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Structural studies on sulfated glycopeptides from the carbohydrate-protein linkage region of chondroitin 4-sulfate proteoglycans of swarm rat chondrosarcoma. Demonstration of the structure Gal(4-O-sulfate)beta 1-3Gal beta 1-4XYL beta 1-O-Ser.

Nonsulfated, monosulfated, and disulfated glycopeptides containing the entire carbohydrate sequence of the glycosaminoglycan-specific linkage region were isolated after exhaustive enzymatic digestions of Swarm rat chondrosarcoma proteoglycans with chondroitinase ABC, papain, and Pronase. Their structures were examined by 500 MHz 1H NMR spectroscopy. The nonsulfated compound has the following structure with trace amounts of a few additional amino acids: delta 4,5-GlcA beta 1-3GalNAc beta 1-4GlcA beta 1-3Gal beta 1-3Gal beta 1-4Xyl beta 1-O-Ser. The monosulfated compound has an ester sulfate on C-4 of the GalNAc residue and the disulfated compound has an additional hitherto unrecognized ester sulfate on C-4 of the second galactose residue which is remote from the innermost xylose. This new structure was confirmed by two-dimensional homonuclear Hartmann-Hahn spectroscopy. The molar ratio of the isolated nonsulfated, monosulfated, and disulfated compounds was 53:37:10 based on the serine contents. Biological significance of the newly found sulfated linkage structure is discussed.

Animals↗

Structural properties of cyanase. Denaturation, renaturation, and role of sulfhydryls and oligomeric structure in catalytic activity.

Cyanase is an inducible enzyme in Escherichia coli that catalyzes bicarbonate-dependent decomposition of cyanate to give ammonia and bicarbonate. The enzyme is composed of 8-10 identical subunits (Mr = 17,008). The objective of this study was to clarify some of the structural properties of cyanase for the purpose of understanding the relationship between oligomeric structure and catalytic activity. Circular dichroism studies showed that cyanase has a significant amount of alpha-helix and beta-sheet structure. The one sulfhydryl group per subunit does not react with 5,5'-dithiobis-(2-nitrobenzoic acid) (DTNB) unless cyanase is denatured. Denaturation is apparently complete in 10 M urea or 6 M guanidine hydrochloride, but is significantly reduced in 10 M urea by the presence of azide (analog of cyanate) and is incomplete in 8 M urea. Denatured cyanase could be renatured and reactivated (greater than 85%) by removal of denaturants. Reactivation was greatly facilitated by the presence of certain anions, particularly bicarbonate, and by high ionic strength and protein concentration. The catalytic activity of renatured cyanase was associated only with oligomer. Cyanase that had been denatured in the presence of DTNB to give a cyanase-DTNB derivative could also be renatured at 26 degrees C to give active cyanase-DTNB oligomer. The active oligomeric form of the cyanase-DTNB derivative could be converted reversibly to inactive dimer by lowering the temperature to 4 degrees C or by reduction of the ionic strength and removal of monoanions. These results provide evidence that free sulfhydryl groups are not required for catalytic activity and that catalytic activity may be dependent upon oligomeric structure.

Aminohydrolases↗

A long-range ordered structure in mitochondrial cristae revealed by a pathological structural modification.

An experimentally imposed 6-hr local ischemia in the anterior wall of the left ventricle in dog hearts leads to a structural modification of the mitochondria in the posterior wall with the cristae revealing a zig-zag pattern when viewed in cross sections. This pattern was found to reveal a change in the distribution of crista mass with an increase of mass at circumscribed regions in each crista membrane and a reduction of mass from the surrounding region in each crista membrane. The accumulation of mass contributed to the elevations that caused the zig-zag pattern. These elevations were distributed according to a tetragonal pattern with a periodicity of 850 A. The tetragonal pattern contributed by one crista membrane was translocated halfway along the diagonals of the tetrameric pattern of the other crista membrane within each crista. The change in mass distribution reveals differences in the strength of bonds that account for binding of the proteins to the cristae with strong bonds in the elevated regions, while enzymes less firmly bound are located in the surrounding region. The respiratory chain enzymes will then be located in the elevated regions and the soluble enzymes including the tricarboxylic acid cycle enzymes will be located in the surrounding region. The tissue in the posterior wall was functionally impaired and normal function was restored when substrate for oxidative phosphorylation was added to the blood perfusing the tissue. It is concluded that the functional impairment is a consequence of a partial breakdown of the structural organization of the tricarboxylic acid cycle enzymes. The discovery of a long-range structural order involving the entire cristae reveals that the enzymes of the multienzyme systems as well as those systems in the cristae are structurally highly organized and it excludes that the enzymes are randomly mixed and highly mobile.

Animals↗

Similarity of the structure of ferritin and iron . dextran (imferon) determined by extended X-ray absorption fine structure analysis.

Ferritin, a natural complex of iron oxide encased in protein, and iron . dextran, a synthetic complex of iron oxide coated with dextran, have the similar properties of maintaining high concentrations of iron in solution at physiological pH and releasing iron relatively slowly in vivo. Extended x-ray absorption fine structure (EX-AFS) analysis was performed on each complex and compared to see if the structures of the iron cores were similar. The results obtained from the extended x-ray absorption fine structure technique show that the near-neighbor environment around the average iron atom in ferritin and iron . dextran is identical, within experimental uncertainty, for the first three shells. The similarity of the iron cores in both complexes may explain the similarity of iron release in vivo. Ferritin has a protein coat which is composed of 24 subunits arranged in a hollow sphere with six channels through which the iron may move during deposition and release. However, little is known about the requirements of the protein structure in ferritin for the maintenance of high concentrations of iron in a soluble, nontoxic form or about the role of the protein in the release of iron from ferritin. The results suggest that iron . dextran will be a useful model compound in studies of the relation of the iron core and protein in ferritin to function.

Dextrans↗

[Structure of nuclear pre-mRNA. X. New type double-helical structures in the pre-mRNA].

High molecular weight nuclear pre-messenger RNA (pre-mRNA or RNA) isolated from Ehrlich ascites carcinoma cells contains besides moderately long (100--200 base base pairs) snap-back double-stranded structures, also longer double-stranded structure containing at least 300-800 base pairs. Very long double-stranded sequences are not able to snap-back after RNA melting. While the moderately long double-stranded RNS (dsRNA) is renatured at Cot 1/2 approximately or equal to 5 X 10(-4), the very long dsRNA shows a higher complexity (Cot 1/2 approximately or equal to 2 X 10(-2). They also hybridize to a less reiterated class of DNA than moderately long dsRNA. Two classes of dsRNA are represented by different sequences as followed from cross-renaturation experiments. Very long dsRNA forms stable hybrids with 20% of total poly(A)+mRNA of cytoplasm. The properties of different classes of ds structures present in nuclear pre-mRNA are compared and their possible nature is discussed. The presence of very long dsRNA may reflect either the symmetric transcription of structural genes, or the transcription from thos DNA sequences which are complementary to each other but located in different parts of the genome.

Animals↗

[Morphologic criteria of the structural asymmetry of the cortical and subcortical structures of the human brain].

Using a cytoarchitectonic and quantitative methods, the authors investigated the structural organization of Fields 4, 6, 8, 39, 40, 43, 46, 47, caudate and dorsomedial nuclei of the tuber cinereum in the right and the left cerebral hemispheres in a grown-up right-handed man. With the help of electron computers definite parameters of neurons in the cortex (layers III and V) and in the subcortical nuclei were determined. The material obtained was statistically processed. Morphological criteria of the structural organization of the above-listed formations were identified. These included indicators of the total volumetric fraction of neurons and glia, profile fields of neurons, and the neuronal composition. Structural asymmetry was revealed, with the left hemisphere being dominant in the logomotor and motor fields. There were no signs of structural asymmetry in either the frontal and parietal fields or in the subcortical formations. The interpretation of the results obtained is attempted.

Adult↗

Muscarinic cholinergic receptor structure. Receptor size, membrane orientation, and absence of major phylogenetic structural diversity.

The structure of the muscarinic acetylcholine receptor was investigated by comparing polypeptides identified by sodium dodecyl sulfate (NaDodSO4)-polyacrylamide gel electrophoresis with the size of the intact receptor in cell membranes as determined by target size analysis. Muscarinic receptors from human, dog, and rat brain, rat and dog cardiac muscle, and guinea pig ileum longitudinal smooth muscle labeled with [3H] propylbenzilylcholine mustard, a covalent affinity reagent, appeared as single polypeptides with molecular weights of 80,000 on NaDodSO4-polyacrylamide gels. NaDodSO4-polyacrylamide gels of ileum smooth muscle muscarinic receptor also consistently displayed smaller peptides of 64, 52, 42, 36, 23, and 18 kDa. In order to determine whether the 80-kDa protein represented all or only a portion of the muscarinic receptor, target size analysis was undertaken. Radiation-induced receptor inactivation was measured by loss of [3H]quinuclidinyl benzilate specific binding and by loss of [3H]propylbenzilylcholine mustard-labeled receptor protein on NaDodSO4 gels. Target size analysis of rat and human brain, canine heart, and guinea pig ileum smooth muscle muscarinic receptors all indicated that the intact membrane-bound receptor has an average molecular mass of 80,000 daltons. These data demonstrate that the protein isolated on NaDodSO4 gels represents the intact receptor molecule. The question of whether structurally distinct receptors exist in different tissues and species was answered, in part, by limited proteolysis studies of the 80-kDa protein isolated from the above tissues. Trypsin and papain produce peptides of 64, 52, 42, 36, 23, and 18 kDa from all receptors studied, indicating a lack of major structural diversity and the absence of multiple structural forms of the muscarinic receptor. Limited proteolysis of the membrane-bound receptor produces a major peptide of 42,000 daltons and minor peptides of 36, 23, and 18 kDa, all of which contain the ligand binding site and protrude from the membrane into the extracellular space.

Animals↗

The structure of the lentil (Lens culinaris) lectin. Amino acid sequence determination and prediction of the secondary structure.

The subunit structure and complete amino acid sequence of the lectin extracted from Lens culinaris (LcL) seeds was determined. In previous studies, the primary structure of the alpha-chain (Mr = 5,710) was shown to be homologous to the alpha-chain of the lectin from Pisum sativum, the Vicia cracca glucose-specific lectin, and a region in the middle of the concanavalin A sequence (residues 70-121). The complete amino acid sequence of the beta-chain (Mr = 17,572) has been determined from 11 tryptic peptides, 4 peptides derived by chemical cleavage of the beta-chain at its three tryptophan residues, 11 peptides obtained after digestion with Staphylococcus aureus protease, and 5 tryptic peptides from the succinylated polypeptide chain. The extensive homologies by alignment of the alpha- and beta-chains of the L. culinaris lectin with portions of concanavalin A situated between 1 to 45 and 70 to 237, suggest that the L. culinaris and Canavalia ensiformis lectins have evolved from each other. A comparison was made between the secondary structure of the C. ensiformis lectin and the probable secondary structure of the L. culinaris lectin as predicted by two different methods. The results indicate that the folding of these two polypeptides has been particularly well conserved during evolution. It is suggested that the L. culinaris lectin is synthesized as a single polypeptide chain and cleaved subsequently into two or possibly three fragments, two of which would be alpha and beta and the third a fragment homologous to portion 46 to 69 in concanavalin A. As in favin, the amino acids postulated to be involved in the formation of the hydrophobic cavity and the sugar and metal binding sites are highly conserved in L. culinaris lectin.

Amino Acid Sequence↗

In vivo structural analysis of spliced leader RNAs in Trypanosoma brucei and Leptomonas collosoma: a flexible structure that is independent of cap4 methylations.

The formation of the mRNA 5' end in trypanosomatid protozoa is carried out by trans-splicing, which transfers a spliced leader (SL) sequence and its hypermethylated cap (cap4) from the SL RNA to the pre-mRNA. Previous in vitro studies with synthetic uncapped RNAs have shown that the SL sequence of Leptomonas collosoma can assume two alternate conformations, Form 1 and Form 2, with Form 1 being the dominant one. To gain information about the structure of the SL RNA in vivo, in its protein-rich environment, we have used permeable Trypanosoma brucei and L. collosoma cells for chemical modification experiments. We introduce the use in vivo of the water-soluble reagents CMCT and kethoxal. In contrast to the in vitro results, the Form 2 secondary structure predominates. However, there are chemically accessible regions that suggest conformational flexibility in SL RNPs and a chemically inaccessible region suggestive of protection by protein or involvement in tertiary interactions. Using complementary 2'-O-methyl RNA oligonucleotides, we show that T. brucei SL RNA can be induced to switch conformation in vivo. SL RNA stripped of proteins and probed in vitro does not display the same Form 2 bias, indicating that SL RNA structure is determined, at least in part, by its RNP context. Finally, the methyl groups of the cap4 do not seem to affect the secondary structure of T. brucei SL RNA, as shown by chemical modification of undermethylated SL RNA probed in vivo.

Aldehydes↗

A homology model of the three-dimensional structure of human O6-alkylguanine-DNA alkyltransferase based on the crystal structure of the C-terminal domain of the Ada protein from Escherichia coli.

O6-Alkylguanine-DNA alkyltransferase (EC 2.1.1.63) repairs O6-alkylguanine lesions in DNA. A homology model of the human protein (hAT) was built, based on the crystal structure of the C-terminal domain of the Ada protein, which carries out a similar repair in Escherichia coli. Sequence alignments of known O6-alkylguanine-DNA alkyltransferases were used to aid the model building using QUANTA and CHARMm software. Despite low homology in the N-terminal half (hAT residues 1-85), a well-defined topology over this region in Ada permitted successful modelling. The C-terminal half of hAT (residues 92-207) was modelled almost entirely by residue-for-residue superposition onto the Ada structure up to residue hAT175. The model was solvated to a residue radius of 8.0 A [corrected] and then minimized using CHARMm. This structural model was used to rationalize findings from site-directed mutagenesis experiments on hAT, to make further predictions on the relationship between structure and function for the alkyltransferase family of proteins, and to explain the specificity towards known small-molecule inhibitors of the protein.

Amino Acid Sequence↗

Structural features and properties of an extraordinarily stable hairpin-turn structure of d(GCGAAGC).

The extraordinarily stable hairpin-like structure formed by a short DNA fragment, d(GCGAAGC), has been studied by NMR spectroscopy and UV melting behaviour. The fragment is folded back between A4 and A5, and forms two terminal G-C base pairs and a non-Watson-Crick G-A base pair. All the nucleotides adopt C2'-endo sugar puckers. Both G1C2G3A4 and A5G6C7 moieties have characteristics of B-form geometry and within each moiety all the bases are involved in extensive base-base interactions. Distortion from B-form occurs in only the three torsion angles between A4 and A5 residues, which causes a sharp turn in the structure. There is no clear distinction between a stem and a loop region, as observed in usual hairpin structures, so that we classify it as a turn (hairpin-turn) structure. In addition to the thermal stability, this fragment is more stable towards the attack of some nucleases than other single-stranded as well as usual hairpin DNA fragments.

Hot Temperature↗

Thioredoxin and peptide methionine sulfoxide reductase: convergence of similar structure and function in distinct structural folds.

Thioredoxin (Trx) and peptide methionine sulfoxide reductase (PMSR) are small thiol oxidoreductases implicated in antioxidant defense and redox regulation of cellular processes. Here we show that the structures of Trx and PMSR exhibit resemblance in their alphabeta core regions and that the active site cysteines in two proteins occupy equivalent positions downstream of a central beta-strand and at the N-terminus of an alpha-helix. Moreover, we identified a PMSR subfamily that contains an active site CxxC motif (two cysteines separated by two other amino acids) positioned similarly to the catalytic redox active CxxC motif in Trx. However, Trx and PMSR are characterized by distinct ancient folds that differ in both orientation of secondary structures and their patterns. Trx is a member of the Trx-fold superfamily, whereas PMSR has a unique fold not found in other proteins. The data suggest that similar structures and functions of Trx and PMSR were acquired independently during evolution and point to a general strategy of identifying new redox regulatory proteins.

Amino Acid Sequence↗

Ab initio protein structure prediction via a combination of threading, lattice folding, clustering, and structure refinement.

A combination of sequence comparison, threading, lattice, and off-lattice Monte Carlo (MC) simulations and clustering of MC trajectories was used to predict the structure of all (but one) targets of the CASP4 experiment on protein structure prediction. Although this method is automated and is operationally the same regardless of the level of uniqueness of the query proteins, here we focus on the more difficult targets at the border of the fold recognition and new fold categories. For a few targets (T0110 is probably the best example), the ab initio method produced more accurate models than models obtained by the fold recognition techniques. For the most difficult targets from the new fold categories, substantial fragments of structures have been correctly predicted. Possible improvements of the method are briefly discussed.

Cluster Analysis↗

Crystal structure of Escherichia coli phosphoenolpyruvate carboxykinase: a new structural family with the P-loop nucleoside triphosphate hydrolase fold.

The crystal structure of ATP-dependent phosphoenolpyruvate carboxykinase (ATP-oxaloacetate carboxy-lyase, (transphosphorylating), E.C. 4.1.1.49; PCK) from Escherichia coli strain K12 has been determined using a combination of multiple isomorphous replacement, density modification, and partial model phase combination, and refined to a conventional R-index of 0.204 (Rfree = 0.244) at 1.9 A resolution. Each PCK molecule consists of a 275 residue N-terminal domain and 265 residue C-terminal or mononucleotide-binding domain, with the active site postulated to be within a cleft between the two domains. PCK is an open-faced, mixed alpha/beta protein, with each domain having an alpha/beta folding topology as found in several other mononucleoside-binding enzymes. The putative phosphate-binding site of ATP adopts the P-loop motif common to many ATP and GTP-binding proteins, and is similar in structure to that found within adenylate kinase. However, the beta-sheet topology within the mononucleotide-binding fold of PCK differs from all other families within the P-loop containing nucleoside triphosphate hydrolase superfamily, therefore suggesting it represents the first member in a new family of such proteins. The mononucleotide-binding domain is also different in structure compared to the classical mononucleotide-binding fold (CMBF) common to adenylate kinase, p21ras, and elongation factor-Tu. Several amino acid residues, including R65, K212, K213, H232, K254, D269, K288 and R333 appear to make up the active site of the enzyme, and are found to be absolutely conserved among known members of the ATP-dependent PCK family. A cysteine residue is located near the active-site, as has been suggested for other PCKs, although in the E. coli enzyme C233 is buried and so is most likely not involved in substrate binding or catalysis. Two binding sites of the calcium-analog TB3+ have been determined, one within the active site coordinating to the side-chain of D269, and the other within the C-terminal domain coordinating to the side-chains of E508 and E511.

Amino Acid Sequence↗

Solution structure, domain features, and structural implications of mutants of the chromo domain from the fission yeast histone methyltransferase Clr4.

The encapsulation of otherwise transcribable loci within transcriptionally inactive heterochromatin is rapidly gaining recognition as an important mechanism of epigenetic gene regulation. In the fission yeast Schizosaccharomyces pombe, heterochromatinization of the mat2/mat3 loci silences the mating-type information encoded within these loci. Here, we present the solution structure of the chromo domain from the cryptic loci regulator protein Clr4. Clr4 is known to regulate silencing and switching at the mating-type loci and to affect chromatin structure at centromeres. Clr4 and its human and Drosophila homologs have been identified as histone H3-specific methyltransferases, further implicating this family of proteins in chromatin remodeling. Our structure highlights a conserved surface that may be involved in chromo domain-ligand interactions. We have also analyzed two chromo domain mutants (W31G and W41G) that previously were shown to affect silencing and switching in full-length Clr4. Both mutants are significantly destabilized relative to wild-type.

Amino Acid Sequence↗

Solution structures of two FHA1-phosphothreonine peptide complexes provide insight into the structural basis of the ligand specificity of FHA1 from yeast Rad53.

Rad53, a yeast checkpoint protein involved in regulating the repair of DNA damage, contains two forkhead-associated domains, FHA1 and FHA2. Previous combinatorial library screening has shown that FHA1 strongly selects peptides containing a pTXXD motif. Subsequent location of this motif within the sequence of Rad9, the target protein, coupled with spectroscopic analysis has led to identification of a tight binding sequence that is likely the binding site of FHA1: (188)SLEV(pT)EADATFVQ(200). We present solution structures of FHA1 in complex with this pT-peptide and with another Rad9-derived pT-peptide that has ca 30-fold lower affinity, (148)KKMTFQ(pT)PTDPLE(160). Both complexes showed intermolecular NOEs predominantly between three peptide residues (pT, +1, and +2 residues) and five FHA1 residues (S82, R83, S85, T106, and N107). Furthermore, the following interactions were implicated on the basis of chemical shift perturbations and structural analysis: the phosphate group of the pT residue with the side-chain amide group of N86 and the guanidino group of R70, and the carboxylate group of Asp (at the +3 position) with the guanidino group of R83. The generated structures revealed a similar binding mode adopted by these two peptides, suggesting that pT and the +3 residue Asp are the major contributors to binding affinity and specificity, while +1 and +2 residues could provide additional fine-tuning. It was also shown that FHA1 does not bind to the corresponding pS-peptides or a related pY-peptide. We suggest that differentiation between pT and pS-peptides by FHA1 can be attributed to hydrophobic interactions between the methyl group of the pT residue and the aliphatic protons of R83, S85, and T106 from FHA1.

Amino Acid Motifs↗

Secondary structure of beta-hydroxydecanoyl thiol ester dehydrase, a 39-kDa protein, derived from H alpha, C alpha, C beta and CO signal assignments and the Chemical Shift Index: comparison with the crystal structure.

Nearly complete backbone 1H, 15N and 13C signal assignments are reported for beta-hydroxydecanoyl thiol ester dehydrase, a 39-kDa homodimer containing 342 amino acids. Although 15N relaxation data show that the protein has a rotational correlation time of 18 ns, assignments were derived from triple-resonance experiments recorded at 500 MHz and pH 6.8, without deuteration. The Chemical Shift Index, CSI, identified two long helices and numerous beta-strands in dehydrase. The CSI predictions are in close agreement with the secondary structure identified in the recently derived crystal structure, particularly when one takes account of the numerous bulges in the beta-strands. The assignment of dehydrase and a large deuterated protein [Yamazaki et al. (1994) J. Am. Chem. Soc., 116, 11655-11666] suggest that assignment of 40-60 kDa proteins is feasible. Hence, further progress in understanding the chemical shift/structure relationship could open the way to determine the structures of such large proteins.

Amino Acid Sequence↗

Crystal structure of a berenil-d(CGCAAATTTGCG) complex. An example of drug-DNA recognition based on sequence-dependent structural features.

The AT-selective drug berenil has been co-crystallized with the dodecanucleotide sequence d(CGCAAATTTGCG)2. The crystal structure has been solved to a resolution of 2.0 A and an R factor of 18.3%, with the location of 65 water molecules. The drug is symmetrically bound in the 5'-AATT region of the minor groove, with its amidinium groups hydrogen-bonding to O-2 atoms of the thymine base at each end of the binding site. This arrangement is distinct from that previously found for berenil with the sequence d(CGCGAATTCGCG)2, which has the drug bound to the sequencing 5'-ATT via hydrogen bonds to adenine N-3 atoms with the involvement of a bridging water molecule at one end of the binding site. The reasons for these differences are discussed in terms of changes in helical parameters; in particular propeller twist and base-pair roll are considered to be important. The conformational and base-pair geometry of the dodecanucleotide in the structure reported here, is closely similar to that for the native structure, suggesting that the 5'-AAATTT sequence does not significantly alter during drug binding, either because of its inflexibility or because its geometry is nearly ideal for berenil binding.

Base Sequence↗