Search PubMed⌕ Search

Biomedical subjects

I Lindberg

Publications and source records attributed to I Lindberg.

At least 55 records · Page 3Linked to original sources

Proenkephalin transgenic mice: a short promoter confers high testis expression and reduced fertility.

The regulation and possible function of the preproenkephalin gene in testis were studied in vivo in transgenic mice containing: (1) bases -193 to +210 of the human proenkephalin gene and an additional one kilobase of 3' proenkephalin flanking sequence driving expression of bacterial chloramphenicol acetyltransferase (CAT), and (2) the same promoter and flanking sequences driving expression of a rat proenkephalin cDNA. Five lines of mice, designated HEC1-5, expressed the first construct and 10, HER1-10, the second. Each HEC male and many HER males showed dramatic expression of the transgene in the testis, although much lower expression was observed in the brain and other enkephalin-producing tissues. High levels of expression in testis can thus be achieved with a very short promoter region and do not require intron A sequences previously considered necessary. Altered enkephalin expression may affect testicular function. One founder, HER8, displayed grossly abnormal testicular morphology and was completely infertile. A second founder, HER6, had low sperm motility. Two offspring from other lines also displayed subnormal fertility. These studies support a role for specific promoter sequences in testis expression and may further support a significant role for proenkephalin in testicular function.

Animals↗

Evidence for cleavage of the PC1/PC3 pro-segment in the endoplasmic reticulum.

AtT-20 cells contain two molecular weight forms (87 and 66 kDa) of the prohormone convertase PC1 (also known as PC3), thought to be involved in prohormone maturation. In this study we found that PC1 is first synthesized as a 94-kDa protein, which is then rapidly converted to a 84-kDa form. Two lines of evidence suggest that the generation of the 84-kDa protein from its 94-kDa precursor occurs in the endoplasmic reticulum (ER). The processing of the 94-kDa protein to the lower molecular weight form was extremely rapid, occurring with a half-life less than 2 min. The 84-kDa form was initially endoglycosidase H-sensitive, indicating lack of acquisition of sugars transferred in the medial Golgi. Within 40 min after the labeling period, the 84-kDa protein was converted to an endoglycosidase H-resistant form of 87 kDa, which was then processed to an endoglycosidase H-resistant 66-kDa protein. Radiosequencing of the 87- and 66-kDa proteins indicated that the biosynthesis of the 87-kDa protein involves the removal of the 83 amino acid Pro segment and that the processing of the 87-kDa to the 66-kDa form occurred by cleavage of a carboxy-terminal segment. Brefeldin A did not interrupt the cleavage of the 94-kDa to the 87-kDa protein, but completely blocked the processing of the 84- to 87-kDa proteins to the 66-kDa species. The 84-kDa protein produced in brefeldin-treated cells remained sensitive to endoglycosidase H, indicating a lack of exposure to Golgi sugar transferases.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Cellular distributions of the prohormone processing enzymes PC1 and PC2.

The prohormone convertases PC1 (also known as sPC3) and PC2 are known to mediate the proteolytic conversion of inactive neuropeptide and hormone precursors to bioactive peptide products. In this study we have used sucrose density centrifugation to determine the subcellular distributions of the various forms of PC1 and PC2 in three different cell types, AtT-20, beta TC3, and PC12 cells. The former two cell lines naturally express PC enzymes, while PC12 cell clones expressing PCs were obtained by stable transfection. Our data show considerable cell-line specific variation in PC processing, with PC12 cells exhibiting the most complete processing of both enzyme precursors. While in all cell lines mature forms of both enzymes were stored within particles having the same buoyant density as secretory granule markers, in some cell lines substantial amounts of mature PC1 and PC2 were also associated with the Golgi marker. Processing of the two PC precursors was not interdependent since PC12 cells expressing only one of the two PCs were fully capable of enzyme maturation. Interestingly, analysis of intracellular processing of an endogenous peptide precursor, proneurotensin, revealed that transfected PC1, but not PC2, showed enzymatic activity against this precursor.

Animals↗

Differential processing of proenkephalin by prohormone convertases 1(3) and 2 and furin.

Recombinant vaccinia virus vectors were used to coexpress mouse prohormone convertase 1 (mPC1), mPC2, or human furin together with human proenkephalin in GH4C1 cells (rat pituitary somatomammotrophs) to examine the proteolytic processing of proenkephalin by these enzymes. Radioimmunoassays performed on high pressure gel permeation size-fractionated extracts obtained from GH4C1 cells and corresponding conditioned media revealed distinct profiles of immunoreactivity for products generated by each enzyme. PC1 produced intermediate sized processing products (3-10 kDa); the major immunoreactive enkephalin-containing species observed eluted at the positions of peptide B, the 5.3-kDa fragment, and free Leu5-enkephalin. PC2 exhibited a more complete processing profile. The major immunoreactive enkephalins produced were free Met5-enkephalin-Arg-Phe, free Met5-enkephalin-Arg-Gly-Leu, free Leu5-enkephalin, and free Met5-enkephalin. Thus PC2 appears to be more capable of generating active opioid units from proenkephalin than is PC1. Finally, furin cleaved proenkephalin to generate peptide B, an unidentified peak between the 18- and 5.3-kDa fragments, and a small amount of the 5.3-kDa fragment. Radiosequencing data verified that the production of the 5.3-kDa fragment by PC1 occurred as a result of a Lys-Lys cleavage. The ability of PC1 to cleave proenkephalin (but not proopiomelanocortin) at a Lys-Lys site implies that the structural context of the paired basic cleavage site may be more important in the determination of cleavage specificity than the particular pair of basic residues at the site.

Amino Acid Sequence↗

Biosynthesis of the prohormone convertase PC2 in Chinese hamster ovary cells and in rat insulinoma cells.

The biosynthesis of the prohormone convertase PC2 was studied in Chinese hamster ovary cells stably transfected with PC2 cDNA (CHO/PC2) and in rat insulinoma cells (Rin5f). The major form of PC2 synthesized by CHO/PC2 cells was a 75-kDa protein corresponding to proPC2; this protein was retained intracellularly for 2-4 h following synthesis, suggesting prolonged intracellular residence. In contrast, the major form of PC2 within Rin cells initially exhibited a molecular mass of 72 kDa and was then progressively converted to a 64-kDa species. This 64-kDa species, which required 1-2 h to be released, was the major PC2 form detectable in Rin cell medium. Calcium-dependent benzyloxycarbonyl-Arg-Ser-Lys-Arg-aminomethylcoumarin cleaving activity was found in spent Rin cell medium; this activity could be immunoprecipitated with a carboxyl-terminal PC2 antibody, but not with preimmune serum. In neither cell line did intracellular PC2 become endoglycosidase H-resistant over time. PC2 released from Rin cells was also endoglycosidase H-sensitive. Microsequencing and endoglycosidase H results indicate that 75-kDa CHO cell PC2 and 72-kDa Rin cell PC2 both represent proPC2. We speculate that (a) PC2 undergoes unusual glycosylation, which may be related to its slow release from cells, and (b) the 64-kDa molecule detectable in spent Rin cell medium represents the enzymatically active form of PC2.

Amino Acid Sequence↗

Purification and characterization of the prohormone convertase PC1(PC3).

The prohormone convertases PC1 (also known as PC3) and PC2 have been implicated in the biosynthesis of several polypeptide hormones and neuropeptides. In order to understand the regulation and the cell biology of prohormone cleavage, we have purified recombinant mouse PC1 from the conditioned medium of overexpressing Chinese hamster ovary cells. Recombinant PC1 was found to be an 87-kDa calcium-dependent proteinase with an inhibitor profile similar to that of Kex2 and furin. However, unlike furin, the optimum pH for PC1 activity is between pH 5.5 and 6.5. Like furin, the enzyme is activated at millimolar rather than at micromolar concentrations of calcium. Chinese hamster ovary/PC1 cells secrete the mature form of PC1, converted by a proteolytic cleavage on the carboxyl side of the RSKR motif located at residues 80-83. This conversion occurs very early in biosynthesis, suggesting that, like Kex2 and furin, PC1 may be activated autocatalytically. Specificity studies with fluorogenic substrates showed that the enzyme prefers substrates with an arginine 4 amino acids amino-terminal to the cleavage site; synthetic tripeptide substrates containing only pairs of basic amino acids are not well cleaved. However, the neuropeptide precursor proenkephalin is cleaved by PC1 to yield a peptide B-sized peptide; since peptide B represents the naturally occurring carboxyl-terminal fragment of proenkephalin, these data suggest a role for PC1 in the processing of this precursor.

Amino Acid Sequence↗

Release of the prohormone convertase PC1 from AtT-20 cells.

AtT-20 cells are known to synthesize two molecular weight forms of the prohormone converting enzyme PC1 with molecular masses of 87 and 66 kDa. In this study we have analyzed basal and stimulated secretion of these proteins. Western blot results show that basal secretion medium of cultured AtT-20 cells contained low concentrations of both the 87 and 66 kDa forms of PC1 with the former protein predominant. During the stimulation period with CRF, cAMP and cAMP + BaCl2, increased release of both proteins was observed, but the 66 kDa protein predominated. Secretion medium obtained from stimulated and unstimulated cells was enzymatically active against the Cbz-Arg-Ser-Lys-Arg-AMC fluorogenic substrate as well as against 35S-proenkephalin. This activity was Ca+2 dependent and was inhibited by the chelating agent EDTA. The activity was insensitive to acid and thiol proteinase inhibitors as well as to N-alpha-p-tosyl-L-Lys-chloromethyl ketone; it was slightly sensitive to phenylmethyl sulfonyl fluoride and was strongly inhibited by D-Tyr-Ala-Lys-Arg-chloromethyl ketone. This inhibitor profile exhibits strong similarities to furin and kexin. After partial purification of medium by gel filtration chromatography, a portion of the enzymatic activity and immunoreactivity for both 87 kDa and 66 kDa proteins eluted with an apparent molecular weight of 400 kDa (suggesting aggregation); however the highest activity appeared in the elution position of the 66 kDa monomer. When the 87 kDa protein was removed from the medium by means of an affinity column containing an antibody against the carboxyl terminal portion of PC1, the column flow-through, which included the 66 kDa protein, still remained enzymatically active. These data support the notion that the 66 kDa protein, which is the most concentrated PC1 product stored in AtT-20 cells and is released during stimulation, is enzymatically active.

Amino Acid Sequence↗

Immunocytochemical localization of the neuropeptide-synthesizing enzyme PC1 in AtT-20 cells.

The subtilisin-like enzyme PC1 (also known as PC3) cleaves the neuropeptide precursor proopiomelanocortin at paired basic residues in transfection experiments, thus providing evidence for a critical role in precursor processing. While mRNA for this enzyme is highly enriched in neuroendocrine tissues, little is known about the tissue and subcellular distribution of the PC1 protein. This study used immunocytochemical techniques to investigate the anatomical distribution of PC1, both alone and compared to met-enkephalin (MET-enk), in AtT-20 pituicytes transfected with proenkephalin cDNA. A high density of PC1 immunostaining was observed in a small region adjacent to the nucleus and in the tips of the processes of these cells. Dual-staining immunocytochemistry of whole cells illustrated that both PC1 and MET-enk immunoreactivity were present in the tips, but PC1 was concentrated in a region adjacent to the nucleus while MET-enk punctate staining was dispersed throughout the soma. This codistribution was confirmed in semithin sections of dual-stained cells cut at 1-1.5 microns through the thickness of the cells. PC1 staining resembled that of TGN38, a marker for the trans-Golgi network. When PC1 immunocytochemistry was performed in cells that were pretreated with brefeldin A, a drug that redistributes the proximal Golgi compartments to the endoplasmic reticulum, there was a complete disruption of the defined locus of PC1 immunoreactivity. Taken together, our data indicate that (1) PC1 is concentrated in a region of the cell body resembling the trans-Golgi network and (2) both the enzyme and the processed peptide are transported to the tips of the processes.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Fluorometric assay of a calcium-dependent, paired-basic processing endopeptidase present in insulinoma granules.

A novel fluorogenic substrate Cbz-Arg-Ser-Lys-Arg-AMC (RSKR-AMC) was used to characterize Ca(++)-activated proteolytic activity present in purified insulinoma secretory granules. Secretory granules efficiently cleaved this substrate in a time- and protein-dependent manner; the hydrolysis rate was between 2 and 4 pmol/min/ug of protein, with an apparent Km of 55 microM. Greater than 90% of the activity against this substrate was dependent on the presence of Ca++, with half-maximal stimulation obtained at 100 microM Ca++. The pH optimum of enzymatic activity was 5.5-6, and the profile of inhibition by various proteinase inhibitors was similar to that previously described for the type I and II proinsulin processing enzymes. These biochemical characteristics and co-elution of the RSKR-AMC processing activity with the type II endopeptidase activity on anion-exchange chromatography suggest that the new assay selectively detects the Lys-Arg-directed, or type II, proinsulin processing endopeptidase. This fluorogenic assay is more quantitative, sensitive and rapid than methods previously used, and therefore presents a significant improvement for the study of similar Ca(++)-activated processing endopeptidases.

Amino Acids, Diamino↗

Posttranslational processing of proenkephalin in SK-N-MC cells: evidence for phosphorylation.

SK-N-MC cells have recently been shown to be a rich source of proenkephalin and/or the proenkephalin-derived peptide, peptide B. We have investigated the synthesis and the posttranslational processing of proenkephalin in these cells. SK-N-MC cells retain very little of the proenkephalin synthesized; greater than 99% of the immunoreactive enkephalin synthesized within a 48-h period is secreted into the medium rather than contained intracellularly. When medium samples were subjected to gel filtration and assayed for the various enkephalins present within proenkephalin, only two major molecular-weight classes of peptides, with molecular weights and immunoreactive profiles consistent with those of proenkephalin and the 3.6-kDa carboxyl-terminal fragment peptide B, were observed. The proenkephalin-like peptide present in medium samples was shown by western blot procedures to consist of a 32-kDa protein with a slight amount of a higher-molecular-weight immunoreactive component above it. Only proenkephalin-sized peptides were present within cell extracts. Radiolabeled proenkephalin added to cell cultures was also cleaved to products similarly sized to those found in medium extracts; radiolabeled proenkephalin incubated in the absence of cells was not cleaved. Cleavage of exogenous proenkephalin thus probably at least partially occurs following secretion. Cell radiolabeling experiments with [32P]orthophosphate demonstrated that SK-N-MC proenkephalin is phosphorylated. Microheterogeneity of proenkephalin was also observed using isoelectric focusing coupled with western blotting. Our results suggest that the SK-N-MC cell line represents a useful model to study the earliest steps of the posttranslational processing of human proenkephalin in a neuronal cell type.

Cell Line↗

Characterization of proenkephalin-cleaving proteinases in bovine adrenal chromaffin granules using [35S]proenkephalin copolymerized into sodium dodecyl sulfate-polyacrylamide gel electrophoresis.

Proteinases capable of cleaving proenkephalin into smaller peptides have been identified in bovine adrenal chromaffin granules using [35S]methionine-labeled recombinant rat proenkephalin as a selective substrate in sodium dodecyl sulfate-polyacrylamide gel electrophoresis proteinase radiozymography. This technique was used for the screening of subcellular fractions, general characterization of pH optima, and the mechanistic characterization of proteinases with both reversible and irreversible inhibitors. Two enzymes with approximate molecular masses of 76 and 30 kDa were shown to be localized to the highest-density fractions of chromaffin granules by sucrose density gradient fractionation. Both were enriched in a 1 M NaCl wash of purified chromaffin granule membranes, were active at high pH, and were characterized as serine proteinases based on inhibition by soybean trypsin inhibitor. The 30-kDa enzyme was also inhibited by diisopropyl fluorophosphate, D-Phe-Pro-Arg-CH2Cl, and D-Val-Phe-Lys-CH2Cl and appeared to be the previously described adrenal trypsin-like enzyme. A third enzyme, of 66 kDa, was also associated with the 1 M NaCl wash of purified chromaffin granule membranes but was not localized exclusively to chromaffin granules in sucrose gradients. This proteinase was found to be Ca2+ activated and inhibited by EDTA but not diisopropyl fluorophosphate, soybean trypsin inhibitor, p-chloromercuriphenylsulfonic acid, 1,10-phenanthroline, or pepstatin.

Adrenal Glands↗

Posttranslational processing of proenkephalin in AtT-20 cells: evidence for cleavage at a Lys-Lys site.

Proteolytic processing of proenkephalin was examined in several subclones of AtT-20 cells stably transfected with rat proenkephalin cDNA (AT/PE cells). Proenkephalin is synthesized in both N-glycosylated and unglycosylated forms, as demonstrated by treatment with tunicamycin. RIAs and Western blot studies showed that AT/PE clones process proenkephalin at some, but not all, Lys-Arg sequences in a limited processing profile reminiscent of bovine adrenal chromaffin cells. Pulse-chase studies using Met5-enkephalin-Arg-Gly-Leu antiserum demonstrated that 50% of the precursor is processed within 1 h, and processing is complete after 2.5 h with the production of the 5.3-kilodalton (kDa) peptide. Further cleavage to the octapeptide Met5-enkephalin-Arg-Gly-Leu is minimal. Radiosequencing results verified the efficient cleavage of a Lys-Lys site within proenkephalin that resulted in the production of the 5.3-kDa peptide. Proenkephalin cleavage products stored within cells, which included the 5.3-kDa peptide, could be released upon stimulation of cells with BaCl2 (2-fold above basal levels), 8-bromo-cAMP or CRF (7- and 8-fold above basal levels, respectively), and a mixture of BaCl2 and 8-bromo-cAMP (20-fold above basal levels). An important difference between the processing of proenkephalin and the ACTH/endorphin precursor (POMC) in AtT-20 cells is efficient cleavage of a Lys-Lys site in proenkephalin and not in POMC. The ability of AT/PE to process proenkephalin in a natural manner makes it a suitable model system to investigate elements involved in the processing of proenkephalin at Lys-Lys sites.

8-Bromo Cyclic Adenosine Monophosphate↗

Biosynthesis of the prohormone convertase mPC1 in AtT-20 cells.

A new family of mammalian subtilisin-like enzymes, probably involved in the processing of proproteins in regulated and constitutive cells at paired basic residues, has recently been discovered. Little information exists as yet concerning the biosynthesis of these endogenous subtilisin-like enzymes. In the present work the biosynthesis and release of the endogenous prohormone convertase PC1 in AtT-20 cells were studied. As predicted from mRNA studies, AtT-20 cells contain high levels of PC1 protein. Through immunoblotting, 87-kilodalton (kDa) and 66-kDa bands were detected with an amino terminally directed antiserum; however, only the 87-kDa product was detected with carboxyl terminally directed antiserum, indicating carboxyl terminal truncation. Pulse-chase experiments, using [35S]methionine/cysteine, showed that after 20 min pulse the main product in the cells was the 87-kDa protein. Cells chased for varying amounts of time exhibited a progressive increase in the intensity of a 66-kDa band, along with a corresponding decrease of the 87-kDa band. The 87-66 kDa conversion was nearly complete after 4 h of chase. This posttranslational processing was inhibited by the ionophore monensin, a Golgi disruptor, with a corresponding accumulation of the 87-kDa protein within the cell. Both the 87 kDa- and 66 kDa-labeled proteins were detected as membrane-bound rather than soluble proteins. The 87-kDa protein was the main product secreted by nonstimulated AtT-20 cells, while the 66-kDa product was only released when the cells were stimulated with CRF or BaCl2 and Bromo-cAMP.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Posttranslational modifications of rat proenkephalin overexpressed in Chinese hamster ovary cells.

Rat proenkephalin was overexpressed in Chinese hamster ovary cells using the dihydrofolate reductase-coupled genetic amplification method. About 2 mg purified protein could be obtained from 250 ml conditioned medium; multiple successive harvests could be obtained from the same roller bottle. Degradation of proenkephalin released into the conditioned medium was reduced significantly in the presence of 2% fetal bovine serum. Forty-eight percent of recombinant proenkephalin was glycosylated; glycosylation could be entirely prevented by the addition of tunicamycin. Two-dimensional isoelectric focusing experiments showed that recombinant proenkephalin exhibited considerable charge heterogeneity, with two major unglycosylated isoelectric forms and six or seven glycosylated isoelectric forms. The estimated isoelectric points of the major unglycosylated proenkephalins were 6.0 and 6.1, while glycosylated proenkephalins ranged in pI from 5.7-6.1. Some of this isoelectric heterogeneity is due to phosphorylation; [32P] orthophosphate was readily incorporated into serine residues within newly synthesized proenkephalin.

Animals↗

Partial purification and characterization of a putative prohormone-processing enzyme complex from bovine pituitary.

A putative prohormone-processing enzyme complex with specificity toward basic residues was partially purified from whole bovine pituitary glands. The complex is basic, binding to S-Sepharose at pH 8.2. The pH optimum of the enzyme is around 8.0. The enzyme is capable of cleaving proenkephalin and is present in at least three forms with relative molecular masses of about 36,000, 58,000, and 90,000 Da. The proteinase complex is inhibited by soybean trypsin inhibitor, limabean trypsin inhibitor, and aprotinin, but not by inhibitors of thiol proteinases or metal chelators. Our results indicate that this proteinase is a trypsin-like serine esterase with properties appropriate to that of a prohormone-processing enzyme.

Animals↗

Electrophoretic analysis of proteinases in sodium dodecyl sulfate-polyacrylamide gels containing copolymerized radiolabeled protein substrates: application to proenkephalin processing enzymes.

A novel method is described for the zymographic analysis of proteinases in sodium dodecyl sulfate-polyacrylamide gels containing copolymerized radiolabeled protein substrates such as [35S]methionine-labeled proenkephalin or 125I-labeled proinsulin. After electrophoresis the enzyme is reactivated and cleaves the radiolabeled in situ substrate into smaller peptides. These small peptides are able to diffuse out of the gel, leaving clear areas against a dark background when visualized by autoradiography. The technique can be used to detect as little as 200 fg of trypsin using only 50 ng (1.25 microCi) of [35S]proenkephalin. Soluble- and membrane-bound adrenal trypsin-like enzyme were isolated from bovine adrenal chromaffin granules. Both proteinases cleaved [35S]methionine-labeled proenkephalin but not 125I-labeled proinsulin. Moreover, both had a Mr of approximately 30,000. The potential of this technique for general use is discussed. An additional method using the synthetic fluorogenic substrate t-butoxycarbonyl Glu-Lys-Lys aminomethylcoumarin is also described.

Adrenal Medulla↗

Cleavage of proenkephalin by a chromaffin granule processing enzyme.

Human proenkephalin generated by means of a recombinant vaccinia virus expression vector was used as the substrate for a putative processing enzyme obtained from bovine adrenal chromaffin granules. The adrenal enzyme successfully cleaved proenkephalin to generate low mol wt enkephalins as well as other enkephalin-containing intermediates. Radioactively labeled proenkephalin prepared with this system was also cleaved; however, under identical conditions bovine proinsulin was not cleaved. These results provide support for the notion that the adrenal trypsin-like enzyme is involved in the processing of proenkephalin in vivo and demonstrate the usefulness of protein substrates prepared by expression vector systems in testing the reactivity and specificity of proposed prohormone processing enzymes in vitro.

Amino Acid Sequence↗