PubMed Health⌕ Search

Biomedical subjects

S Gomez

Publications and source records attributed to S Gomez.

At least 55 records · Page 3Linked to original sources

Role of peptide substrate structure in the selective processing of peptide prohormones at basic amino acid pairs by endoproteases.

Three putative processing enzymes, each with defined action in a prohormone system, a 'pro-ocytocin-neurophysin convertase' from bovine neurohypophysis secretory granules, a 'Leu-enkephalin Arg6 generating enzyme' from human CSF and the endoprotease from the 'S-28 convertase' complex of rat brain cortex, were tested for their ability to hydrolyze peptides deriving from pro-ocytocin, pro-enkephalin B and pro-somatostatin, respectively at pairs of basic amino acids. The observations suggest that structural parameters specified by the peptide region around the dibasic moieties govern recognition by the enzyme and define which peptide bond is hydrolyzed.

Animals↗

Somatostatin-28 and pro-ocytocin/neurophysin convertases: basic pair selective endoproteases involved in pro-hormone processing in the rat brain cortex and bovine corpus luteum.

Two neuropeptide precursor processing enzyme systems were characterized in the rat brain cortex and bovine neurohypophysis and corpus luteum. The first one combines the action of a 90 kDa endoprotease which cleaves somatostatin-28 before the Arg-Lys doublet and that of an aminopeptidase B-like enzyme. The second system associates the action of a 58 kDa endoprotease cleaving pro-ocytocin/neurophysin (1-20) after the Lys-Arg dibasic moiety and a carboxypeptidase B-like activity. Both systems appear to be located in membrane-limited secretory vesicles of the producing organs, and to exhibit the properties of metallo-enzymes sensitive to divalent cation chelators. In contrast, they do not show the characteristics of serine-proteases and of trypsin-like enzymes. Studies with substrate analogs selectively modified at the basic doublet indicated that the integrity of both basic amino acids is essential but that conformational parameters, probably governed by the amino acid sequences flanking the basic doublet, play an important role. These data will be discussed in relation to a hypothesis on the predicted preferred secondary structure of these restriction loci.

Amino Acid Sequence↗

Relationship between endo- and exopeptidases in a processing enzyme system: activation of an endoprotease by the aminopeptidase B-like activity in somatostatin-28 convertase.

The somatostatin-28 convertase activity involved in vitro in the processing of somatostatin-28 into the neuropeptides somatostatin-28-(1-12) and somatostatin-14 is composed of an endoprotease and a basic aminopeptidase. We report herein on the purification to apparent homogeneity of these two constituents and on their functional interrelationship. In particular we observed that after various physicochemical treatments, the 90-kDa endoprotease activity was recovered both at this molecular mass and as a 45-kDa entity. Moreover, the production of [Arg-2,Lys-1]somatostatin-14 from somatostatin-28 by the action of the endoprotease was activated in a cooperative manner by the aminopeptidase B-like enzyme. A 10-fold activation occurred when the exopeptidase was inhibited by 6.5 mM diisopropyl fluorophosphate and allowed the determination of a half-maximal activation constant (K1/2) of approximately equal to 13 nM. These observations strongly suggest that both enzymes act in a concerted manner in vitro and that they may form a complex in vivo.

Aminopeptidases↗

Melanocytic carcinogenesis in albino guinea pigs.

We describe an experimental model for the induction of cutaneous melanomas in albino guinea pigs by means of repeated topical application of 7,12-dimethyl-benzanthracene over 13 consecutive months. At the end of the experiment 87.5% of the animals presented multiple lesions of a melanocytic nature. The most frequent and the earliest detected was melanocytic hyperplasia, followed by dysplasia. These lesions occurred in 75% of animals and were observed from the 4th month onward. Nevus-type lesions appeared from the 12th month and affected 70% of animals, whilst melanomas occurred in 65%. Metastases were observed in 45% of animals, in lungs, lymph nodes, kidney, and adrenal gland.

Albinism↗

Enzymes that process somatostatin precursors. A novel endoprotease that cleaves before the arginine-lysine doublet is involved in somatostatin-28 convertase activity of rat brain cortex.

The selective processing activity which generates both the NH2- and COOH-terminal fragments of the octacosapeptide somatostatin-28 (S-28) was investigated. Separation into two distinct proteolytic activities was achieved by ion-exchange chromatography. An endoprotease cleaving either the substrate Pro-Arg-Glu-Arg-Lys-Ala-Gly-Ala-Lys-Asn-Tyr-NH2, i.e. [Ala17,Tyr20]S-28-(10-20)-NH2 (peptide I), or the octacosapeptide somatostatin-28, on the NH2 side of the Arg-Lys doublet was separated from an aminopeptidase B-like activity. Whereas the endoprotease cleaves a single peptide bond, between Glu12 and Arg13 of S-28, the aminopeptidase B-like enzyme removes both Arg13 and Lys14 stepwise from the NH2 terminus of the corresponding COOH-terminal fragment. This endoprotease activity peaks around pH 8.5, whereas the optimal aminopeptidase B-like activity is in the pH range 6.2-8.5. Combination of both enzymes resulted in the recovery of the overall S-28 convertase activity with an optimal pH at 7. In addition, this endoprotease appears to be very sensitive to divalent cations since it is strongly inhibited by chelating agents. The use of selectively modified undecapeptides derived from the reference substrate peptide I by a single modification of the amino acids Glu12, Arg13, and Lys14 at the cleavage locus showed that both basic residues are critically important, whereas Glu12 is not. It is proposed that S-28 processing involves a divalent cation-sensitive endoprotease that is sensitive to thiol reagents, which cleaves before the Arg-Lys doublet, which is not trypsin-like, and whose action is coupled to an aminopeptidase B-like enzyme.

Amino Acid Sequence↗

Evaluation of rapid SYS system as screen for Yersinia enterocolitica in the United States.

Clinical isolates (n = 150) from stool specimens were selected for evaluation of the Rapid SYS system (Analytab Products, Plainview, N.Y.) as a screening test for Shigella spp., Yersinia enterocolitica, and Salmonella spp. The Gram-Negative Identification Card (Vitek Systems, Inc., Hazelwood, Mo.) was used for identification. Although acceptable performance of the Rapid SYS system was described, the interpretative criteria provided by the vendor for previous studies led to inappropriate screening for Y. enterocolitica, particularly biotype 1. When corrected screening criteria were used for the present study, the sensitivity for the detection of 76 enteric pathogens was 98.7%. Of the 76 pathogens, 1 of 21 Shigella spp. was not detected. However, specificity was only 16.6% when 72 selected nonpathogens frequently encountered in stools were eliminated. Although the Rapid SYS system can identify Shigella spp., Y. enterocolitica, and Salmonella spp., only phenylalanine deaminase-producing and cytochrome oxidase-producing organisms can be eliminated from additional testing. Therefore, the Rapid SYS system cannot be used as a three-pathogen screen in the United States or in other geographic locales where Y. enterocolitica biotype 1 may be encountered.

Bacteriological Techniques↗

Patients with Alzheimer's disease show an increased content of 15 Kdalton somatostatin precursor and a lowered level of tetradecapeptide in their cerebrospinal fluid.

The relative proportions of both somatostatin-14 and its precursors somatostatin-28 and the 15 Kdalton prosomatostatin were evaluated by radioimmunoassay in the cerebrospinal fluid of patients with Alzheimer's disease. It was observed that the patients have a lowered content in the tetradecapeptide somatostatin while they exhibit a significant increase in unprocessed 15 Kda precursor. These results indicate that these patients possess impaired processing mechanisms which may be responsible for the lowered content in mature somatostatin-14. These observations may provide a valuable test for the ante-mortem diagnosis of the disease. They are discussed in connection with others suggesting that Alzheimer's patients may be selectively altered in their somatostatinergic neurones of their cerebral cortex (Morrison et al. (1985) Nature 314, 90-92. Roberts et al. (1985) Nature 314, 92-94).

Aged↗

Somatostatin-like immunoreactivity and acetylcholinesterase activities in cerebrospinal fluid of patients with Alzheimer disease and senile dementia of the Alzheimer type.

Somatostatin-like immunoreactivity (SLI) and acetylcholinesterase (AchE) activities were measured in the cerebrospinal fluid of 25 patients with senile dementia of the Alzheimer type (SDAT). Both SLI levels and AchE activities were reduced in the CSF of SDAT patients. The SLI levels and AchE activities were not correlated with the duration and the dementia score. However, in two patients the CSF SLI concentration was in agreement with the SLI levels in the frontal cortex obtained by biopsy. Our findings suggest that CSF SLI may be a good index of cortical SLI activities.

Acetylcholinesterase↗

[Proteolytic events in the maturation of pro-neuropeptides. The somatostatin model].

The post-translational processing (maturation) of the precursors was studied on the model of the prosomatostatin. We have shown the presence of a single and common precursor to both somatostatin -28 and -14 in mouse hypothalamus, in contrast with the situation in the Teleostean fish, Lophius piscatorius. The search for a maturation activity was carried out using a synthetic undecapeptide substrate including in its sequence the cleavage site for somatostatin-14 release. Using this peptide, we characterized in rat brain cortex extracts a specific enzyme activity of 90 kD. This "maturase", colocalized in the neurosecretory granules with the somatostatin products, generates both the N-terminal peptide S-28, and the tetradecapeptide hormone (S-14) from the somatostatin-28, acting as a "S-28 convertase" producing free Arg and Lys residues present at the pair of basic amino acids signal. We propose a model where three peptide bonds are cleaved by this enzymatic activity. In the teleostean fish: Lophius piscatorius, two precursors coding for two different somatostatin were predicted by the determination of cDNA sequence. In this system, we observed the presence of a unique form of the tetradecapeptide hormone. We show that the final maturation product of the second precursor is a new 28 amino acid hormone called Somatostatin-28 II. Moreover, the product of this second gene after the action of the Somatostatin-28 convertase from rat brain cortex is the (Tyr7, Gly 10)S-14 derivative predicted by the clone.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

The somatostatin-28 convertase of rat brain cortex is associated with secretory granule membranes.

An Arg-Lys esteropeptidase that converts somatostatin-28 in vitro into somatostatin-14 was previously characterized in extracts of rat cerebral cortex. Both the octacosapeptide somatostatin-28 and a synthetic undecapeptide containing the sequence around the Arg-Lys site, i.e. Peptide I: Pro-Arg-Glu-Arg-Lys-Ala-Gly-Ala-Lys-Asn-125 I-Tyr (NH2), were used as substrates. We demonstrate that the converting activity is associated with neurosecretory granule fractions prepared from both cortical and hypothalamic tissue. This activity co-sediments with ghosts obtained from intact vesicles by osmotic shock. After solubilization either by mild ionic strength or sonication of vesicle membranes, the converting activity appears to possess properties indistinguishable from the convertase prepared directly from unfractionated tissue. It cleaves Peptide I to Ala-Gly-Ala-Lys-Asn-125I-Tyr (NH2) (Peptide II) and generates both the NH2- and COOH-terminal fragments of somatostatin-28, i.e. somatostatin-28 (1-12) and somatostatin-14, when the octacosapeptide is used as substrate. The selectivity appears to be strict and to depend upon the sequence around the Arg-Lys pair, as inferred from competition studies conducted with structural analogs possessing either an Arg-Lys or Arg-Arg doublet. It is concluded that this convertase could represent the enzyme system involved in the in vivo production of both the dodeca and tetradeca peptides from their common somatostatin-28 precursor.

Amino Acid Sequence↗

Proteolytic events in the post-translational processing of somatostatin precursors from rat brain cortex and anglerfish pancreatic islets.

An Arg-Lys esteropeptidase which converts somatostatin-28 (S-28) into somatostatin-14 (S-14) was detected in rat brain cortical extracts using a synthetic undecapeptide substrate mimicking the octacosapeptide sequence at the restriction site. This enzyme system was unable to release either the octacosapeptide or S-14 from the 15,000 mol wt (15K) rat hypothalamic precursor. This argues in favor of sequential degradation of the precursor into S-14 via S-28 as an obligatory intermediate. Another in vivo processing system was analyzed in the anglerfish pancreatic Brockmann organs. Here, cloning of two cDNA corresponding to two mRNA species predicts two distinct somatostatins precursors, called prosomatostatins I and II (Hobart et al., Nature 288:137, 1980). While a single S-14 can be detected in extracts made from this pancreatic tissue, indistinguishable from the mammalian species, two S-28 species could be separated by HPLC. Immunochemical and biochemical evidence indicates that the second species should correspond to anglerfish S-28 (AF S-28), the product of prosomatostatin-II processing in vivo. Amino acid analysis, together with the determined complete amino acid sequence of this peptide, demonstrates that this is indeed the case and that AF S-28 contains in its C-terminal half the [Tyr7, Gly10] derivative of S-14. These observations give an example of a AF S-28 being a terminal active product of prosomatostatin processing. They suggest that this octacosapeptide, which is potent on the inhibition of growth hormone release by anterior pituitary cells, may play such a role in the gastrointestinal tract of the anglerfish. These results, while not excluding alternative routes, give support to a sequential processing of the 15 K precursor----S-28----S-14.

Animals↗

C-terminal amidation of neuropeptides. Gly-Lys-Arg extension an efficient precursor of C-terminal amide.

Biosynthesis of the C-terminal carboxamide group of peptide hormones was studied using comparatively pGlu-His-Pro-Gly and Glu-His-Pro-Gly-Lys-Arg as putative precursors of the tripeptide, thyroliberin (TRH). Rat hypothalamus granules were found to contain an amide group forming activity which converts both peptide substrates into TRH. Comparison of the rate of conversion of the two substrates indicated that the C-terminal dibasic extension favored a 10-fold increase in the production of amidated peptide. It is suggested that this type of structure may be present in the putative biosynthetic precursor of TRH and that it may provide a better substrate for the enzyme(s) involved in C-terminal amidation.

Animals↗

Effects of experimental radiation-induced hypomyelinating neuropathy on motor end-plates and neuromuscular transmission.

Morphological and physiological techniques were used to study the effects of radiation-induced hypomyelinating neuropathy on the innervation of skeletal muscle in the mouse. The right sciatic nerve was crushed focally and 3 days later the hind limb exposed to 20Gy X-rays. After reinnervation of original end-plate sites there was extensive formation of ultraterminal sprouts and of new end-plates characterized by small nerve terminals and rudimentary postsynaptic folds. In vitro examination of soleus nerve-muscle preparations showed reduced frequency of spontaneous miniature end-plate potentials and low quantal content of evoked potentials. The findings indicate that hypomyelinating neuropathy may cause reduction in quantal release of neurotransmitter.

Acetylcholine↗

Enzymes processing somatostatin precursors: an Arg-Lys esteropeptidase from the rat brain cortex converting somatostatin-28 into somatostatin-14.

The post-translational proteolytic conversion of somatostatin-14 precursors was studied to characterize the enzyme system responsible for the production of the tetradecapeptide either from its 15-kDa precursor protein or from its COOH-terminal fragment, somatostatin-28. A synthetic undecapeptide Pro-Arg-Glu-Arg-Lys-Ala-Gly-Ala-Lys-Asn-Tyr(NH2), homologous to the amino acid sequence of the octacosapeptide at the putative Arg-Lys cleavage locus, was used as substrate, after 125I labeling on the COOH-terminal tyrosine residue. A 90-kDa proteolytic activity was detected in rat brain cortex extracts after molecular sieve fractionation followed by ion exchange chromatography. The protease released the peptide 125I-Ala-Gly-Ala-Lys-Asn-Tyr(NH2) from the synthetic undecapeptide substrate and converted somatostatin-28 into somatostatin-14 under similar conditions (pH 7.0). Under these experimental conditions, the product tetradecapeptide was not further degraded by the enzyme. In contrast, the purified 15-kDa hypothalamic precursor remained unaffected when exposed to the proteolytic enzyme under identical conditions. It is concluded that this Arg-Lys esteropeptidase from the brain cortex may be involved in the in vivo processing of the somatostatin-28 fragment of prosomatostatin into somatostatin-14, the former species being an obligatory intermediate in a two-step proteolytic mechanism leading to somatostatin-14.

Animals↗

Characterization of a somatostatin-28 containing the (Tyr-7, Gly-10) derivative of somatostatin-14: a terminal active product of prosomatostatin II processing in anglerfish pancreatic islets.

Anglerfish (Lophius piscatorius) Brockmann organs contain a form of somatostatin-14, identical to the hypothalamic tetradecapeptide, and two distinct forms of somatostatin-28, which can be separated by reversed-phase high-pressure liquid chromatography (HPLC). Analysis of the NH2-terminal amino acid sequence and comparison of the ability to incorporate 125I indicate that one of these forms corresponds to an octacosapeptide including in its sequence the (Tyr-7, Gly-10) derivative of somatostatin-14 (somatostatin II). Exposure of this somatostatin-28 species to an endopeptidase activity from the rat brain cortex generates a peptide immunologically related to somatostatin and undistinguishable from synthetic (Tyr-7, Gly-10) somatostatin-14 II by HPLC. This somatostatin-28 II exhibits a potent inhibitory effect on growth hormone release by rat anterior pituitary cells, comparable to the other somatostatin-28 form. Since (Tyr-7, Gly-10) somatostatin-14 II cannot be detected in anglerfish pancreatic islets, these results indicate that somatostatin-28 II represents the terminal active product of prosomatostatin II processing, whose structure was predicted from the cDNA nucleotide sequence corresponding to the second mRNA cloned from anglerfish Brockmann organs [Hobart, P., Crawford, R., Shen, L. P., Pictet, R. & Rutter, W. J. (1980) Nature (London) 288, 137-141].

Amino Acid Sequence↗

Reinnervation of muscle in the mouse following nerve crush and X-irradiation.

The effects of X-irradiation on nerve regeneration were examined in adult mice. The right sciatic nerve was crushed focally and 3 d later the hind limb was exposed to 20 Gy X-rays. Compound muscle action potentials (m.a.p.s) were recorded in vivo from the posterior crural muscles. Stimulation of the sciatic nerve proximal to the crush injury evoked m.a.p.s of low amplitude with marked temporal dispersion. Stimulation at 20 or 50 Hz resulted in almost immediate intermittent failure of the longer latency m.a.p.s. In vitro physiological examination showed X-irradiation to have no effect on the timing of reinnervation. However, the latency of evoked end-plate potentials was prolonged and, on repetitive nerve stimulation, increased markedly until failure occurred. Nerves which regenerated after X-irradiation showed impaired conduction, particularly of trains of impulses.

Action Potentials↗

Regional distribution of the Mr 15,000 somatostatin precursor, somatostatin-28 and somatostatin-14 in the rat brain suggests a differential intracellular processing of the high molecular weight species.

Three different forms of immunoreactive somatostatin (Mr 15,000, 3,000 and 1,600) were immunologically detected in extracts made from six neural structures of the rat brain. The largest represents the proform, while the smaller were identified by high pressure liquid chromatography with bovine somatostatin-28 (S-28) and -14 (S-14) respectively. In each of the brain structures studied highly variable proportions of precursor, S-28 and S-14 were found. These observations provide suggestive evidence that the intracellular processing of the 15,000 Mr proform may occur differently in the various somatostatinergic pathways of the brain. They argue in favor of a biological role for the precursor in providing distinct relative proportions of S-14 and S-28 in specific rat brain regions.

Animals↗