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Surfactant-associated proteins: functions and structural variation.

Pulmonary surfactant is a barrier material of the lungs and has a dual role: firstly, as a true surfactant, lowering the surface tension; and secondly, participating in innate immune defence of the lung and possibly other mucosal surfaces. Surfactant is composed of approximately 90% lipids and 10% proteins. There are four surfactant-specific proteins, designated surfactant protein A (SP-A), SP-B, SP-C and SP-D. Although the sequences and post-translational modifications of SP-B and SP-C are quite conserved between mammalian species, variations exist. The hydrophilic surfactant proteins SP-A and SP-D are members of a family of collagenous carbohydrate binding proteins, known as collectins, consisting of oligomers of trimeric subunits. In view of the different roles of surfactant proteins, studies determining the structure-function relationships of surfactant proteins across the animal kingdom will be very interesting. Such studies may reveal structural elements of the proteins required for surface film dynamics as well as those required for innate immune defence. Since SP-A and SP-D are also present in extrapulmonary tissues, the hydrophobic surfactant proteins SP-B and SP-C may be the most appropriate indicators for the evolutionary origin of surfactant. SP-B is essential for air-breathing in mammals and is therefore largely conserved. Yet, because of its unique structure and its localization in the lung but not in extrapulmonary tissues, SP-C may be the most important indicator for the evolutionary origin of surfactant.

Amino Acid Sequence↗

Structural variation in the inner ears of four deep-sea elopomorph fishes.

Deep-sea fishes have evolved in dark or dimly lit environments devoid of the visual cues available to shallow-water species. Because of the limited opportunity for visual scene analysis by deep-sea fishes, it is reasonable to hypothesize that the inner ears of at least some such species may have evolved structural adaptations to enhance hearing capabilities in lieu of vision. As an initial test of this hypothesis, scanning electron microscopy was used to examine the structure of the inner ears of four deep-sea elopomorph species inhabiting different depths: Synaphobranchus kaupii, Synaphobranchus bathybius, Polyacanthonotus challengeri, and Halosauropsis macrochir. The shape of the sensory epithelia and hair cell ciliary bundle orientation of the saccule, lagena, and utricle, the three otolithic organs associated with audition and vestibular function, are described. The saccules of all four species have a common, alternating ciliary bundle orientation pattern. In contrast, the lagena exhibits more interspecific diversity in shape and ciliary bundle orientation, suggesting that it has special adaptations in these species. The macula neglecta, a sensory epithelium of unknown function, is present in all four species.

Adaptation, Physiological↗

Isolation of chicken-bek and a related gene; identification of structural variation in the ligand-binding domains of the FGF-receptor family.

cDNA clones carrying the chicken-bek gene and a related gene were isolated. Deducing the amino acid sequence of chicken-bek allowed us to predict that it encodes for a receptor tyrosine kinase related to the fibroblast growth factor (FGF) receptor, and that the chicken-bek gene and Cek3 are closely related. However, a significant structural difference was identified between chicken-bek and Cek3 within the putative extracellular region, in such a manner that the structure of the immunoglobulin-like domain was conserved. A probe specific to the altered structure detected mRNA in the tissues as did a probe common to bek and Cek3, indicating heterogeneity in the FGF-receptor family in a novel manner. Furthermore, another bek-like gene was isolated and the expressions of its mRNA and protein product were analysed in tissues and cultured cells.

Amino Acid Sequence↗

Peptide aldehyde inhibitors of the kallikreins: an investigation of subsite interactions with tripeptides containing structural variations at the amino terminus.

A series of tripeptide aldehyde derivatives containing variations at the P3 subsite and the amino terminus has been prepared and evaluated for trypsin-like serine protease inhibition. These compounds exhibit strong in vitro inhibition of human plasma kallikrein (HPK), porcine pancreatic kallikrein (PPK) and human plasmin (HP). As suspected from an examination of a related crystal structure, the presence of a hydrophobic residue (adamantyl) at the amino terminus dramatically improves the binding to PPK. The adamantyl group, however, represents a peak in binding; larger residues cause the binding to be reduced, and thus are less well accommodated in this subsite. Although both HP and HPK also can accept large molecular volume at the amino terminus, they do not exhibit the same preference for large residues at this subsite that is demonstrated by PPK. Selectivity differences also are observed with P3 subsite substitution; with PPK preferring a bulky, but compact side-chain (t-butyl) and HP and HPK preferring a more extended (e.g. benzyl) group.

Aldehydes↗

Imprint of evolutionary conservation and protein structure variation on the binding function of protein tyrosine kinases.

MOTIVATION: According to the models of divergent molecular evolution, the evolvability of new protein function may depend on the induction of new phenotypic traits by a small number of mutations of the binding site residues. Evolutionary relationships between protein kinases are often employed to infer inhibitor binding profiles from sequence analysis. However, protein kinases binding profiles may display inhibitor selectivity within a given kinase subfamily, while exhibiting cross-activity between kinases that are phylogenetically remote from the prime target. The emerging insights into kinase function and evolution combined with a rapidly growing number of publically available crystal structures of protein kinases complexes have motivated structural bioinformatics analysis of sequence-structure relationships in determining the binding function of protein tyrosine kinases. RESULTS: In silico profiling of Imatinib mesylate and PD-173955 kinase inhibitors with protein tyrosine kinases is conducted on kinome scale by using evolutionary analysis and fingerprinting inhibitor-protein interactions with the panel of all publically available protein tyrosine kinases crystal structures. We have found that sequence plasticity of the binding site residues alone may not be sufficient to enable protein tyrosine kinases to readily evolve novel binding activities with inhibitors. While evolutionary signal derived solely from the tyrosine kinase sequence conservation can not be readily translated into the ligand binding phenotype, the proposed structural bioinformatics analysis can discriminate a functionally relevant kinase binding signal from a simple phylogenetic relationship. The results of this work reveal that protein conformational diversity is intimately linked with sequence plasticity of the binding site residues in achieving functional adaptability of protein kinases towards specific drug binding. This study offers a plausible molecular rationale to the experimental binding profiles of the studied kinase inhibitors and provides a theoretical basis for constructing functionally relevant kinase binding trees.

Amino Acid Sequence↗

Structural variations of collagen in normal and pathological tissues: role of electron microscopy.

The spectrum of ultrastructural appearances assumed by collagen in normal and pathological tissues is illustrated using techniques of thin section transmission electron microscopy and computer-assisted analysis. The normal fibrillar collagen types are described in order to provide a basis for comparing other normal and abnormal forms. In normal tissues, the anchoring fibril and basal lamina (basement membrane) represent tissue structures largely containing collagen but differing significantly in organisation from normal types I to III fibrillar collagen. In pathological tissue, deviations from normal fine structure are reflected in abnormal aggregates of collagen fibrils (amianthoid and skeinoid fibres) and abnormalities in fibril diameter and cross-sectional profile. Fibrous and segment long-spacing collagen represent two further organisational variants of collagen, the former found widely in pathological tissues, the latter very rarely. Much remains to be discovered about these abnormal collagen variants-their mode of formation, the cells that produce them, and their roles. They also present a challenge for the collagen biologist formulating hypotheses of collagen fibril assembly and molecular organisation.

Animals↗

Toxoplasma gondii-structure variations of the antigen P30.

The major surface immunodominant antigen (P30) of Toxoplasma gondii was purified by two methods (i) SDS-PAGE and (ii) immunoaffinity chromatography. The secondary elements within this protein were assessed by circular dichroism and spectra obtained were compared to those proposed by Manavalan & Johnson (1983). The results allowed us to determine an all beta protein status for this antigen. This experimental result was in agreement with the predicted secondary structures deduced from the P30 primary sequence. Modifications in conformation according to pH and temperature were recorded without any change in immunoactivity. The epitope, which was always recognized by a monoclonal antibody against P30, could be a linear epitope.

Amino Acid Sequence↗

cycloSal-d4TMP pronucleotides structural variations, mechanistic insights and antiviral activity.

Pronucleotides represent a promising alternative to improve the biological activity of nucleoside analogues against different viral diseases. The basic idea is to achieve nucleotide delivery into cells, bypassing limitations with intracellular formation of nucleotides from their nucleoside precursors. The cycloSal-concept is one of several pronucleotide systems reported so far. For the nucleoside analogue d4T, the cycloSal-approach improved antiviral potency. The basic idea, chemistry, different structural modifications and their effects on the antiviral potency of the cycloSal-d4TMP triesters have been discussed in this review.

Antiviral Agents↗

Promoter helical structure variation at the Escherichia coli polymerase interaction sites.

There is evidence that the Escherichia coli polymerase recognizes and binds to three sites on the promoter DNA: the -10, -35, and -16 regions. Sequence homology was noted among the -10 sites (Pribnow box) and among the -35s with consensus sequences, TATAAT and TTGACA , respectively. Weak nucleotide sequence homology was detected at -16. Since the polymerase recognizes these sites in a multitude of promoters, one expects similarities in the three-dimensional structures. To date, no data directly bearing on such structures exist. Recently, Calladine ( Calladine , C.R. (1982) J. Mol. Biol. 161, 343-352) and, subsequently, Dickerson ( Dickerson , R.E. (1983) J. Mol. Biol. 166, 419-441) suggested "rules" for doublestranded DNA structures which were tested against data from several known crystals. Using these rules, I compare the deviations from "ideal" B-DNA of the twist angles, base pair roll, sideways shift, and propeller suppression in 56 promoters at the three sites. I also appended to these the twist angle computations on additional 77 promoters from the recently published compilation of promoter sequences. For the latter, additional nucleotides from the spacer regions were added. The results display similarities at the -10 site. Equally strong similarities were obtained for the -35 and the -16 contact regions. The existence of structural differences for some sites is likely to account for the different degrees of efficiency of the polymerase recognition and transcriptional regulation.

Base Sequence↗

Structural variations of different oral basement membranes revealed by cationic dyes and detergent added to aldehyde fixative solution.

The ultrastructural appearance of different types of basement membrane was studied using histochemical methods for visualizing glycosaminoglycans. Samples of rat gingiva and mouse molar germ tissue were fixed either with glutaraldehyde, glutaraldehyde-ruthenium hexammine trichloride (RHT), glutaraldehyde-Cuprolinic Blue (CB) or cetylpyridinium chloride-glutaraldehyde (CPC). Ultrathin sections were stained with uranyl acetate and lead citrate. The results showed that the conventional trilaminar structure of the basement membrane was observed after glutaraldehyde and CB fixation. In contrast, after CPC or RHT fixation, the appearance of the basement membrane was homogeneous without any evidence of a lamina lucida. Furthermore, after single fixation with CPC, the ultrastructure of different basement membranes from oral tissues showed some differences in appearance which were related to their localizations, functions, or both.

Animals↗

Motor proteins of the kinesin family. Structures, variations, and nucleotide binding sites.

Microtubule-dependent motors of the kinesin family convert the energy from ATP hydrolysis into mechanical work in order to transport vesicles and organelles along microtubules. The motor domains of several kinesins have been solved by X-ray diffraction, but the conformational changes associated with force development remain unknown. Here we describe conformational properties of kinesin that might be related to the mechanism of action. First, we have evaluated the conformational variability among all known kinesin structures and find they are concentrated in six areas, most of which are functionally important either in microtubule binding or in linking the core motor to the stalk. Secondly, we show that there is an important difference between kinesins when compared with myosins or GTPases (with which kinesin motor domains bear structural and catalytic similarities); in the diphosphate-state (with bound ADP), all kinesins show a 'tight' nucleotide-binding pocket, comparable with myosin or GTPases in the triphosphate state, whose nucleotide-binding pockets become open, or 'loose', following nucleotide hydrolysis. Thus, kinesin-ADP appears to be in a tense state, resembling that observed in myosin-ATP or p21ras-GTP.

Animals↗

Structural variations in the catalytic and ubiquitin-associated domains of microtubule-associated protein/microtubule affinity regulating kinase (MARK) 1 and MARK2.

The microtubule-associated protein (MAP)/microtubule affinity regulating kinase (MARK)/Par-1 phosphorylates microtubule-associated proteins tau, MAP2, and MAP4 and is involved in the regulation of microtubule-based transport. Par-1, a homologue of MARK in Drosophila and Caenorhabditis elegans, is essential for the development of embryonic polarity. Four isoforms of MARK are found in humans. Recently, we reported the crystal structure of the catalytic and ubiquitin-associated domains of MARK2, an isoform enriched in brain (Panneerselvam, S., Marx, A., Mandelkow, E.-M., and Mandelkow, E. (2006) Structure 14, 173-183). It showed that the ubiquitin-associated domain (UBA) domain has an unusual fold and binds to the N-terminal lobe of the catalytic domain. This is at variance with a previous low resolution structure derived from small angle solution scattering (Jaleel, M., Villa, F., Deak, M., Toth, R., Prescott, A. R., Van Aalten, D. M., and Alessi, D. R. (2006) Biochem. J. 394, 545-555), which predicts binding of the UBA domain to the larger, C-terminal lobe. Here we report the crystal structure of the catalytic and UBA domain of another isoform, MARK1. Although the crystal packing of the two isoforms are unrelated, the overall conformations of the molecules are similar. Notably, the UBA domain has the same unusual conformation as in MARK2, and it binds at the same site. Remarkable differences occur in the catalytic domain at helix C, the catalytic loop, and the activation segment.

Amino Acid Sequence↗

Ligand-dependent structural variations in Escherichia coli F1 ATPase revealed by cryoelectron microscopy.

The Escherichia coli F1 ATPase, ECF1, has been examined by cryoelectron microscopy after reaction with Fab' fragments generated from monoclonal antibodies to the alpha and epsilon subunits. The enzyme-antibody complexes appeared triangular due to the superposition of three anti-alpha Fab' fragments on alternating densities of the hexagonally arranged alpha and beta subunits. The Fab' to the epsilon subunit superimposed on a beta subunit. A density was observed near the center of the structure in the internal cavity. The position of this central density with respect to peripheral sites was not fixed. Sorting of images of ECF1 labeled with the combination of three anti-alpha Fab' fragments plus an Fab' directed to the epsilon subunit gave three classes in each of which the central density was closest to a different beta subunit. The distribution of the central density among the three classes was measured for different ligand-binding conditions. When ATP was present in catalytic sites under conditions where there was no enzyme turnover (i.e., without Mg2+ present), there were approximately equal numbers of images in each of three classes. When ATP and Mg2+ were added and ATP hydrolysis was allowed to proceed, almost two-thirds of the images were in the class in which the central density was closest to the beta subunit superimposed by the epsilon subunit. We conclude that domains within the ECF1 structure, either the central mass or a domain including the epsilon subunit, move in the enzyme in response to ligand binding. We suggest that this movement is involved in coupling catalytic sites to the proton channel in the F0 part of the ATP synthase.

Adenosine Diphosphate↗

[Morphological and structural variations of the human inguinal region (author's transl)].

In the inguinal region, numerous muscular and fibrous alterations are described. They are related to the unconstant position of the pubic tubercle in relation io the interspinous diameter (linea bi-spinalis). The pubic tubercle can be observed in two different locations: either high or low. The high location is characterized by the presence of the pubic tubercle at a distance of 5 to 7.5 cm below the interspinous diameter. It must be considered as normal and is found in 65% of the subjects. In the low locations, the distance between spinous tubercle and interspinous diameter reaches 7,5 to 12 cm. It is an important abnormality which interests 35% of the subjects. The lower the pubic tubercle are located, the more often morphological alterations are to be found in the following structures: obliquus externus, obliquus internus, transversus and cremaster muscles as well as fascia transversalis. Nevertheless, the pyramidalis muscle as well as the inguinal ligamentary formation, Hesselbach's interfoveolar ligament and Thompson's iliopubic tract do not follow that rule, since the important morphological variations of these deep fibrous components can never be related to the distance between pubic tubercle and interspinous diameter. The functional signification of the inguinal region and especially of the inguinal canal is modified by those ostelogical, muscular and ligamentary variations.

Humans↗

Structural variations across the lanthanide series of macrocyclic DOTA complexes: insights into the design of contrast agents for magnetic resonance imaging.

It was early shown that the macrocyclic Ln(DOTA) complexes (DOTA = 1,4,7,10-tetra-azacyclododecane-N,N',N' ',N' "-tetraacetic acid) exists in solution as a mixture of two enantiomeric pairs of diastereoisomers differing in the ligand conformation, namely, square antiprismatic (SA) and twisted square antiprismatic (TSA) geometries, respectively. Later, extensive (1)H NMR investigations suggested that a coordination change may be superimposed on this conformational equilibrium involving two additional structures in which the metal ion possesses a coordination number of eight (CN 8). It was predicted that these two species, lacking the apical coordinated water molecule, would maintain the SA and TSA coordination geometries, and therefore, they have been labeled as SA' and TSA', respectively. In this work we report the X-ray solid-state crystal structure determination of six Ln(DOTA) complexes representative of all four coordination geometry typologies deduced from NMR solution studies. A distinctive structural feature that discriminates SA (and SA') and TSA (and TSA') structures is represented by the twist angle between the two square planes of the antiprism, the basal four nitrogen, and the apical four oxygen planes. [Ce(DOTA)(H(2)O)](-) displays a TSA structural typology with a twist angle of 25 degrees and a Ce-O(water) distance of 2.59 A. The SA-type structure has been found in the case of complexes with Pr(III), Nd(III), and Dy(III), where the twist angle is 39, 39, and 38 degrees, respectively, and the metal-water oxygen distance varies significantly (Pr-O(w) 2.529 A; Nd-O(w) 2.508 A; and Dy-O(w) 2.474 A). [Tm(DOTA)](-) displays a TSA'-type structure with a twist angle of 24 degrees. As compared with the TSA structure of the corresponding Ce(III) complex, the Tm(III) complex shows an overall marked shrinkage of all metal-nitrogen and metal-oxygen distances (ca. 0.2 A), which reflects the contraction of the metal ionic radius across the series but also the effect associated with the decrease of the CN from 9 to 8. In [Sc(DOTA)](-), the even smaller ionic radius of Sc(III) shifts the geometry of the coordination cage to the more compact SA' typology with a twist angle of 41 degrees, a value very similar to that found in the SA structures of lanthanide(III) ions with CN 9. Finally, an investigation was made into the hydration spheres of the complexes with SA and TSA geometries to account for the experimental evidence of a markedly different rate of water exchange for the two isomeric structures. This is of fundamental importance to the understanding of the corresponding Gd(III) complexes as MRI contrast agents.

Journal Article↗