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Biomedical subjects

P J Roach

Publications and source records attributed to P J Roach.

At least 19 recordsLinked to original sources

Rabbit skeletal muscle glycogenin. Molecular cloning and production of fully functional protein in Escherichia coli.

Glycogenin is a self-glucosylating protein involved in the initiation reactions of glycogen synthesis. Initiation occurs in two stages, requiring first the covalent attachment of a glucose residue to Tyr-194 of glycogenin and then elongation to form an oligosaccharide chain. The latter reaction is known to be catalyzed by glycogenin itself. The glycogenin sequence determined from the protein by Campbell and Cohen (Campbell, D. G., and Cohen, P. (1989) Eur. J. Biochem. 185, 119-125) was used to design oligonucleotide probes to screen a rabbit muscle lambda gt11 library. A cDNA was isolated that predicted an amino acid sequence identical to that of Campbell and Cohen, except that Cys residues replaced Ser-88 and Leu-97. Northern analysis indicated a strongly hybridizing message of 1.8 kilobases, present in most tissues including skeletal muscle, but much weaker in kidney and scarcely detectable in liver. A much weaker 3-kilobase message was also detected in muscle. Polymerase chain reaction was used to isolate DNA fragments encoding a portion of glycogenin from rat and cow. The sequence of this segment was > 90% identical at the amino acid level across the three species, indicating that glycogenin is a highly conserved protein. Using the pET-8c vector, the glycogenin protein was expressed in Escherichia coli. Incubation of the recombinant glycogenin with UDP-[14C]glucose and Mn2+ resulted in labeling of the glycogenin protein, indicating that the recombinant glycogenin was enzymatically active and capable of self-glucosylation. Furthermore, after incubation with UDP-glucose, the recombinant glycogenin could serve as a substrate for glycogen synthase, leading to the production of high M(r) polysaccharide. Therefore, production of functional glycogenin did not require the intervention of any other mammalian protein.

Amino Acid Sequence

Recombinant rabbit muscle casein kinase I alpha is inhibited by heparin and activated by polylysine.

The casein kinase I (CKI) family consists of widely distributed monomeric Ser/Thr protein kinases that have a preference for acidic substrates. Four mammalian isoforms are known. A full length cDNA encoding the CKI alpha isoform was cloned from a rabbit skeletal muscle cDNA library and was utilized to construct a bacterial expression vector. Active CKI alpha was expressed in Escherichia coli as a polypeptide of Mr 36,000. The protein kinase phosphorylated casein, phosvitin and a specific peptide substrate (D4). The enzyme was inhibited by the isoquinolinesulfonamide CKI-7, half-maximally at 70 microM. Heparin inhibited phosphorylation of the D4 peptide or phosvitin by CKI alpha. Polylysine activated when the D4 peptide was the substrate but had no effect on phosvitin phosphorylation. It is becoming clear that the individual CKI isoforms have different kinetic properties and hence could have quite distinct cellular functions.

Animals

Effects of heart failure on baroreflex control of sympathetic neural activity.

Baroreflex control of heart rate, vascular resistance and norepinephrine is impaired in patients with heart failure, but recent animal studies demonstrate preserved baroreflex control of sympathetic nerve activity in this disorder. Studies were therefore performed to compare baroreflex control of efferent sympathetic nerve activity to muscle in 10 normal subjects (age mean +/- SEM 21 +/- 1 years) and in 11 patients with moderate to severe heart failure (age 48 +/- 5 years, New York Heart Association class II to IV, left ventricular ejection fraction 19 +/- 2%, pulmonary capillary wedge pressure 27 +/- 2 mm Hg, cardiac index 2.04 +/- 0.22 liters/min/m2). Baroreflex activation was produced by intravenous infusion of phenylephrine (0.5 to 2.0 micrograms/kg/min) and deactivation by infusion of nitroprusside (0.4 to 2.5 micrograms/kg/min). During phenylephrine infusion, comparable increases in mean arterial pressure were produced in normal subjects (89 +/- 2 to 99 +/- 3 mm Hg, p less than 0.01) and in patients with heart failure (90 +/- 2 to 99 +/- 3 mm Hg, p less than 0.01). The patients with heart failure exhibited significantly attenuated (p less than 0.01 for normal vs heart failure) decreases in heart rate (93 +/- 5 to 90 +/- 6 beats/min, p = not significant [NS]) compared with normal subjects (67 +/- 3 to 58 +/- 4 beats/min, p less than 0.01) and tended to demonstrate attenuated sympathoinhibitory responses to this pressor stimulus. More strikingly, patients with heart failure demonstrated significant impairment of baroreflex responses during nitroprusside-induced baroreceptor deactivation. In normal subjects, nitroprusside produced a decrease in mean arterial (90 +/- 2 to 80 +/- 3 mm Hg, p less than 0.001) and right atrial (4 +/- 1 to 2 +/- 1 mm Hg, p less than 0.01) pressures with a resultant reflex increase in heart rate (68 +/- 3 to 81 +/- 4 beats/min, p less than 0.001) and muscle sympathetic nerve activity (326 +/- 74 to 746 +/- 147 U/min, p less than 0.01). In patients with heart failure (n = 10), nitroprusside produced comparable (p = NS for normal vs heart failure) decreases in mean arterial (89 +/- 2 to 77 +/- 2 mm Hg, p less than 0.001) and right atrial (6 +/- 1 to 1 +/- 1 mm Hg, p less than 0.001) pressures, but did not significantly alter heart rate (91 +/- 6 to 97 +/- 4 beats/min, p = NS) or sympathetic nerve activity (936 +/- 155 to 1179 +/- 275 U/min, p = NS).(ABSTRACT TRUNCATED AT 400 WORDS)

Adult

Yeast casein kinase I homologues: an essential gene pair.

We report the isolation of an essential pair of Saccharomyces cerevisiae genes that encode protein kinase homologues. The two genes were independently isolated as dosage-dependent suppressors. Increased dosage of YCK1 suppressed defects caused by reduced SNF1 protein kinase activity, and increased dosage of YCK2 relieved sensitivity of wild-type cells to salt stress. The two genes function identically in the two growth assays, and loss of function of either gene alone has no discernible effect on growth. However, loss of function of both genes results in inviability. The two predicted protein products share 77% overall amino acid identity and contain sequence elements conserved among protein kinases. Partial sequence obtained for rabbit casein kinase I shares 64% identity with the two yeast gene products. Moreover, an increase in casein kinase I activity is observed in extracts from cells overexpressing YCK2. Thus YCK1 and YCK2 appear to encode casein kinase I homologues.

Amino Acid Sequence

Two glycogen synthase isoforms in Saccharomyces cerevisiae are coded by distinct genes that are differentially controlled.

In previous work, we identified a Saccharomyces cerevisiae glycogen synthase gene, GSY1, which codes for an 85-kDa polypeptide present in purified yeast glycogen synthase (Farkas, I., Hardy, T.A., DePaoli-Roach, A.A., and Roach, P.J. (1990) J. Biol. Chem. 265, 20879-20886). We have now cloned another gene, GSY2, which encodes a second S. cerevisiae glycogen synthase. The GSY2 sequence predicts a protein of 704 residues, molecular weight 79,963, with 80% identity to the protein encoded by GSY1. Amino acid sequences obtained from a second polypeptide of 77 kDa present in yeast glycogen synthase preparations matched those predicted by GSY2. GSY1 resides on chromosome VI, and GSY2 is located on chromosome XII. Disruption of the GSY1 gene produced a strain retaining about 85% of wild type glycogen synthase activity at stationary phase, while disruption of the GSY2 gene yielded a strain with only about 10% of wild type enzyme activity. The level of glycogen synthase activity in yeast cells disrupted for GSY1 increased in stationary phase, whereas the activity remained at a constant low level in cells disrupted for GSY2. Disruption of both genes resulted in a viable haploid that totally lacked glycogen synthase activity and was defective in glycogen deposition. In conclusion, yeast expresses two forms of glycogen synthase with activity levels that behave differently in the growth cycle. The GSY2 gene product appears to be the predominant glycogen synthase with activity linked to nutrient depletion.

Amino Acid Sequence

Multisite and hierarchal protein phosphorylation.

Multisite phosphorylation is a prevalent form of protein modification whose full implications are just beginning to be understood. Multiple protein modifications expand the repertoire of structural changes that can be elicited in proteins and permit more intricate regulatory circuits to operate.

Amino Acid Sequence

Sympathetic responses of patients with congestive heart failure to cold pressor stimulus.

Studies in patients with congestive heart failure (CHF) demonstrate blunting of sympathoexcitatory responses to baroreflex perturbation. Whereas experimental and limited clinical evidence suggests impairment of baroreflex mechanisms as the etiology of these attenuated responses, an alternative mechanism would be an inability of patients with CHF to increase sympathetic neural outflow above markedly elevated baseline levels. Hemodynamic and sympathetic neural responses (peroneal microneurography) were therefore compared of normal subjects (n = 10) and patients with CHF (n = 10) during the non-baroreflex sympathoexcitatory stimulus of the cold pressor test. The cold pressor stimulus produced increases in arterial pressure and heart rate in both groups. During hand immersion in ice water, normal subjects demonstrated significant increases in muscle sympathetic nerve activity expressed as burst frequency (20 +/- 2 to 28 +/- 3 bursts/min, p less than 0.01), total integrated nerve activity (224 +/- 41 to 342 +/- 62 U/min, p less than 0.05), and total activity corrected for accompanying changes in heart rate (375 +/- 81 to 538 +/- 118 U/100 heart beats, p less than 0.05). Similarly, despite elevated control levels of sympathetic activity, patients with CHF also demonstrated significant sympathoexcitatory responses to the cold pressor stimulus, with increases in muscle sympathetic nerve burst frequency (60 +/- 7 to 67 +/- 7 bursts/min, p less than 0.01) total integrated nerve activity (818 +/- 159 to 1,015 +/- 191 U, p less than 0.001), and total activity corrected for accompanying changes in heart rate (1,008 +/- 178 to 1,173 +/- 201 U/100 heart beats, p less than 0.01).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Role of acidic residues as substrate determinants for casein kinase I.

Sites phosphorylated by casein kinase I have been characterized by the presence of acidic amino acids NH2-terminal to the modified residue. Recently, phosphoserine was shown to be a particularly effective determinant for casein kinase I action when present in the motif -S(P)-X-X-S- (Flotow, H., Graves, P. R., Wang, A., Fiol, C. J., Roeske, R. W., and Roach, P. J. (1990) J. Biol. Chem. 265, 14264-14269). Nonetheless, nonphosphorylated substrates for casein kinase I are well documented. In this study, we examined the efficacy of Asp and Glu residues as determinants of casein kinase I action using synthetic peptide substrates. Peptides with runs of Asp residues in the motif Dn-X-X-S- were substrates for casein kinase I. Peptides with n = 3 or 4 were the most effective substrates, much better than n = 2. The peptide with n = 1, a single Asp residue, was a very poor substrate. A block of 4 Glu residues was a little less effective as a substrate determinant than 4 Asp residues in an otherwise identical peptide. The most effective substrate, with the motif -D-D-D-D-X-X-S-, was specific for casein kinase I and was not detectably phosphorylated by cyclic AMP-dependent protein kinase, casein kinase II, glycogen synthase kinase 3, or phosphorylase kinase and thus will be useful for the specific assay of casein kinase I. This peptide was nonetheless significantly worse as a substrate than peptides in which casein kinase I action was determined by phosphoserine in the -3 position. Still, the fact that Asp or Glu residues can specify a casein kinase I substrate suggests that acidic character has a role in substrate selection by this protein kinase.

Amino Acid Sequence

Glycogen metabolism and signal transduction in mammals and yeast.

Mammalian glycogen synthase, with its complex multisite phosphorylation mechanisms, continues to provide interesting and novel examples of the regulation of protein function. The mammalian enzyme is phosphorylated in a hierarchal manner such that modification of certain sites requires the prior phosphorylation of other sites. Yeast contains two glycogen synthases that have extensive similarities to their mammalian counterpart but the greatest divergence in amino acid sequence is seen precisely in the regions likely to be involved in covalent control. We hope that examination of the control of the yeast glycogen synthase will be as informative as study of the mammalian enzymes, whether by revealing important parallels with the mammalian system or by uncovering major differences in mechanism.

Amino Acid Sequence

Contrasting effects of digitalis and dobutamine on baroreflex sympathetic control in normal humans.

BACKGROUND: Digitalis glycosides augment cardiopulmonary baroreceptor mechanisms in animals. This could result from inotropic actions or from direct sensitization of cardiac mechanoreceptors. METHODS AND RESULTS: To determine if digitalis has similar actions in humans and to evaluate the mechanisms involved, we measured muscle sympathetic nerve activity (MSNA; microneurography) during unloading of cardiopulmonary baroreceptors with incremental lower body negative pressure (LBNP; 0 to -15 mm Hg) and during the cold pressor test in 22 normal subjects (age 22 +/- 1 year, mean +/- SEM). Arterial and central venous pressures, heart rate, and MSNA were measured during LBNP before and after intravenous digitalis (Cedilanid 0.02 ng/kg, n = 8), dobutamine (2.8 +/- 0.5 micrograms/kg/min, n = 8), or placebo (n = 6). Digitalis and dobutamine produced similar increases in baseline mean arterial pressure and decreases in central venous pressure and MSNA. LBNP produced similar decreases in central venous pressure in all groups before and after drug administration. The MSNA responses to LBNP were markedly potentiated by digitalis but not by dobutamine or placebo. CONCLUSIONS: Digitalis did not alter responses to the cold pressor test. Thus, digitalis selectively potentiated cardiopulmonary baroreflex regulation of sympathetic neural responses in normal humans, whereas dobutamine (another positive inotropic agent) did not produce this effect. We conclude that digitalis augments cardiopulmonary baroreflex control of sympathetic activity, probably by direct baroreceptor sensitization.

Adult

Isolation of the GSY1 gene encoding yeast glycogen synthase and evidence for the existence of a second gene.

Glycogen synthase preparations from Saccharomyces cerevisiae contained two polypeptides of molecular weights 85,000 and 77,000. Oligonucleotides based on protein sequence were utilized to clone a S. cerevisiae glycogen synthase gene, GSY1. The gene would encode a protein of 707 residues, molecular mass 80,501 daltons, with 50% overall identity to mammalian muscle glycogen synthases. The amino-terminal sequence obtained from the 85,000-dalton species matched the NH2 terminus predicted by the GSY1 sequence. Disruption of the GSY1 gene resulted in a viable haploid with glycogen synthase activity, and purification of glycogen synthase from this mutant strain resulted in an enzyme that contained the 77,000-dalton polypeptide. Southern hybridization of genomic DNA using the GSY1 coding sequence as a probe revealed a second weakly hybridizing fragment, present also in the strain with the GSY1 gene disrupted. However, the sequences of several tryptic peptides derived from the 77,000-dalton polypeptide were identical or similar to the sequence predicted by the GSY1 gene. The data are explained if S. cerevisiae has two glycogen synthase genes encoding proteins with significant sequence similarity The protein sequence predicted by the GSY1 gene lacks the extreme NH2-terminal phosphorylation sites of the mammalian enzymes. The COOH-terminal phosphorylated region of the mammalian enzyme over-all displayed low identity to the yeast COOH terminus, but there was homology in the region of the mammalian phosphorylation sites 3 and 4. Three potential cyclic AMP-dependent protein kinase sites are located in this region of the yeast enzyme. The region of glycogen synthase likely to be involved in covalent regulation are thus more variable than the catalytic center of the molecule.

Amino Acid Sequence

Phosphoserine in peptide substrates can specify casein kinase II action.

Casein kinase II is a ubiquitous serine/threonine protein kinase which utilizes acidic amino acid residues as recognition determinants in its substrates, the motif -S/T-X-X-D/E- being particularly important. To test whether a phosphoserine residue can act as a substrate determinant, a peptide was synthesized, containing the sequence -S-X-X-S, which was not phosphorylated by casein kinase II. However, upon phosphorylation at the +3 position, the peptide became a substrate for casein kinase II. With another peptide, a positive influence of more distal phosphorylations was found. The results indicate the potential for casein kinase II to participate in hierarchal phosphorylation schemes.

Amino Acid Sequence

Phosphate groups as substrate determinants for casein kinase I action.

Phosphorylation of rabbit muscle glycogen synthase by cyclic AMP-dependent protein kinase has been shown to enhance subsequent phosphorylation by casein kinase I (Flotow, H., and Roach, P. J. (1989) J. Biol. Chem. 264, 9126-9128). In the present study, synthetic peptides based on the sequences of the four phosphorylated regions in muscle glycogen synthase were used to probe the role of substrate phosphorylation in casein kinase I action. With all four peptides, prior phosphorylation significantly stimulated phosphorylation by casein kinase I. A series of peptides was synthesized based on the NH2-terminal glycogen synthase sequence PLSRTLS7VSS10LPGL, in which phosphorylation at Ser7 is required for modification of Ser10 by casein kinase I. The spacing between the P-Ser and the acceptor Ser was varied to have 1, 2, or 3 intervening residues. The peptide with a 2-residue spacing (-S(P)-X-X-S-) was by far the best casein kinase I substrate. When the P-Ser residue at Ser7 was replaced with P-Thr, the resulting peptide was still a casein kinase I substrate. However, substitution of Asp or Glu residues at Ser7 led to peptides that were not phosphorylated by casein kinase I. Phosphorylation of one of the other peptides showed that Thr could also be the phosphate acceptor. From these results, we propose that there are substrates for casein kinase I for which prior phosphorylation is a critical determinant of protein kinase action. In these instances, an important recognition motif for casein kinase I appears to be -S(P)/T(P)-Xn-S/T- with n = 2 much more effective than n = 1 or n = 3. Thus, casein kinase I may be involved in hierarchal substrate phosphorylation schemes in which its activity is controlled by the phosphorylation state of its substrates.

Amino Acid Sequence

Ordered multisite protein phosphorylation. Analysis of glycogen synthase kinase 3 action using model peptide substrates.

Recognition of substrates by the protein kinase glycogen synthase kinase 3 (GSK-3) usually requires prior phosphorylation of the substrate. Using a peptide based on the glycogen synthase sequence PRPAS(3a)VPPS (3b)PSLS(3c)RHSS(4)PHQS(5)EDEEEP (where the numbers in parentheses denote sites of phosphorylation), we showed previously that phosphorylation of site 5 by casein kinase II was necessary for GSK-3 to phosphorylate the peptide at sites 3a, 3b, 3c, and 4 (Fiol, C. J., Mahrenholz, A. M., Wang, Y., Roeske, R. W., and Roach, P. J. (1987) J. Biol. Chem. 262, 14042-14048). In the present study, variant peptides were synthesized in which sites 3a, 3b, 3c, and 4 were individually replaced by Ala residues (denoted Ala-3c, etc.). All of the variant peptides were substrates for casein kinase II. The peptide Ala-4,Ser(P)-5 was not a substrate for GSK-3 confirming the minimal recognition sequence for the protein kinase as -SXXXS(P)-. The peptides Ala-3c,Ser(P)-5, Ala-3b,Ser(P)-5, and Ala-3a,Ser(P)-5, however, were all good substrates for GSK-3 with apparent Km values in the range 3-6 microns, comparable with that of the parent peptide. GSK-3 could introduce 1, 2, and 3 phosphates, respectively, into these substrates, always COOH-terminal to the substituted Ala residue. Ala-4,Ser(P)-5 and Ala-3c,Ser(P)-4,Ser(P)-5 were competitive inhibitors for phosphorylation of the parent peptide, with Ki values of 2 and 5 microns, respectively. The data suggest (i) that GSK-3 recognizes serines in the motif -SXXXS(P)-, and (ii) that multiple phosphorylation of the peptide substrate has an obligate order, with the sequential formation of new recognition sequences.

Amino Acid Sequence

Pathophysiologic levels of atrial natriuretic factor do not alter reflex sympathetic control: direct evidence from microneurographic studies in humans.

To determine if circulating levels of atrial natriuretic factor comparable with those seen in pathophysiologic states alter autonomic control of the circulation, direct recordings of hemodynamic variables and efferent sympathetic nerve activity to muscle (microneurography) were obtained during two separate protocols in a total of 21 normal men (age 25 +/- 1 years). In protocol 1, the responses of 10 men were compared during incremental mechanical unloading of cardiopulmonary baroreceptors with lower body negative pressure versus responses to comparable unloading during infusion of alpha-human atrial natriuretic factor. Lower body negative pressure decreased pulmonary artery diastolic and right atrial pressures, did not alter arterial pressure or heart rate and increased muscle sympathetic nerve activity from 205.2 +/- 36.3 to 438.7 +/- 100.2 units/min (p less than 0.01). Intravenous infusion of atrial natriuretic factor (25 ng/kg per min) increased plasma levels of the hormone from 24 +/- 4 to 322 +/- 34 pg/ml (p less than 0.01, n = 6), produced similar decreases in pulmonary artery diastolic and right atrial pressures, did not alter arterial pressure, increased heart rate and increased sympathetic nerve activity from 233.1 +/- 35.6 to 387.2 +/- 64.9 units/min (p less than 0.05). Thus, during similar hemodynamic perturbations produced by lower body negative pressure or infusion of atrial natriuretic factor at the dose used in this study, these subjects exhibited comparable sympathoexcitatory responses, with a 109 +/- 23% increase in sympathetic activity during lower body negative pressure and a 76 +/- 19% increase during atrial natriuretic factor infusion (p = NS). In protocol 2, the responses of 11 additional men were examined during lower body negative pressure performed before and again during infusion of atrial natriuretic factor (12.5 ng/kg per min). During baseline (prehormone) trials, lower body negative pressure (-14.5 +/- 1.6 mm Hg) decreased central venous pressure, did not change arterial pressure or heart rate and increased sympathetic nerve activity from 215 +/- 47.7 to 372.3 +/- 64.3 units/min (p less than 0.001). Infusion of atrial natriuretic factor increased plasma levels of the hormone from 39 +/- 8 to 313 +/- 18 pg/ml (p less than 0.01, n = 7); central venous pressure was held constant during hormone infusion by intravenous infusion of saline solution.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult

Control of glycogen synthase by hierarchal protein phosphorylation.

Protein phosphorylation is one of the most common mechanisms for controlling protein function. We now know that most phosphoproteins contain multiple phosphorylation sites and that these sites are often located in clusters. From the study of the enzyme glycogen synthase, one mechanism for the formation of phosphorylation clusters has been discovered that involves the concerted action of two or more protein kinases. One protein kinase, the primary kinase, introduces a phosphate group that is a requirement for the action of another, secondary, protein kinase. Thus the multiple phosphorylation occurs in a hierarchal fashion. This mechanism, which is critical for the phosphorylation of glycogen synthase, is likely to be a much more widespread phenomenon.

Animals

Glycogen synthase turnover and phosphorylation in rat H4IIE hepatoma cells.

Glycogen synthase was isolated from rat H4IIE hepatoma cells by the use of specific antibodies. Immunoprecipitates from cells grown in the presence of [35S]methionine contained two 35S-labeled polypeptides, designated GS1 and GS2, separable by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Labeling of both species was half-maximal after 3 h and remained constant up to 48 h. When cells were incubated with [32P]-phosphate, 32P was incorporated into both species with similar kinetics, half-maximal labeling occurring after 2-3 h. The steady-state ratio 32P/35S was significantly higher for the lower mobility GS2 polypeptide. Pulse-chase experiments showed that the two subunits followed similar kinetics with respect to 35S-labeling. However, the turnover of 32P on the GS2 subunit was significantly faster (t1/2 approximately 30 min) than that on the GS1 subunit (t1/2 approximately 2 h). We suggest that the two polypeptides represent different phosphorylation states of the glycogen synthase subunit and are rapidly interconverted.

Animals