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Biomedical subjects

G E Deibler

Publications and source records attributed to G E Deibler.

At least 19 recordsLinked to original sources

Determination of regional rates of cerebral protein synthesis adjusted for regional differences in recycling of leucine derived from protein degradation into the precursor pool in conscious adult rats.

The quantitative autoradiographic L-[1-14C]leucine method for the determination of regional rates of cerebral protein synthesis in vivo takes into account recycling of unlabeled leucine derived from protein degradation into the precursor pool for protein synthesis. We have evaluated the degree of recycling by measuring the ratio of the apparent steady-state leucine specific activity in the precursor amino acid pool (tRNA-bound leucine) to that in the arterial plasma. In the whole brain of the conscious rat this ratio (lambda WB) equals 0.58. The equivalent ratio for leucine in the acid-soluble pool in whole brain (psi WB) is 0.49. A first-degree polynomial equation for lambda WB as a function of psi WB was fitted from paired determinations. To determine the degree of recycling in local regions of the brain, we have measured in individual brain regions (i) psi i and calculated lambda i assuming that the fitted equation also applies to these localized regions. Our results indicate that the degree of recycling into the precursor pool does vary regionally; lambda i in the individual regions varies from 0.62 in the hypoglossal nucleus to 0.50 in the globus pallidus. Local rates of protein synthesis were then determined by the autoradiographic technique with regional corrections for recycling of unlabeled leucine. Rates of leucine incorporation into protein averaged 6.1 nmol/g of tissue/min in the brain as a whole, with the rates in gray matter about twice those in white matter.

Amino Acids

Effect of loading doses of L-valine on relative contributions of valine derived from protein degradation and plasma to the precursor pool for protein synthesis in rat brain.

"Flooding" amino acid pools with high doses of labeled amino acids of low specific activity has been proposed to minimize the effects of recycling of amino acids derived from protein degradation on the specific activity of the amino acid precursor pool for protein synthesis. We have examined the influence of recycling on the precursor pool for protein synthesis under conditions in which plasma valine concentrations were normal (0.19 mM) and "flooded" (10-28 mM) by comparing the steady-state specific activity of the tRNA-bound valine with that of the plasma valine. Under normal and "flooding" conditions, the relative contributions of valine from protein degradation to the precursor pool were 63 and 26%, respectively; "flooding" with a plasma level of 28 mM raised the brain acid-soluble pool level to 3.1 mM but was no more effective in decreasing the relative contribution of valine from protein degradation to the precursor pool than "flooding" with a plasma level of 17 mM valine, which raised the brain acid-soluble level only to 2.3 mM. The results of these studies show that "flooding" amino acid pools does indeed reduce the effect of recycling on the precursor amino acid pool for protein synthesis, but it does not totally eliminate it.

Animals

Role of phosphorylation in conformational adaptability of bovine myelin basic protein.

Controlled thrombic digestion of a preparation of components 2 + 3 isolated from the 18.5 kDa bovine myelin basic protein (MBP) yielded a polypeptide that was monophosphorylated on threonine 97 (component 3pT97). This is the first posttranslationally phosphorylated MBP isolated in pure form. We studied the effect of this single phosphate on the conformational adaptability of 18.5 kDa bovine MBP by comparing the circular dichroism (CD) spectrum of component 3pT97 with the spectra of highly purified nonphosphorylated components 1 and 2. The CD spectra of nonphosphorylated component 1 and component 2 [monodeamidated form(s) of component 1] were indistinguishable, while component 3pt97 exhibited a different spectrum. The singly phosphorylated MBP component exhibited 13% more ordered conformations than that adopted by nonphosphorylated MBP in dilute aqueous solutions. This was estimated from the CD spectra, and apparently involved about 17 additional amino acid residues in beta-structure(s).

Amino Acid Sequence

Encephalitogenicity for rats of myelin basic protein without the aid of water-in-oil emulsions.

The induction of experimental allergic encephalomyelitis (EAE) with purified myelin basic protein (MBP) has, heretofore, required its incorporation in a water-in-oil emulsion or adsorption on particulate adjuvants. In the present work, the absorption of a saline solution of MBP from the peritoneal cavity into the mediastinal lymph nodes was increased by giving repeated inoculations or by pretreating rats with a peritoneal irritant. Under these conditions, the only adjuvant needed for production of EAE was aqueous pertussis vaccine which was injected separately a few hours or one day after the MBP. Pertussis vaccine was also necessary for production of EAE with intradermal injection of aqueous MBP. By injecting the aqueous MBP directly into pre-enlarged popliteal lymph nodes, it was possible to produce EAE without the pertussis vaccine. Thus, EAE can be induced in rats using MBP without the addition of Freund's adjuvant or pertussis vaccine.

Animals

Peptides of myelin basic protein are encephalitogenic in rats without the aid of emulsions.

Immunization with peptides is usually done with the aid of Freund's adjuvant. Using peptides derived from myelin basic protein, we show that aqueous solutions can be antigenic (encephalitogenic in this instance) in Lewis rats. The first procedure involved multiple doses of aqueous peptide, increased absorption into the lymphatic system from the peritoneal cavity in the postinflammatory state, and the use of pertussis vaccine. Three different peptides containing the major encephalitogenic site were active in this system, with the activity somewhat proportional to the size of the fragment. The second procedure, the direct delivery of peptide to lymph nodes by percutaneous inoculation, was equally successful and did not require the use of pertussis vaccine.

Absorption

Human cytotoxic T-cell recognition of a synthetic peptide of myelin basic protein.

Previous studies with a panel of myelin basic protein (MBP)-specific human T-cell clones suggested a clustering of epitopes in the middle and at the C terminus of the molecule. The current study demonstrates that 19 of 40 clones recognize a synthetic peptide corresponding to residues 152 to 170 of the human MBP molecule and that 9 clones recognize a synthetic peptide corresponding to residues 86 to 105. Myelin basic protein-specific cytotoxic activity was restricted to the clones that recognized peptide 152-170, and this peptide served as a preferential cytotoxic T-cell target when attached to an autologous B-cell line. The specificity of MBP-directed cytotoxic activity appears to be much more restricted than the specificity demonstrated for proliferative activity.

Cytotoxicity Tests, Immunologic

Evidence for multiple human T cell recognition sites on myelin basic protein.

Myelin basic protein (BP)-specific T cell clones were used to study human T cell recognition sites on the BP molecule. Proliferation assays performed with a panel of xenogeneic BPs of known amino acid sequence and with large peptide fragments of human and guinea pig BPs demonstrated ten different patterns of reactivity. The data provide evidence for at least four different human T cell epitopes within the C-terminal half of the BP molecule, three within the N-terminal half, and three located within the central portion of the molecule. The results indicate that attempts to inhibit anti-BP responses in vivo in an antigen-specific manner will require the suppression of multiple T cell populations.

Amino Acid Sequence

Measurement of local cerebral protein synthesis in vivo: influence of recycling of amino acids derived from protein degradation.

A quantitative autoradiographic method for the determination of local rates of protein synthesis in brain in vivo is being developed. The method employs L-[1-14C]leucine as the radiolabeled tracer. A comprehensive model has been designed that takes into account intracellular and extracellular spaces, intracellular compartmentation of leucine, and the possibility of recycling of unlabeled leucine derived from steady-state degradation of protein into the precursor pool for protein synthesis. We have evaluated the degree of recycling by measuring the ratio of the steady-state precursor pool distribution space for labeled leucine to that of unlabeled leucine. The values obtained were 0.58 in whole brain and 0.47 in liver. These results indicate that there is significant recycling of unlabeled amino acids derived from steady-state protein degradation in both tissues. Any method for the determination of rates of cerebral protein synthesis in vivo with labeled tracers that depends on estimation of precursor pool specific activity in tissue from measurements in plasma must take this recycling into account.

Amino Acids

Peptide specificities of myelin basic protein-reactive human T-cell clones.

Forty myelin basic protein (BP)-reactive T-cell clones were isolated from a patient with multiple sclerosis and used to identify human T-cell recognition sites on the BP molecule. At least three sites have been identified: one in the N-terminal half of the molecule (residues 1-97), one in the C-terminal (residues 98-170), and one which spans residues 97-98. The clones exhibited a marked preference for the C-terminal half of the molecule. No cross-reactivity with measles virus was detected. These clones will be useful for both the further delineation of the human T-cell recognition sites on BP and the generation of anticlonotypic monoclonal antibodies.

Cell Division

Experimental allergic encephalomyelitis in rabbits. A major encephalitogenic determinant within residues 1-44 of myelin basic protein.

Experimental allergic encephalomyelitis could be induced in rabbits by injection in Freund's complete adjuvant of either peptide 1-44 or peptide 45-87 of rabbit myelin basic protein. In order to localize the encephalitogenic determinant present in peptide 1-44, several smaller derivative peptides were prepared and examined. Peptic peptide 15-44 and thrombic peptide 1-31 were as active as peptide 1-44, whereas peptic peptides 1-14 and 18-38 and BrCN peptide 22-44 were virtually inactive. Weak activity was shown by BrCN peptide 1-21. These results provide evidence that a major encephalitogenic determinant present in peptide 1-44 lies within sequence 15-31. The encephalitogenic activity of peptide 15-44 was essentially destroyed by oxidation of methionine-21 to methionine sulfoxide; methylation of Met-21, on the other hand, appeared to be relatively ineffective in eliminating the encephalitogenicity of peptide 1-44.

Amino Acid Sequence

Evidence for specific polypeptide chain folding in myelin basic protein from reactions between fragments of the protein and monoclonal antibodies.

The specificities of two monoclonal IgM antibodies (18.25 and 21.14.2) evoked in mice with guinea pig myelin basic protein were examined and interpreted in terms of a specific folding of the protein's polypeptide chain. Studies with guinea pig and rabbit myelin basic protein fragments showed that a region encompassing the central Phe-Phe (87-88) sequence is obligatory, but not sufficient, for reactivity with antibody 18.25. Appreciable reactivity was observed for rabbit peptides 22-95 and 45-151, and lower, but significant, reactivity was shown by peptide 32-95. Only very weak reactivity was seen with peptide 44-95. No reactivity was observed with peptide 1-95 after its lysine residues were acetylated, acetamidinated, or guanidinated. These results have been interpreted in terms of a polypeptide chain folding that creates an epitope within sequence Val-Val-His-Phe-Phe-Lys-Asn-Ile-Val (84-92). The specific conformation of this epitope, which includes probably the Lys-89 and possibly the Asn-90 and Val-92 side chains, could be formed by the association of sequence 84-92 with either sequence Ile-Leu-Asp-Ser-Ile-Gly-Arg-Phe-Phe (37-45) or with sequence Val-Leu-Ser-Arg-Phe (108-112) to form beta-sheet structures essentially identical with those that appear to be present in the intact BP [Martenson R.E.J. Neurochem. 46, 1612-1622 (1986)]. The second monoclonal antibody, no. 21.14.2, reacts only with guinea pig myelin basic protein and fragments containing the species-restricted sequence Arg-Ala-Asp-Tyr-Lys-Ser-Lys (129-135).(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence

A new form of myelin basic protein found in human brain.

Human myelin basic protein was subjected to ion-exchange chromatography at high pH to separate the differently charged components. Polyacrylamide gel electrophoretic patterns of the fractions showed that the less basic fractions 3, 4, and 5 contained significant amounts of a protein somewhat smaller than the more common 18.5-kDa form. Fraction 3 consisted of approximately equal amounts of this smaller polypeptide and component 3, the 18.5-kDa form found in other mammalian myelin basic protein preparations. The two proteins in fraction 3 were separated by fast protein liquid chromatography. Both have blocked N termini and identical C termini (-Met-Ala-Arg-Arg). When the tryptic digests of the two proteins were fractionated by HPLC, the elution profiles were similar, except that four peaks found in the chromatogram of the larger protein were missing from the chromatogram of the smaller one. In addition, an extra peak was found in the elution pattern of the latter chromatogram. Amino acid analysis of the individual tryptic peptides indicated that the smaller protein lacked residues 106-116 (-Gly-Arg-Gly-Leu-Ser-Leu-Ser-Arg-Phe-Ser-Trp-). The deleted portion corresponds exactly to the amino acid sequence encoded by exon 5 of the mouse basic protein gene. This new form of myelin basic protein has a molecular weight of 17,200, calculated from its amino acid composition.

Adult

Isolation of tryptic peptides of myelin basic protein by reversed-phase high-performance liquid chromatography.

A reversed-phase high-performance liquid chromatography (HPLC) system was developed to obtain individual tryptic peptides of myelin basic protein (BP). Because of the similar charge and hydrophobicity of some of the tryptic peptides of the whole protein, several of these were not clearly separated by a single HPLC system. Therefore, the BP was first cleaved specifically between residues 97 and 98 with thrombin, and the two resulting fragments were separated by ion-exchange chromatography. When the thrombic fragments were digested with trypsin separately and subjected to HPLC, all of the peptides were satisfactorily separated. Elution times of all of the tryptic peptides of human BP were established. Differences among homologous peptides, derived from different mammalian BPs, were readily detected from their elution patterns inasmuch as a change in a single amino acid residue was usually sufficient to cause a shift in the retention time of the peptide. An amino acid difference detected by a peak shift could be confirmed by amino acid analysis. The technique has been used to isolate short peptides of rabbit, monkey, porcine, bovine, and human BP for sequence analysis.

Amino Acids

A reinvestigation of the amino acid sequences of bovine, rabbit, monkey, and human myelin basic proteins.

In order to determine whether bovine, rabbit, and monkey myelin basic proteins (BPs) have the sequence Gly-His or His-Gly at positions corresponding to bovine sequence 76-77, we isolated the tryptic peptides encompassing the sequence in question in these proteins and cleaved them into dipeptides with dipeptidyl aminopeptidase I (EC 3.4.14.1). Analysis by gas chromatography/mass spectrometry of the dipeptides released showed that in no case did His follow Gly or Gly precede His. The identification of peptides Ala-Gln and His-Gly (bovine BP) and Ser-His and Gly-Arg (rabbit and monkey BPs) established the His-Gly sequence. A similar sequence analysis of tryptic peptide (80-91) of human BP confirmed the sequence Thr-Gln-Asp-Glu-Asn-Pro (80-85).

Amino Acid Sequence

Sites in myelin basic protein that react with monoclonal antibodies.

The epitopes (antigenic sites) for seven monoclonal antibodies (MAbs) evoked in rats or mice by guinea pig or monkey myelin basic protein (BP) have been located in four different sequences of the BPs extracted from various species. Six of the MAbs were evoked by guinea pig BP. (1) One epitope, possibly a pair, is included within residues 1-14 of all BPs tested and reacts with two rat IgG MAbs. (2) A definite pair of overlapping epitopes includes the central Phe91-Phe92 sequence. One epitope is contained entirely within sequence 90-99 and reacts with a rat IgG MAb. The substitution of Ser in chicken BP for Thr97 destroys this epitope. The other epitope appears to include residues on the amino side of Phe44 and even of His32 and suggests some tertiary structure in BP. This epitope reacts with a mouse IgM MAb that does not recognize the chicken substitution. (3) The third epitope lies within residues 114-121, specifically including Trp118, and reacts with a rat IgG MAb. A cross-reacting epitope probably includes residues 44-45 in certain species (guinea pig and bovine but not rabbit). (4) Another pair of epitopes is located within residues 131-140 but is severely species-restricted. This region in guinea pig BP evoked a species-specific mouse IgM MAb. The same region in monkey BP evoked the seventh MAb, a mouse IgG, which reacts with human, chimpanzee, monkey, bovine, and rat-18.5 kDa BPs and to a lesser extent rabbit BP but not with guinea pig, pig, or chicken BPs. Some tertiary structure in guinea pig BP is also suggested by the reactivities with the IgM MAb. All of the MAbs react with myelin in histologic preparations, but the optimum method of preparation of the tissue varies with each.

Amino Acid Sequence

Cleavage of rabbit myelin basic protein by plasmin: isolation and identification of the major products.

Rabbit myelin basic protein (BP) was subjected to partial cleavage with plasmin, and 15 cleavage products were isolated by a combination of gel filtration and ion-exchange chromatography. Their identification was achieved by amino acid analysis and tryptic peptide mapping, supplemented in some instances by carboxy-terminal analyses with carboxypeptidases A, B, and Y and amino-terminal analyses with dipeptidyl aminopeptidase I. The results showed that major plasmic cleavage sites included the Lys89-Asn90, Lys133-Ser134, and Lys153-Leu154 bonds. Cleavages also occurred at the Arg31-His32, Lys53-Arg54, and Arg25-His26 bonds, but these appeared to be less extensive. A large number of additional peptides were produced in relatively low yield. The smaller of these were isolated from heterogeneous fractions by high-voltage electrophoresis-TLC. Amino acid analysis of these peptides showed that minor cleavage sites included the Arg9-His10, Lys13-Tyr14, Lys103-Gly104, Lys137-Gly138, Lys140-Gly141, and Arg160-Ser161 bonds. In spite of a lower selectivity toward peptide bonds in BP as compared with pepsin, cathepsin D, and thrombin, plasmin has the advantage over the former proteinases in that it does not cleave at or near the Phe44-Phe45 bond. Instead it cleaves at the Arg31-His32 and Lys53-Arg54 bonds, thus preserving the entire hydrophobic sequence Ile-Leu-Asp-Ser-Ile-Gly-Arg-Phe-Phe as well as short sequences to either side.

Amino Acid Sequence

Amino acid sequence of porcine myelin basic protein.

The myelin basic protein (BP) of pig brain was cleaved into its constituent tryptic peptides and the amino acid composition of each was determined. Those tryptic peptides that had not been sequenced previously were cleaved with dipeptidyl peptidases and the resulting dipeptides were trimethylsilated, separated by gas chromatography, and identified by mass spectrometry. Carboxypeptidases B and Y were used to establish the COOH-terminal sequences of some of the tryptic peptides; one tryptic peptide (sequence 76-92) was cleaved with thermolysin and the thermolytic peptides were analyzed. From the results of the present study together with those reported previously, it has been possible to determine the complete amino acid sequence of the protein. The protein consists of 172 residues and has a theoretical molecular weight of 18,604. Its amino acid sequence is identical with that reported for the homologous bovine protein with the following exceptions: Ser replaces (bovine) Ala2; His-Gly is inserted between Arg9 and Ser10; Ala replaces Ser45; His and Gly replace Gly76 and His77, respectively; Pro replaces Ser131 and Ser135; Ala is inserted between Gly142 and His143; and Gln replaces His143.

Amino Acid Sequence