysozyme, with about 60% of the molecules bearing carbohydrate. This carbohydrate is predominantly of the complex type and contains a varied number of lactosamine repeats. In this study we show that the glycosylation of [Asn22] lysozyme fused to human cathepsin D is altered relative to [Asn22]lysozyme alone. The fusion protein is synthesized as a 66-kDa precursor that is cleaved to enzymatically active and antigenically positive cathepsin D and lysozyme. As compared with [Asn22]lysozyme the lysozyme moiety of the fusion protein shows an increased N-glycosylation and a decreased synthesis of lactosamine repeats. Cleavage of the precursor with cathepsin L has revealed that the lysozyme portion of the secreted fusion protein bears a complex type carbohydrate. The intracellularly released lysozyme portion of the fusion protein contains trimmed oligosaccharides. In the presence of NH4Cl the lysosomal targeting of the fusion protein is inhibited. The secreted protein is then enriched in molecules bearing phosphorylated high mannose oligosaccharides in their lysozyme moiety. Our results indicate that carbohydrate processing in [Asn22]lysozyme, including the synthesis of mannose 6-phosphate residues and of lactosamine repeats, is altered by the attached cathepsin D. The phosphorylation of the carbohydrate on the lysozyme portion results in a very efficient lysosomal targeting of the concerned fusion protein molecules.

Animals↗

Functional expression of human cathepsin S in Saccharomyces cerevisiae. Purification and characterization of the recombinant enzyme.

A cDNA encoding the human lysosomal cysteine proteinase cathepsin S precursor has been expressed in yeast using the pVT100-U expression vector containing the alpha-factor promoter. The procathepsin S gene was expressed either as a fusion protein with the pre-region or with the prepro-region of the yeast alpha-factor precursor gene. Following in vitro processing both constructs gave an identical active mature enzyme with a molecular weight of 24,000. After prolonged cultivation of the cells the recombinant protein is also found as an active proteinase in the culture supernatant. The precursor can be activated in vitro at pH 4.5 and 40 degrees C under reducing conditions. The in vitro activated enzyme has a 6-amino acid NH2-terminal extension when compared with the native bovine enzyme. The purified enzyme displays a bell-shaped pH activity profile with a pH optimum of 6.5 and pK values of 4.5 and 7.8. The isoelectric point of the recombinant human cathepsin S is between 8.3 and 8.6 and about 1.5 pH units higher than for the bovine enzyme. The kinetic data for several synthetic substrates and inhibitors reveal a preference for smaller amino acid residues in the binding subsites S2 and S3 of cathepsin S. Like the bovine enzyme, the recombinant human cathepsin S is characterized by a broader range of pH stability (pH 5-7.5) than cathepsins B and L.

Base Sequence↗

Secretion of a latent, acid activatable cathepsin L precursor by human non-small cell lung cancer cell lines.

Secretion of pro-cathepsin L, the precursor of a lysosomal cysteine proteinase, has been described for ras-transfected mouse fibroblasts and several human cancer cell lines. The secretion of a latent but stable precursor might be a means for tumor cells to involve this proteinase in extracellular matrix breakdown. Since lung cancer is the leading cause of cancer death in the industrialized countries, we therefore studied the secretion of pro-cathepsin L in 11 human non-small cell lung cancer cell lines (EPLC 32M1, NCI H157, EPLC 272H, U1752, LCLC 103H, LCLC 97TM1, U 1810, NCI H661, NCI H23, NCI H125, and NCI H596) and 8 human small cell lung cancer cell lines (SCLC 22H, NCI H60, NCI H82, NCI H526, NCI H146, NCI H841, NCI H510, and DMS 79). Immunoblot analysis of cell conditioned media showed that latent pro-cathepsin L (M(r) 42 kDa) was secreted in all 11 non-small cell lung cancer cell lines. Three of these cell lines secreted an additional inactive form of cathepsin L of M(r) 24 kDa. In contrast, the 8 small cell lung cancer cell lines did not secrete any detectable cathepsin L-immunoreactive material. Phorbol-12-myristate-13-acetate increased the secretion of pro-cathepsin L in 6 of the non-small cell lung cancer cell lines. The cathepsin L precursor could be activated in vitro at pH 3, accompanied by a shift in molecular mass to 34 kDa. Chicken egg white cystatin prevented the acid activation. Specific antibodies against a synthetic peptide from the pro-sequence of cathepsin L reacted with the nonsmall cell lung cancer cathepsin L precursor. Extracellular pro-cathepsin L may be important in the tumor biology of non-small cell lung cancer and would be a good target for novel diagnostic and therapeutic approaches, since the majority of physiological lysosomal proteinases are contained in intracellular compartments only.

Adenocarcinoma↗

Phylogenetic conservation of cysteine proteinases. Cloning and expression of a cDNA coding for human cathepsin S.

A 1.8-kilobase full-length cDNA of human cathepsin S, a lysosomal cysteine proteinase, has been isolated. The single long open reading frame encodes a polypeptide of 331 amino acids consisting of a 15-amino acid NH2-terminal signal peptide, a propeptide of 99 amino acids, and a mature polypeptide of 217 amino acids. The deduced amino acid sequence contains only one potential N-glycosylation site located in the propeptide. The NH2-terminal amino acid sequence of the mature polypeptide was confirmed by sequencing cathepsin S purified from human spleen. The cDNA detects a 1.9-kilobase transcript in poly(A)+ RNA from human fibroblasts. Expression of human cathepsin S in transfected baby hamster kidney cells resulted in up to more than 300-fold cathepsin S activity as compared to untransfected controls. In the expressing baby hamster kidney cells, human cathepsin S is transported to the lysosomes via the mannose 6-phosphate receptor pathway as shown by density gradient centrifugation, immunofluorescence, and detection of the 37-kDa cathepsin S precursor in the medium in the presence of NH4Cl. The deduced amino acid sequence of human cathepsin S exhibits a substantial degree of similarity with other human cysteine proteinases and papain indicating that they have a common ancestral gene and are members of a gene family.

Amino Acid Sequence↗

Lysosomal proteinases as putative diagnostic tools in human neuropathology: Alzheimer disease (AD) and schizophrenia.

The cathepsin B, D and L were studied by immunohistochemical techniques in the human postmortem brain. The enzyme were primarily localized in neurons. Makroglial cells were seldom immunostained. It is shown that cathepsins B and D frequently occur in neuritic plaques of Alzheimer victims, thereby raising the question, whether or not cathepsin immunohistochemistry is a useful tool in the diagnosis of this disease. Furthermore, we identified certain glial cells to be immunoreactive for cathepsins in schizophrenics.

Aged↗

Primary structure of bovine cathepsin S. Comparison to cathepsins L, H, B and papain.

The primary structure of bovine cathepsin S was determined by combining results of protein and peptide sequencing with the sequence deduced from nucleic acid sequencing. Using polymerase chain reaction (PCR) technology, cDNA clones commencing at amino acid 22 of the mature enzyme and continuing through the 3' untranslated region of bovine cathepsin S mRNA were isolated and sequenced. The open reading frame in these overlapping clones correctly predicts the determined amino acid sequence of 13 tryptic peptides derived from purified bovine spleen cathepsin S. The deduced amino acid sequence shows that mature bovine cathepsin S consists of 217 amino acids corresponding to a molecular weight of 23.7 kDa. Cathepsin S belongs to the papain superfamily of lysosomal cysteine proteinases and shares 41% identity with papain. Amino acid sequence identities of bovine cathepsin S to human cathepsins L, H, and B are 56%, 47% and 31% respectively.

Amino Acid Sequence↗

Ultrastructural study of cathepsin B immunoreactivity in rat brain neurons: lysosomal and extralysosomal localizations of the antigen.

Cathepsin B was localized in multiple neurons of the rat central nervous system by means of the peroxidase-antiperoxidase technique and immunogold labeling using a polyclonal antiserum produced in rabbits against rat liver enzyme. The main intracellular locus of cathepsin B antigenic sites was in lysosomes. In some cases, however, immunoreactive material was also detected outside lysosomes (i.e. at the membranes of the rough endoplasmic reticulum). The findings are discussed with respect to the proposed role of the enzyme in the general protein metabolism of the brain and the potency of the antiserum to label the proform of cathepsin B.

Animals↗

Antigenic expression of cathepsin B in aged human brain.

The lysosomal thiol proteinase, cathepsin B, has been localized in different regions of aged human brain by use of the peroxidase-antiperoxidase technique. Cathepsin B-immunoreactive material was detected in multiple neurons of human hippocampus, neocortical area A 10, prefrontal gyrus and nuc. basalis of Meynert as well as in single white matter astrocytes. In brains of Alzheimer disease-affected subjects cathepsin B was revealed in neuritic plaques too. Possible functional consequences with regard to normal aging, neuropeptide metabolism and pathological changes are discussed.

Aged↗

Localization and activity of various lysosomal proteases in Leishmania amazonensis-infected macrophages.

In mammalian hosts, Leishmania amastigotes are obligatory intracellular parasites of macrophages and multiply within parasitophorous vacuoles of phagolysosomal origin. To understand how they escape the harmful strategies developed by macrophages to kill ingested microorganisms, it is important to obtain information on the functional state of parasitophorous vacuole. For this purpose, we studied the intracellular distribution and activity of host lysosomal proteases in rat bone marrow-derived macrophages infected with Leishmania amazonensis amastigotes. Localization of cathepsins B, H, L, and D was investigated by using specific immunoglobulins. In uninfected macrophages, these enzymes were located in perinuclear granules (most of them were probably secondary lysosomes) which, after infection, disappeared progressively. In infected macrophages, cathepsins were detected mainly in the parasitophorous vacuoles, suggesting that the missing secondary lysosomes had fused with these organelles. Biochemical assays of various proteases (cathepsins B, H, and D and dipeptidyl peptidases I and II) showed that infection was accompanied by a progressive increase of all activities tested, except that of dipeptidyl peptidase II, which remained constant. No more than 1 to 10% of these activities could be attributed to amastigotes. These data indicate that (i) Leishmania infection is followed by an increased synthesis and/or a reduced catabolism of host lysosomal proteases, and (ii) amastigotes grow in a compartment rich in apparently fully active proteases. Unexpectedly, it was found that infected and uninfected macrophages degraded endocytosed proteins similarly. The lack of correlation in infected macrophages between increase of protease activities and catabolism of exogenous proteins could be linked to the huge increase in volume of the lysosomal compartment.

Animals↗

Cathepsin S from bovine spleen. Purification, distribution, intracellular localization and action on proteins.

Cathepsin S was detected in bovine kidney, spleen, lymph nodes and lung by immunochemical methods. The immunostaining of cathepsin S in kidney was concentrated to the cells of the proximal tubule, where the enzyme was present in cytoplasmic granules. The purification method for cathepsin S from bovine spleen involved (NH4)2SO4 fractionation, chromatography on CM-Sephadex C-50, gel filtration on Sephacryl S-200 and chromatofocusing (pH 8.0-6.0). The enzyme was partially destroyed by autolysis of the homogenate at pH 4.2. The isoelectric point of cathepsin S was 7.0. Cathepsin S was found to hydrolyse proteins at a similar rate to cathepsin L below pH 7.0. At pH values of 7.0-7.5 cathepsin S retained most of its activity, whereas cathepsin L was completely inactive.

Animals↗

The specificity of bovine spleen cathepsin S. A comparison with rat liver cathepsins L and B.

The peptide-bond-specificity of bovine spleen cathepsin S in the cleavage of the oxidized insulin B-chain and peptide methylcoumarylamide substrates was investigated and the results are compared with those obtained with rat liver cathepsins L and B. Major cleavage sites in the oxidized insulin B-chain generated by cathepsin S are the bonds Glu13-Ala14, Leu17-Val18 and Phe23-Tyr26; minor cleavage sites are the bonds Asn3-Gln4, Ser9-His10 and Leu15-Tyr16. The bond-specificity of this proteinase is in part similar to the specificities of cathepsin L and cathepsin N. Larger differences are discernible in the reaction with synthetic peptide substrates. Cathepsin S prefers smaller neutral amino acid residues in the subsites S2 and S3, whereas cathepsin L efficiently hydrolyses substrates with bulky hydrophobic residues in the P2 and P3 positions. The results obtained from inhibitor studies differ somewhat from those based on substrates. Z-Phe-Ala-CH2F (where Z- represents benzyloxycarbonyl-) is a very potent time-dependent inhibitor for cathepsin S, and inhibits this proteinase 30 times more efficiently than it does cathepsin L and about 300 times better than it does cathepsin B. By contrast, the peptidylmethanes Z-Val-Phe-CH3 and Z-Phe-Lys(Z)-CH3 inhibit competitively both cathepsin S and cathepsin L in the micromolar range.

Amino Acid Sequence↗

Potent and selective inactivation of cysteine proteinases with N-peptidyl-O-acyl hydroxylamines.

A series of N-peptidyl-O-acyl hydroxylamines was synthesized and tested as inactivators of cysteine proteinases. Depending on the structure of the peptidyl residue of the inhibitors, rapid and complete irreversible inactivation of the lysosomal cathepsins, B, L and S, may be achieved. The most effective inhibitors display second-order rate constants of the inactivation in the range 10(5)-10(6) M-1.s-1. By contrast, the activity of the aminoendopeptidase cathepsin H is only negligibly affected by the N-terminal-protected peptidyl inhibitors.

Amino Acid Sequence↗

The processing of a cathepsin L precursor in vitro.

Subcultured rat fibroblasts secreted a cathepsin L precursor when maintained for 24 h in serum-free medium containing 20 mM ammonium ions. The precursor was identified by immunoblotting after sodium dodecyl sulfate-polyacrylamide gel electrophoresis using polyclonal antibodies to cathepsin L. The molecular mass of the precursor was found to be approximately 39 kDa, which confirms the result originally reported by Y. Nishimura et al. (1988, Arch. Biochem. Biophys. 263, 107-116). Treatment of the precursor containing medium with cathepsin D at pH values ranging from 3.5 to 5.5 caused a limited cleavage of the precursor molecule. The resultant polypeptides are an unstable intermediate form with Mr 35,000 and a stable single chain form of cathepsin L showing a Mr about 32,500. The cathepsin D-mediated conversion was strongly accelerated by Hg2+ ions. A further proteolytic cleavage of the 32.5-kDa polypeptide has not been observed. The enzymatic activity toward Z-Phe-Arg-NHMec at pH 5.5 increased during the conversion, indicating that active cathepsin L was formed from an inactive precursor molecule.

Animals↗

ATP-activated, high-molecular-mass proteinase-I from rat skeletal muscle is a cysteine proteinase-alpha 1-macroglobulin complex.

From rat skeletal muscle tissue we have isolated and purified a proteolytic activity of molecular mass 750 kDa. The enzyme, designated 'proteinase I', which has been found to be located in capillaries of skeletal muscle tissue, catalyzes the hydrolysis of Z-Phe-Arg-MCA and [14C]methylcasein and this process is activated about 2-fold by ATP. As judged by SDS-polyacrylamide gel electrophoresis the subunit pattern of 'proteinase I' is similar to alpha-macroglobulin. Immunoelectrophoretic analyses of 'proteinase I' with antisera to rat alpha 1-macroglobulin, alpha 2-macroglobulin, and rat liver cathepsins reveal that this high-molecular-mass proteinase is a complex of alpha 1-macroglobulin and the cysteine proteinases cathepsin B, H and L. A similar 'proteinase' has been isolated from rat serum. Two ATP-activated high molecular-mass proteinases that have been previously identified in liver and heart muscle by other investigators equally show a positive immunological reaction with the antiserum raised against 'proteinase I'. From these data, together with results presented in an accompanying paper (Kuehn, L., Dahlmann, B., Gauthier, F. and Neubauer, H.-P. (1989) Biochim. Biophys. Acta 991, 263), we conclude that the ATP-stimulated high-molecular-mass proteolytic activity is partly due to the presence of a complex of alpha-macroglobulin and cysteine proteinases.

Adenosine Triphosphate↗