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T Muta

Publications and source records attributed to T Muta.

At least 55 records · Page 3Linked to original sources

cDNA and deduced amino acid sequence of human PK-120, a plasma kallikrein-sensitive glycoprotein.

PK-120 is a substrate for plasma kallikrein (PK), recently purified from human plasma. Here we have established the cDNA sequence for human PK-120 mRNA. The deduced amino sequence of PK-120 revealed that it consists of 902 amino acid residues with a calculated mass of 116,423 Da. The putative cleavage sites by PK have been proposed, suggesting that PK-120 may be a precursor of a bioactive peptide. Most interestingly, PK-120 showed significant sequence identities to heavy chains (HCs) of the inter-alpha-trypsin inhibitor (ITI) superfamily.

Amino Acid Sequence↗

Role of hemocyte-derived granular components in invertebrate defense.

Figure 2 illustrates an outline of the cellular and humoral defense systems in limulus. On the basis of the knowledge described above, it is suggested that granular components present in L and S granules in the hemocytes play a decisive role in the biological defense for this animal. The isolated L granules contain at least three clotting factors plus coagulogen as the major component. The known anti-LPS factor and a number of additional unknown protein components are also present in the L granules. On the other hand, the isolated S granules contain antimicrobial tachyplesins as the major component, in addition to six unidentified proteins. We speculate that the L-granule-derived protein components, which probably contain all the factors essential for the Limulus clotting system participate, in immobilizing invading microbes, and that the S-granule-derived tachyplesins contribute to a self-defense system against invaders. Although we have not mentioned hemolymph plasma components, there are many humoral factors, such as proteinase inhibitors, alpha 2-macroglobulin, various lectins, C-reactive protein, and polyphemin, all of which are important for antimicrobial defense. Furthermore, Liu and colleagues have reported several endotoxin-binding proteins and a cell-adhesion protein found in the Limulus hemocytes. Although the exact functions of these substances are unknown, they may act in concert with other components to provide biological defense for the animal. Nevertheless, compared to our knowledge of mammalian blood cells, much less remains to be learned of biological/physiological events in horseshoe crab hemocytes.

Amino Acid Sequence↗

A 13-amino-acid motif in the cytoplasmic domain of Fc gamma RIIB modulates B-cell receptor signalling.

The Fc receptor on B lymphocytes, Fc gamma RIIB (beta 1 isoform), helps to modulate B-cell activation triggered by the surface immunoglobulin complex. Crosslinking of membrane immunoglobulin by antigen or anti-Ig F(ab')2 antibody induces a transient increase in cytosolic free Ca2+, a rise in inositol-3-phosphate, activation of protein kinase C, and enhanced protein tyrosine phosphorylation. Crosslinking Fc gamma RIIB with the surface immunoglobulin complex confers a dominant signal that prevents or aborts lymphocyte activation triggered through the ARH-1 motifs of the signal transduction subunits Ig-alpha and Ig-beta. Here we show that Fc gamma RIIB modulates membrane immunoglobulin-induced Ca2+ mobilization by inhibiting Ca2+ influx, without changing the pattern of tyrosine phosphorylation. A 13-amino-acid motif in the cytoplasmic domain of Fc gamma RIIB is both necessary and sufficient for this effect. Tyrosine at residue 309 in this motif is phosphorylated upon co-crosslinking with surface immunoglobulin; mutation of this residue aborts the inhibitory effect of Fc gamma RIIB. This inhibition is directly coupled to signalling mediated through Ig-alpha and Ig-beta as evidenced by chimaeric IgM/alpha and IgM/beta molecules. The 13-residue motif in Fc gamma RIIB controls lymphocyte activation by inhibiting a Ca2+ signalling pathway triggered through ARH-1 motifs as a result of recruitment of novel SH2-containing proteins that interact with this Fc gamma RIIB cytoplasmic motif.

Amino Acid Sequence↗

Horseshoe crab (1,3)-beta-D-glucan-sensitive coagulation factor G. A serine protease zymogen heterodimer with similarities to beta-glucan-binding proteins.

Horseshoe crab factor G is an intracellular serine protease zymogen that initiates the (1,3)-beta-D-glucan-sensitive hemolymph clotting pathway. Unlike other known serine protease zymogens, which are composed of a single subunit, factor G consists of two distinct subunits, alpha and beta, which are autocatalytically converted to active factor G in the presence of (1,3)-beta-D-glucan. We have now cloned and sequenced cDNAs encoding both subunits of factor G. The subunits are derived from separate mRNA species and thus encoded by different genes. Subunit beta is a serine protease zymogen which consists of 278 residues with a calculated molecular mass of 30,846 Da; it exhibits homology to the serine protease domain of horseshoe crab factor B. Subunit alpha, on the other hand, is a new type of mosaic protein with intriguing features. The mature protein consists of 654 residues with a calculated molecular mass of 73,916 Da. The NH2-terminal portion of this subunit is similar to bacterial beta-1,3-glucanases. Its 126 amino acid COOH terminus exhibits a repetitive sequence having partial homology to xylanases. Between these regions are three repeating units of 47 amino acids, whose similarity to carbohydrate-binding proteins suggests that these may be the (1,3)-beta-D-glucan-binding domain(s) of factor G. Factor G, thus, is a structurally unique heterodimeric serine protease zymogen and as such may represent a new class of active defense proteins.

Amino Acid Sequence↗

Structure-function relationships of tachyplesins and their analogues.

Haemocytes of the horseshoe crab (Limulus) contain a new family of arthropodous peptide antibiotics, termed the tachyplesin family. These cationic peptides are composed of 17-18 amino acid residues with a C-terminal arginine alpha-amide. Tachyplesin I takes on a fairly rigid conformation constrained by two disulphide bridges and adopts a conformation consisting of an antiparallel beta-sheet connected by a beta-turn. Isopeptides of tachyplesin I with amino acid replacements, tachyplesins II and III, and polyphemusins I and II have also been found in the haemocytes of the South-East Asian species and Limulus polyphemus. These peptides are present in abundance in the small granules of the haemocytes and inhibit strongly the growth of not only Gram-negative and Gram-positive bacteria but also fungi such as Candida albicans. Tachyplesin exists in the prepro form consisting of 77 residues; this precursor is probably processed by intracellular proteases and an amidation enzyme before incorporation into the small granules of the haemocytes. We examined the mode of action of tachyplesin I on biomembranes, comparing it with that of gramicidin S. Tachyplesin caused an efflux of K+ from Staphylococcus aureus and Escherichia coli cells similar to that caused by gramicidin S. Another antimicrobial substance, anti-LPS factor, has been isolated from haemocytes.

Amino Acid Sequence↗

Horseshoe crab coagulation factor B. A unique serine protease zymogen activated by cleavage of an Ile-Ile bond.

Horseshoe crab factor B is an intracellular serine protease zymogen involved in the bacterial endotoxin-responsive hemolymph coagulation cascade. cDNAs for factor B were isolated utilizing a polymerase chain reaction product using two primers derived from the partial amino acid sequence. The cloned cDNA of 1928 base pairs encoded 400 amino acid residues of factor B precursor. The first 23 amino acid residues constitute a presumed prepropeptide that may be processed by both a signal peptidase and a processing protease, similar to mammalian vitamin K-dependent protease precursors. The mature protein consists of 377 amino acids with a calculated molecular mass of 40,570 Da. The overall structure is highly homologous to that of limulus proclotting enzyme (35.9% identity), the substrate for active factor B in the cascade. Like the proclotting enzyme, mature factor B is composed of an amino-terminal "clip"-like domain and a carboxyl-terminal serine protease domain homologous to that of human plasma prekallikrein (36.5%). Internal sequences encode a unique activation peptide. Surprisingly, the cleavage sites of the zymogen factor B for activation by limulus active factor C were found to be an Arg-Ser and an Ile-Ile bond, the latter of which has not been found in any other protease zymogens. These cleavages result in the release of the activation peptide, which consists of 21 residues with a carboxyl-terminal isoleucine. These results indicate that the intracellular clotting system of the limulus hemocyte, like mammalian plasma clotting cascade, proceeds with the sequential activation of three serine protease zymogens: factor C, factor B, and proclotting enzyme.

Amino Acid Sequence↗

Rabbit liver microsomal endopeptidase with substrate specificity for processing proproteins is structurally related to rat testes metalloendopeptidase 24.15.

The detergent extract of rabbit liver microsomes contains an endopeptidase (MEP) with substrate specificity for peptides containing Arg residues at the P1 and P4 positions in the cleavage site (Kawabata, S., and Davie, E. W. (1992) J. Biol. Chem. 267, 10331-10336). These sequences occur in many proproteins such as the vitamin K-dependent proproteins and prohormones. A cDNA coding for MEP has been obtained from three overlapping clones isolated from two rabbit liver lambda gt10 cDNA libraries. The longest open reading frame of the 3507-base pair cDNA codes for a protein of 704 amino acids, of which 406 residues were confirmed by amino acid sequence analysis. MEP contains a putative active site of -His-Glu-X-X-His-, which is typical of mammalian zinc metallopeptidases. Based on a hydropathy plot, MEP is a hydrophilic protein with no transmembrane domain and no NH2-terminal signal sequence. Amino acid sequence analysis identified Asn at the three potential N-glycosylation sites in the enzyme, indicating that MEP contains no N-linked sugar. MEP is homologous with rat testes metalloendopeptidase 24.15 (60% identity), rat mitochondrial intermediate peptidase (24% identity), Escherichia coli dipeptidyl carboxypeptidase (25% identity), and the open reading frame YCL57w present in yeast chromosome III (35% identity).

Amino Acid Sequence↗

Limulus hemocyte transglutaminase. Its purification and characterization, and identification of the intracellular substrates.

To investigate further the molecular events of the intracellular coagulation cascade in limulus hemocytes, a transglutaminase (TGase), which may be involved in the formation of a stabilized gel, was purified and characterized. Through the purification procedures consisting of six steps, 1.6 mg of TGase with a specific activity of 940 amine incorporation unit/mg was obtained from 32.4 g of Tachypleus tridentatus hemocytes. The purified TGase gave a single band on SDS-polyacrylamide gel electrophoresis with a molecular mass of 86 kDa, and demonstrated mammalian-type II TGase-like enzymatic properties. The TGase activity was Ca(2+)-dependent and was inhibited by primary amines, EDTA, and SH-reagents. Moreover, two major potential substrates for TGase were identified in the hemocyte lysate by using dansylcadaverine (DCA) incorporation in the presence of 10 mM CaCl2 and 10 mM dithiothreitol. Of these protein substrates, an 80-kDa protein contained a large number of proline residues, amounting to about 22% of the total amino acids. On the other hand, an 8.6-kDa protein abundantly present in the hemocytes was characterized as a Cys-rich protein consisting of 81 amino acid residues and a calculated molecular mass of 8,671. The entire amino acid sequence of this protein was established. Also, the 8.6-kDa protein was readily cross-linked intermolecularly by TGase, forming multimers as large as pentamers. We speculate that like plasma factor XIIIa, limulus TGase and its two protein substrates in the hemocytes may play an important role in the defense of this animal against invading microorganisms.

Amino Acid Sequence↗

Limulus hemocyte transglutaminase. cDNA cloning, amino acid sequence, and tissue localization.

We have evidence that the limulus (Tachypleus tri-dentatus) hemocyte transglutaminase (TGase) has a molecular mass of 86 kDa and properties of the mammalian type II TGase-like enzyme (Tokunaga, F., Yamada, M., Miyata, T., Ding, Y.-L., Hiranaga-Kawabata, M., Muta, T., Iwanaga, S., Ichinose, A., and Davie, E.W. (1993) J. Biol. Chem. 268, 252-261). We present here the cDNA and amino acid sequences, and localization of the TGase in various tissues of limulus. The cloned cDNA for TGase consists of 2,884 base pairs. An open reading frame of 2,292 base pairs encodes a sequence comprising 764 residues of the mature protein with molecular masses of 87,021 and 87,110 Da, due to two different clones. The discrepancies of nucleotides in these two clones result in 3 amino acid exchanges at positions Gly452(GGT)-Arg(CGT), Ser477(AGT)-Cys(TGT), and Ile486(ATC)-Ser(AGC), respectively. Northern blot analysis on a total RNA extracted from various tissues of limulus revealed that TGase is expressed with 3.0 kilobases of a single type of mRNA, mainly in hemocytes, hepatopancreas, and gastric tissues. Limulus TGase shows significant sequence similarity with the mammalian TGase family, as follows: guinea pig liver TGase (32.7%), human factor XIIIa subunit (34.7%), human keratinocyte TGase (37.6%), and human erythrocyte band 4.2 (23.0%). Limulus TGase has a unique NH2-terminal cationic extension of 60 residues with no homology to the NH2 termini of mammalian TGases. Based on the alignment of the amino acid sequence of limulus TGase with those of the known TGase family, a phylogenetic tree representing an evolutionary relationship among the family members was inferred by the neighbor joining method.

Amino Acid Sequence↗

Separation of large and small granules from horseshoe crab (Tachypleus tridentatus) hemocytes and characterization of their components.

We designed a method for separating two types of granules, a smaller (S) but dense and a larger (L) but less dense granule from hemocytes of the horseshoe crab (Tachypleus tridentatus), using continuous sucrose density gradient centrifugation. The isolated L-granules contained at least three clotting factors plus a clottable protein, coagulogen, as the major component. The known anti-lipopolysaccharide factor and 7 additional unknown protein components were also present in the L-granules. Two known natural substrates, Pro-rich protein and 8.6 kDa protein, for limulus transglutaminase [Tokunaga, F., Yamada, M., Miyata, T., Ding, Y.-L., Hiranaga-Kawabata, M., Muta, T., Iwanaga, S., Ichinose, A., & Davie, E.W. (1993) J. Biol. Chem. 268, 252-261] were present in the L-granules. On the other hand, the isolated S-granules contained antimicrobial tachyplesins I and II (17 amino acids in length) as the major component, in addition to 6 unidentified proteins with molecular masses of less than 30 kDa. The structural analyses of tachyplesin analogs indicated that all these peptides of mature form are stored in the S-granules, together with a processing intermediate containing the COOH-terminal Gly-Lys sequence. We also found an Arg-rich protein of 22 kDa and a Leu-rich protein of 30 kDa in S-granules. Based on these observations, we speculate that protein components in L-granules, which probably contain all the factors essential for the limulus clotting system, participate in immobilization of invading microbes and that factors in the S-granules containing tachyplesins contribute to a self-defense system against invaders.

Amino Acid Sequence↗

Molecular mechanism of hemolymph clotting system in Limulus.

Limulus (horseshoe crab) hemolymph is known to be very sensitive to bacterial endotoxin (LPS), which causes a rapid coagulation response. Hemolymph contains a single type of hemocyte that undergoes aggregation, adhesion, and degranulation in response to LPS. The granule contents are released into the hemolymph, where they form an insoluble gel. We have characterized four components involved in this coagulation response that comprise a cascade of three serine protease zymogens (factor C, factor B, and proclotting enzyme) and one clottable protein (coagulogen). Of these components, factor C sensitive to LPS is a protein composed of five complement-related domains ("Sushi" or SCR), an EGF-like domain, and a C-type lectinlike domain as well as a putative amino-terminal LPS-binding domain. This domain structure is very similar to that of selectin family of cell adhesion molecules, suggesting that it might also function as a cell adhesion molecule after the release into the hemolymph. Factor B and the proclotting enzyme share a common Cys-rich motif ("cliplike" domain) in the amino-terminal portions. This domain is also found in a putative serine protease zymogen ("easter") in Drosophila, which is essential for normal embryonic development. All four of the components of the cascade and an antibacterial protein (anti-LPS factor) are localized to a specific type of the hemocyte granule. Another antibacterial peptide (tachyplesins I and II) is localized in a distinct granule population. The contents of both granule populations are released into the hemolymph in response to LPS, where they cooperate in immobilization and killing of Gram-negative bacteria.

Amino Acid Sequence↗

Comparative effects of loop diuretics on AVP-receptor binding and AVP-sensitive adenylate cyclase activity.

The effects of loop diuretics (azosemide, ethacrynic acid and furosemide) on arginine vasopressin (AVP) receptor-adenylate cyclase components were compared in rat renal basolateral membranes. AVP binding was inhibited by these loop diuretics at concentrations above 10(-4) M. At the IC50 of azosemide and ethacrynic acid, the Kd values were significantly increased, while the Bmax values remained unchanged. These findings indicate an inhibitory effect of loop diuretics at high concentrations on the AVP binding to its receptors. Both the basal (AVP-unstimulated) and AVP-stimulated cyclic AMP productions were also inhibited by addition of these drugs. The inhibitions of the AVP binding and AVP-sensitive adenylate cyclase activity were dose-dependent. The above findings suggest that loop diuretics, especially azosemide and ethacrynic acid, can inhibit the basal and AVP-sensitive adenylate cyclase activities directly and also indirectly via the AVP receptor, at least in part. Comparing the loop diuretics, azosemide exerts a similar effect to ethacrynic acid, and they have a more potent antagonistic effect than furosemide with respect to AVP adenylate cyclase activation.

Adenylyl Cyclases↗