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The human ubiquitin-52 amino acid fusion protein gene shares several structural features with mammalian ribosomal protein genes.

Complementary DNA clones encoding ubiquitin fused to a 52 amino acid tail protein were isolated from human placental and adrenal gland cDNA libraries. The deduced human 52 amino acid tail protein is very similar to the homologous protein from other species, including the conservation of the putative metal-binding, nucleic acid-binding domain observed in these proteins. Northern blot analysis with a tail-specific probe indicated that the previously identified UbA mRNA species most likely represents comigrating transcripts of the 52 amino acid tail (UbA52) and 80 amino acid tail (UbA80) ubiquitin fusion genes. The UbA52 gene was isolated from a human genomic library and consists of five exons distributed over 3400 base pairs. One intron is in the 5' non-coding region, two interrupt the single ubiquitin coding unit, and the fourth intron is within the tail coding region. Several members of the Alu family of repetitive DNA are associated with the gene. The UbA52 promoter has several features in common with mammalian ribosomal protein genes, including its location in a CpG-rich island, initiation of transcription within a polypyrimidine tract, the lack of a consensus TATA motif, and the presence of Sp1 binding sites, observations that are consistent with the recent identification of the ubiquitin-free tail proteins as ribosomal proteins. Thus, in spite of its unusual feature of being translationally fused to ubiquitin, the 52 amino acid tail ribosomal protein is expressed from a structurally typical ribosomal protein gene.

Adrenal Glands↗

Defining functional groups, core structural features and inter-domain tertiary contacts essential for group II intron self-splicing: a NAIM analysis.

Group II introns are self-splicing RNA molecules that are of considerable interest as ribozymes, mobile genetic elements and examples of folded RNA. Although these introns are among the most common ribozymes, little is known about the chemical and structural determinants for their reactivity. By using nucleotide analog interference mapping (NAIM), it has been possible to identify the nucleotide functional groups (Rp phosphoryls, 2'-hydroxyls, guanosine exocyclic amines, adenosine N7 and N6) that are most important for composing the catalytic core of the intron. The majority of interference effects occur in clusters located within the two catalytically essential Domains 1 and 5 (D1 and D5). Collectively, the NAIM results indicate that key tetraloop-receptor interactions display a specific chemical signature, that the epsilon-epsilon' interaction includes an elaborate array of additional features and that one of the most important core structures is an uncharacterized three-way junction in D1. By combining NAIM with site-directed mutagenesis, a new tertiary interaction, kappa-kappa', was identified between this region and the most catalytically important section of D5, adjacent to the AGC triad in stem 1. Together with the known zeta-zeta' interaction, kappa-kappa' anchors D5 firmly into the D1 scaffold, thereby presenting chemically essential D5 functionalities for participation in catalysis.

Base Sequence↗

Molecular basis of inward rectification: structural features of the blocker defined by extended polyamine analogs.

Polyamines cause inward rectification of Kir K(+) channels by blocking deep within the channel pore. We investigated structural constraints of polyamine block of strongly rectifying mutant K(ATP) channels (Kir6.2[L164C,N160D,C166S] + SUR1). We studied three groups of polyamine analogs: 1) conformationally restricted linear tetra-amines with a cycloalkyl or alkene group between the second and third amines (CGC-11047, CGC-11093, CGC-11099, and CGC-11098), 2) conformationally restricted linear deca-amines with a cycloalkyl or alkene group between the fifth and sixth amines (CGC-11150, CGC-11179, and CGC-11241), and 3) cyclic tetra-amines (CGC-11174, CGC-11197, CGC-11199, and CGC-11254). All linear analogs cause a voltage-dependent block similar to that of spermine, but slightly weaker (at 1 microM, V(1/2) for spermine block = -10 +/- 1 mV, Z = 2.9 +/- 0.1, n = 19; V(1/2) for analogs varies from polyamine -7 to +10 mV, Z = 2.6-3.9). These data indicate tolerance for conformational restriction and an upper limit to the voltage dependence of the blocking process. There was no voltage-dependent block by the cyclic compounds; instead, they induce irreversible rundown of the current. Structural models of Kir channels suggest that a narrow entry at the top of the cytoplasmic pore may exclude cyclic analogs from the inner cavity, thereby explaining the structure-activity relationship that we observe.

Animals↗

A nuclear lamin of the nematode Caenorhabditis elegans with unusual structural features; cDNA cloning and gene organization.

This report describes the characterization of the nuclear lamin CeLam-1 of the nematode Caenorhabditis elegans by molecular analysis of the corresponding complete cDNA and gene sequences. The primary structure of CeLam-1, representing only the third non-vertebrate lamin sequence currently known, follows essentially the features displayed by the B-type lamins of vertebrates and Drosophila. The nematode lamin shows, however, some exceptional properties. First, it lacks the SPTR sequence in front of the coil 1a domain which constitutes the major mitotic cdc2 kinase phosphorylation site. Second, two prominent deletions occur in the CeLam-1 sequence. One eliminates 14 amino acid residues from the coil 2 domain. A larger deletion of approximately 25 residues results in the shortest lamin tail domain documented so far. The latter corresponds to a region which varies considerably in sequence from highly acidic in vertebrate B-type lamins to rather basic in Drosophila lamin Dmo. CeLam-1 is encoded by a single 2.3 kb mRNA which is abundantly expressed in mixed-stage worm populations. The 5'-end of the mRNA is generated by trans-splicing to the SL1 leader sequence. The CeLam-1 gene extending over 2.7 kb is located on chromosome I. The gene is composed of 6 exons and 5 short introns, which all interrupt the coding sequence. Surprisingly, none of the intron positions has a counterpart in either the Drosophila lamin Dmo or the vertebrate lamin genes.

Amino Acid Sequence↗

Conserved structural features on protein surfaces: small exterior hydrophobic clusters.

The extent to which side-chains at the surface of globular proteins adopt well-defined conformations is a matter of some controversy and, in turn, the idea that specific interactions amongst them might make a significant contribution to defining tertiary structures would be generally seen as questionable. In at least some cases, however, there is evidence for organisation of the surface to form discrete, tightly packed clusters. In this paper we examine the role of such clusters in accommodating large, hydrophobic residues on the exterior of protein structures. Taking poplar plastocyanin as a detailed example, we find a variety of ways in which solvent accessibility of such non-polar groups can be limited and we highlight, in particular, a rather simple type of cluster in which a single hydrophobic residue is substantially excluded from solvent by a cage of surrounding, chiefly hydrophilic, side-chains. Comparison with the structures of a number of other proteins which share with plastocyanin the Greek key beta-sandwich topology, but are otherwise unrelated, produces the remarkable finding that analogous clusters are commonly found in the topologically equivalent position. This suggests that these features, which we call small exterior hydrophobic clusters (SEHCs), may have an important structural role and we able that their recurrent position in these proteins is such that they may help to fix the register of non-sequential beta-strands and, perhaps, to specify their association during folding. Similar SEHCs can also be identified in other classes of protein structure and we give a four-helix bundle protein, the rop dimer, as an example. It seems likely that accommodation of large non-polar residues provides a mechanism for introducing a degree of local order in to the surface layers of proteins in solution and it is possible that this behavior could play a role in locking tertiary structures. Thus, while the packing of the hydrophobic core of a globular protein is surely the dominant driving force for folding, it may be that, in some cases at least, interactions among surface residues also play an important role in determining the fine details of the structure.

Amino Acid Sequence↗

Structural features of interferon-gamma aggregation revealed by hydrogen exchange.

Using hydrogen-deuterium exchange (HX) and electrospray ionization mass spectrometry, we have investigated the stability and structural changes of recombinant human interferon-gamma (IFN-gamma) during aggregation induced by guanidine hydrochloride (GdnHCl) and potassium thiocyanate. First, HX labeling was initiated after the amorphous aggregates were formed to probe the tertiary structure of the aggregated state. Second, labeling was performed at low protein concentrations to assess stability under aggregation prone conditions. In 1 M GdnHCl, the stability of IFN-gamma was greatly reduced and much less protection from HX in solution was observed. Exchange under these conditions was slower in helix C than in the rest of the protein. Aggregates formed in 1 M GdnHCl showed a HX pattern consistent with a partially unfolded state with an intact helix C. Although aggregates formed in 0.3 M KSCN exhibited a HX pattern similar to those formed in GdnHCl, the solution phase HX pattern in 0.3 M KSCN was surprisingly comparable to that of the native state. Varying the aggregation time before performing HX revealed that KSCN first precipitated native protein and then facilitated partial unfolding of the precipitated protein. These results show that helix C, which forms the hydrophobic core of the IFN-gamma dimer, is highly protected from HX under native conditions, is more stable in GdnHCl than the rest of the protein and remains intact in both GdnHCl- and KSCN-induced aggregates. This suggests that native-state HX patterns may presage regions of the protein susceptible to unfolding during aggregation.

Deuterium↗

Structural features of 26S and 20S proteasomes.

The 26S proteasome is the central protease of the ubiquitin-dependent pathway of protein degradation and has a highly conserved structure from slime molds to humans. The elongated molecule which has a molecular mass of approximately 2,000 kD is formed by a barrel-shaped 20S core complex and two polar 19S complexes. The 20S complex has C2 symmetry and is built by four seven-membered rings of which the outer rings are rotated by 26 degrees relative to the inner rings while the inner rings are in register. The 19S cap complex is asymmetric and therefore considerably less well understood on a structural level. From a comparison of the activity and regulation of the 26S and 20S particles, it can be deduced that the 20S particle contains the protease activity while the 19S complex is supposed to contain isopeptidase, oxidoreductase, ATPase and protein-unfolding activities. In this article we describe the structure of various proteasome complexes as determined by electron microscopy and discuss structural implications of their subunit sequences.

Adenosine Triphosphatases↗

[Structural features of linear and cyclic analogs of angiotensin, affecting secretion of histamine from rat mast cells].

Linear and cyclic analogues of angiotensin were studied to clarify the structural properties of peptides possessing a histamine-releasing action. It was shown that an increase in the angiotensin basicity or its cyclization leads to the appearance of the histamine-releasing activity which is not characteristic of the natural hormone. This increase in the basicity of the angiotensin cyclic analogs results in highly active compounds with the EC50 exceeding by 2 to 3 orders of magnitude that of polymyxin B or substance 48/80. The data obtained confirm the hypothesis postulating a high degree of amphiphilicity for histamine-releasing peptides. As a result of cyclization of angiotensin analogues, a block of positively charged amino acids with an oppositely located hydrophobic region is formed. This finding can be of importance for the effective interaction of peptides with cellular structures as well as for the stimulation of secretory processes.

Adrenocorticotropic Hormone↗

Structural features of platelet activating factor (1-alkyl-2-acetyl-sn-glycero-3-phosphocholine) required for hypotensive and platelet serotonin responses.

A number of analogs similar in structure to biologically active 1-alkyl-2-acetyl-sn-glycero-3-phosphocholine (platelet activating factor) were tested for their relative effectiveness in lowering the blood pressure of spontaneous hypertensive rats and in releasing [3H]serotonin from rabbit platelets. Except for some minor variations, the two test systems gave the same pattern of relative responses for a given analog. Both biological activities (the antihypertensive response and release of platelet serotonin) appear to be stereospecific since the unnatural isomer exhibited no detectable effects. Other structural modifications that greatly reduced (greater than 500-fold) or eliminated the two biological activities were: 1) removal of the acetate group, 2) substitution of the acetate group with long-chain acyl, methoxy, benzoxy, N-formyl, N-trifluoroacetyl, N-hexadecanoyl, or deoxy groups such as dimethyl, propyl, isopropyl, or isobutyl, and 3) replacement of the sn-1 0-alkyl group with an acyl moiety. Biological activities were reduced to a lesser extent (100- to 500-fold) when the sn-2 carbon contained butyrate or hexanoate groups or if ethanolamine was substituted for the choline base. Replacing the sn-2 acetate group with an ethoxy group lowered the activity 48- and 120-fold for the blood pressure and serotonin release, respectively. Substitution of propionate for acetate at the sn-2 carbon gave a compound that was at least, if not more, biologically active than the parent structure; although an N-acetyl analog possessed biologic activities, the responses were only 0.27 to 1.0% of those obtained with the O-acetyl lipid. Maximum biological activity for both hypotensive effects and platelet serotonin release required a glycerolipid having an alkyl ether at the sn-1, acetate or propionate groups at the sn-2, and phosphocholine at the sn-3 positions.

Animals↗

Structural features of a three-stranded DNA junction containing a C-C junctional bulge.

We have examined the stability of junctional base pairs in a three-way DNA junction with two unpaired cytidine residues at the branch point using two-dimensional nuclear Overhauser effect spectroscopy in H2O solution. Our data directly support the presence of two of the three junctional Watson-Crick base pairs, with indirect support for the third as well. These results complement the data presented in the preceding paper, where we examined the nonexchangeable proton resonance assignments of three-way DNA junctions from NOESY data in D2O solution. We have incorporated the NOE data from both sets of experiments, using this information as input for a combined distance geometry (DG) and simulated annealing (SA) protocol designed to derive three-dimensional structures of the junction molecule consistent with the NMR data. Although the data does not allow us to derive a unique solution for the structure of the molecule, certain conformational features are invariably present in our models. We demonstrate the existence of a preferred, pair-wise stacking arrangement between two of the three helices in the junction. Furthermore, the remaining duplex stem is situated so that it always forms an acute angle with just one of the arms from the quasi-continuous helix. The unpaired residues provide an extended backbone segment linking two of the helices together. The first unpaired base on the 5' end loops out from the interior of the molecule to reside along the minor groove of one helix. The second is located within the interior of the molecule, stacking below one of the junctional base pairs. Our findings suggest that junctional base pair stacking is an important determinant in the conformation of multistranded nucleic acid junctions. In three-way junctions, the presence of unpaired bases at the branch point provides a relief from covalent constraints that would otherwise prevent the simultaneous realization of both base pairing and base pair stacking within the branch point of the molecule.

Base Composition↗

Consensus structural features of purified bacterial TatABC complexes.

The twin-arginine translocation (Tat) system transports folded proteins across bacterial plasma membranes and the chloroplast thylakoid membrane. Here, we investigate the composition and structural organization of three different purified Tat complexes from Escherichia coli, Salmonella typhimurium and Agrobacterium tumefaciens. First, we demonstrate the functional activity of these Tat systems in vivo, since expression of the tatABC operons from S.typhimurium or A.tumefaciens in an E.coli tat null mutant strain resulted in efficient Tat-dependent export of an E.coli cofactor-containing substrate, TMAO reductase. The three isolated, affinity-tagged Tat complexes comprised TatA, TatB and TatC in each case, demonstrating a strong interaction between these three subunits. Single-particle electron microscopy studies of all three complexes revealed approximately oval-shaped, asymmetric particles with maximal dimensions up to 13 nm. A common feature is a number of stain-excluding densities surrounding more or less central pools of stain, suggesting protein-lined pores or cavities. The characteristics of size variation among the particles suggest a modular form of assembly and/or the recruitment of varying numbers of TatBC/TatA units. Despite low levels of sequence homology, the combined data indicate structural and functional conservation in the Tat systems of these three bacterial species.

Agrobacterium tumefaciens↗

Identity of tRNA for yeast tyrosyl-tRNA synthetase: tyrosylation is more sensitive to identity nucleotides than to structural features.

The specific aminoacylation of tRNA by yeast tyrosyl-tRNA synthetase does not rely on the presence of modified residues in tRNA(Tyr), although such residues stabilize its structure. Thus, the major tyrosine identity determinants were searched by the in vitro approach using unmodified transcripts produced by T7 RNA polymerase. On the basis of the tyrosylation efficiency of tRNA variants, the strongest determinants are base pair C1-G72 and discriminator residue A73 (the 5'-phosphoryl group on C1, however, is unimportant for tyrosylation). The three anticodon bases G34, U35, and A36 contribute also to the tyrosine identity, but to a lesser extent, with G34 having the most pronounced effect. Mutation of the GUA tyrosine anticodon into a CAU methionine anticodon, however, leads to a loss of tyrosylation efficiency similar to that obtained after mutation of the C1-G72 or A73 determinants. Transplantation of the six determinants into four different tRNA frameworks and activity assays on heterologous Escherichia coli and Methanococcus jannaschii tRNA(Tyr) confirmed the completeness of the tyrosine set and the eukaryotic character of the C1-G72 base pair. On the other hand, it was found that tyrosine identity in yeast does not rely on fine architectural features of the tRNA, in particular the size and sequence of the D-loop. Noticeable, yeast TyrRS efficiently charges a variant of E. coli tRNA(Tyr) with a large extra-region provided its G1-C72 base pair is changed to a C1-G72 base pair. Finally, tyrosylation activity is compatible with a +1 shift of the anticodon in the 3'-direction but is strongly inhibited if this shift occurs in the opposite 5'-direction.

Acylation↗

Structural features of the nicotinic acetylcholine receptor revealed by antibodies to synthetic peptides.

Antibodies were raised to the amino- and carboxy-terminal decapeptides of Torpedo californica acetylcholine receptor. Structural studies of the native receptor using the antipeptide antibodies as probes proved the existence of the carboxy terminal sequence in the alpha subunit predicted from its cDNA sequence and supported structural models of the native receptor that place the carboxy termini on the intracellular side. The amino termini of the subunits were not accessible on the surface of native receptor.

Amino Acid Sequence↗

Polytheonamides A and B, highly cytotoxic, linear polypeptides with unprecedented structural features, from the marine sponge, Theonella swinhoei.

Polytheonamides A and B are highly cytotoxic polypeptides with 48 amino acid residues isolated from the marine sponge, Theonella swinhoei. The structure of polytheonamide B was determined by spectral and chemical methods, especially extensive 2D NMR experiments, which resulted in the unprecedented polypeptide structure; the N-terminal glycine blocked with a 5,5-dimethyl-2-oxo-hexanoyl group, the presence of eight tert-leucine, three beta-hydroxyvaline, six gamma-N-methylasparagine, two gamma-N-methyl-beta-hydroxyasparagine, and beta,beta-dimethymethionine sulfoxide residues. More significantly, it has the sequence of alternating D- and L-amino acids. Polytheonamide A is an epimer of polytheonamide B differing only in the stereochemistry of the sulfoxide of the 44(th) residue.

Amino Acids↗

Structural features of the low-density lipoprotein receptor facilitating ligand binding and release.

The LDLR (low-density lipoprotein receptor) is a modular protein built from several distinct structural units: LA (LDLR type-A), epidermal growth factor-like and beta-propeller modules. The low pH X-ray structure of the LDLR revealed long-range intramolecular contacts between the propeller domain and the central LA repeats of the ligand-binding domain, suggesting that the receptor changes its overall shape from extended to closed, in response to pH. Here we discuss how the LDLR uses flexibility and rigidity of linkers between modules to facilitate ligand binding and low-pH ligand release.

Animals↗

Characteristic structural features of schistosome cercarial N-glycans: expression of Lewis X and core xylosylation.

Schistosomal egg N-glycans are the only examples in nature that have been structurally shown to contain beta2-xylosylation, alpha6-fucosylation, and alpha3-fucosylation on the N,N'-diacetyl chitobiose core. We present evidence that core difucosylated and xylosylated N-glycans are characteristics of Schistosoma japonicum eggs but not of the cercariae and adults, for which neither core xylosylation nor alpha3-fucosylation could be readily detected. In contrast, a majority of the N-glycans from Schistosoma mansoni cercariae but not the adults are core xylosylated. Tandem mass spectrometry analysis coupled with chromatographic mapping, sequential exoglycosidase digestion, and methylation analysis were employed to unambiguously define the structures of core beta2-xylosylated, alpha6-fucosylated N-glycans from S. mansoni cercariae. Unexpectedly, a majority of these N-glycans were found to carry Lewis X determinant, Galbeta1-->4(Fucalpha1-->3)GlcNAcbeta1-->, on the nonreducing termini of mono- and biantennary structures. The Lewis X-containing glycoproteins were found to be distinct from those carrying the complex, multifucosylated glycocalyx O-glycans reported previously. The corresponding N-glycans from S. japonicum cercariae are likewise dominated by Lewis X termini but without the core xylosylation. We concluded that the invading cercariae present an important and abundant source of Lewis X antigens, which may contribute to the induced humoral response upon infection. Following transformation and development into the adults, the N-glycans synthesized comprise a significantly larger amount of high mannose and fucosylated pauci-mannose structures in comparison with the cercarial N-glycans. A portion of the mono- and biantennary complex types were identified to carry Lewis X and fucosylated LacdiNAc termini, which could also be detected by mass spectrometry analysis on larger, complex-type structures.

Animals↗

Structural features of cell wall teichoic acid and peptidoglycan of Actinomadura cremea INA 292.

The teichoic acid from the cell wall of Actinomadura cremea INA 292 has an unusual structure, being a poly(galactosylglycerol phosphate) chain with glycerol phosphate groups. Monomeric units of 1-O, beta-D-galactopyranosylglycerol monophosphate are joined in the polymer by phosphodiester links involving the glycerol C3 and the galactose C6 atoms. Approximately every second galactosyl substituent has a glycerol phosphate residue at its C3 atom. The teichoic acid structure was established by chemical analysis and 13C-NMR spectroscopy. There also is a peptidoglycan belonging to the A1 gamma type: as well as meso-2,6-diaminopimelic acid it contains small amounts of the LL form and glycine.

Actinomycetales↗