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Refined structures of the ligand-binding domain of the aspartate receptor from Salmonella typhimurium.

The aspartate receptor is a transmembrane-signalling protein that mediates chemotaxis behaviour in bacteria. Aspartate receptors in Salmonella typhimurium and Escherichia coli exist as dimers of two subunits in the presence as well as in the absence of aspartate. We have previously reported the three-dimensional structures of the external ligand-binding domain of the S. typhimurium aspartate receptor with and without bound aspartate. The external or periplasmic region of the aspartate receptor is a dimer of four-alpha-helical bundle subunits; a single aspartate molecule binds to one of two sites residing at the subunit interface, increasing the affinity of the subunits for one another. Here we report the results of a detailed analysis of the aspartate receptor ligand-binding domain structure (residues 25 to 188). The dimer interface between the twofold related subunits consists primarily of contacts mediated by the side-chains of the N-terminal helix of each four-alpha-helical bundle subunit. The N-terminal helices pack approximately 20 degrees from parallel as an approximate coiled-coil super-secondary structure. We have refined aspartate receptor ligand-binding domain structures in the presence and in the absence of a bound aromatic compound, 1,10-phenanthroline, to 2.2 A and 2.3 A resolution, respectively, as well as crystal structures in the presence of specifically bound Au(I), Hg(II) and Pt(IV) complex ions at 2.4 A, 3.0 A and 3.3 A resolution, respectively. The possible biological relevance of the aromatic ligand-binding site and the metal ion-binding sites is discussed. The dimer of four-alpha-helical bundle subunits composing the periplasmic region of the S. typhimurium aspartate receptor provides a basis for understanding the results of mutational analyses performed on related chemotaxis transmembrane receptors. The crystal structure analysis provides an explanation for the way in which mutations in the E. coli aspartate receptor affect its binding to the periplasmic maltose-binding protein and how mutations in the more distantly related E. coli Trg chemotaxis receptor affect its binding to the periplasmic ribose and glucose-galactose binding proteins.

Aspartic Acid↗

Solution structural studies and low-resolution model of the Schizosaccharomyces pombe sap1 protein.

Sap1 is a DNA-binding protein involved in controlling the mating type switch in fission yeast Schizosaccharomyces pombe. In the absence of any significant sequence similarity with any structurally known protein, a variety of biophysical techniques has been used to probe the solution low-resolution structure of the sap1 protein. First, sap1 is demonstrated to be an unusually elongated dimer in solution by measuring the translational diffusion coefficient with two independent techniques: dynamic light-scattering and ultracentrifugation. Second, sequence analysis revealed the existence of a long coiled-coil region, which is responsible for dimerization. The length of the predicted coiled-coil matches estimates drawn from the hydrodynamic experimental behaviour of the molecule. In addition, the same measurements done on a shorter construct with a coiled-coil region shortened by roughly one-half confirmed the localization of the long coiled-coil region. A crude T-shape model incorporating all these information was built. Third, small-angle X-ray scattering (SAXS) of the free molecule provided additional evidence for the model. In particular, the P(r) curve strikingly demonstrates the existence of long intramolecular distances. Using a novel 3D reconstruction algorithm, a low resolution 3D model of the protein has been independently constructed that matches the SAXS experimental data. It also fits the translation diffusion coefficients measurements and agrees with the first T-shaped model. This low-resolution model has clearly biologically relevant new functional implications, suggesting that sap1 is a bifunctional protein, with the two active sites being separated by as much as 120 A; a tetrapeptide repeated four times at the C terminus of the molecule is postulated to be of utmost functional importance.

Algorithms↗

Cryo-electron tomography of neurospora mitochondria.

Cryo-electron tomography was used to study the structural organization of whole frozen-hydrated mitochondria from Neurospora crassa. Unlike mitochondria from many other species and tissues, in this case the cristae form a three-dimensional network of interconnected lamellae. Basically, the three-dimensional structure of ice-embedded mitochondria from this species is consistent with previous descriptions of mitochondria prepared by chemical fixation and resin embedding. Nonetheless, ice-embedded mitochondria display some important differences: the outer surface of the mitochondria was found to be rather smooth, the intermembrane space was constant in width, and distinct contact sites between the membranes were clearly revealed. Furthermore ATP synthase particles on the outer surface of an "inside-out vesicle" were visible in 3-D reconstructions. Thus, cryo-electron tomography can provide detailed insights into these organelles with minimal perturbations of the physiological state. This indicates that it is a realistic goal to achieve "molecular resolution" with rather large biological specimens in the near future, ultimately allowing the identification and localization of macromolecules in their cellular context.

Cryoelectron Microscopy↗

Alignment error envelopes for single particle analysis.

To determine the structure of a biological particle to high resolution by electron microscopy, image averaging is required to combine information from different views and to increase the signal-to-noise ratio. Starting from the number of noiseless views necessary to resolve features of a given size, four general factors are considered that increase the number of images actually needed: (1) the physics of electron scattering introduces shot noise, (2) thermal motion and particle inhomogeneity cause the scattered electrons to describe a mixture of structures, (3) the microscope system fails to usefully record all the information carried by the scattered electrons, and (4) image misalignment leads to information loss through incoherent averaging. The compound effect of factors 2-4 is approximated by the product of envelope functions. The problem of incoherent image averaging is developed in detail through derivation of five envelope functions that account for small errors in 11 "alignment" parameters describing particle location, orientation, defocus, magnification, and beam tilt. The analysis provides target error tolerances for single particle analysis to near-atomic (3.5 A) resolution, and this prospect is shown to depend critically on image quality, defocus determination, and microscope alignment.

Cryoelectron Microscopy↗

High resolution detection of uncoated metaphase chromosomes by means of field emission scanning electron microscopy.

HeLa metaphase chromosomes were examined by means of "in lens" field emission scanning electron microscopy, which permits high resolution detection of uncoated biological samples. By using uncoated chromosomes as a model for comparison we report evidence of how traditional scanning electron microscopy techniques such as metal coating and conductive methods can generate errors in chromosome structure evaluation, since both give rise to morphological artifacts. By comparing the morphology of uncoated chromosomes obtained by two different isolation procedures, such as that utilized in standard cytogenetics and the polyamine method, we have drawn the following conclusions: (a) the standard cytogenetic method gives rise to a chromosome structure consisting of a flattened network of 10 nm fibers, in which higher order chromatin organization is absent. (b) Chromosomes obtained by the polyamine method show both three-dimensional profile and higher level folding of chromatin fibers, supporting the loop chromosome organization previously suggested by scanning electron microscopy observation of hexylene glycol isolated chromosomes.

Chromosomes, Human↗

Pulmonary inflammatory responses during viral pneumonia and secondary bacterial infection.

Pulmonary bactericidal mechanisms are reduced during viral pneumonia. It has been proposed that secondary bacterial pneumonia occurs because the host's ability to mount an inflammatory response is suppressed. These studies examine the pathobiology of parainfluenza 1 virus and viral-associated staphylococcal pneumonia in a murine model. The sequence of leukocyte and fluid protein changes were studied in the lung and blood. An influx of polymorphonuclear leukocytes into the lungs occurred early in the viral infection, and coincided with lung macrophages aggregation. Maximal increases in pulmonary leukocytes occurred during the period associated with maximum suppression of lung bactericidal mechanisms (days 7-9). During this period, the host was capable of mounting an additional inflammatory response to staphyloccal challenges. Finally, viral pneumonia resulted in a prolonged elevation in the numbers of pulmonary macrophages, lymphocytes, and granulocytes. Thus, changes in lung biology persisted well after resolution of the initiating infections.

Animals↗

Clinical and cytofunctional classification of pituitary adenomas: proposal of a new classification.

Recent methodological advances in immunohistochemistry, ultrastructural techniques, hormonal assays, resolution imaging and molecular biology techniques have provided new insights into the pathology, function and cytogenesis of pituitary adenomas. Pituitary adenomas have been classified historically on the basis of tinctorial affinities, followed by the basis of ultrastructure and immunohistochemistry. The current development of technologies necessitate the new classification of pituitary adenomas which integrates these numerous parameters as well as the clinical manifestations. For this purpose, we suggest a new clinico-cytofunctional classification of pituitary adenomas, which is based on these clinical manifestations and integrates the information on biology, imaging function and ultrastructure. This classification which corresponds to current advances will not only provide pertinent clinical data but facilitate better understanding of the biology and nature of these complexed lesions.

Adenoma↗

Three-dimensional reconstruction from serial sections. IV. The reassembly problem.

In many fields of biology and medicine there is a pressing need for quantitative descriptions of biological structures at a resolution of micrometers. This need is currently met best by three-dimensional reconstruction from serial sections. The preliminary steps in three-dimensional reconstruction include fixation, embedding in plastic, introduction of fiducials, serial sectioning, and staining. At the light microscope level, with which we are chiefly concerned, one will usually want to do photomicrography (or videomicrography) of adjacent fields within individual tissue sections. The resultant images are projected onto a digitizer pad and the contours of interest manually digitized. From the digitized coordinates generated thereby, one wishes to generate a likeness of the original object, using computer graphic displays, and to then do interactive morphometrics. The problem of combining the digitized coordinates so as to produce a numerically faithful representation of the original object (i.e., the reassembly problem) is, as a practical matter, nontrivial. A technical description of the reassembly problem is presented. The main factors entering into a solution of the problem are discussed and a mathematical statement of the solution is given.

Anatomy↗

[Comparison of algorithms for the resolution of a secular equation in the vibrational analysis of biological molecules].

A computer analysis of several solution methods for secular equations leads to a determination of their optimum conditions. The results contribute to the application of a new preliminary method of frequency assignment to the vibrational study of the heavy atoms coordination sphere in complex biological structures, such as metalporphyrins and adenosine triphosphate.

Adenine Nucleotides↗

Time-resolved angular dependent measurement of triggered light scattering changes in biological suspensions.

We describe a photometer for time-resolved measurements of small changes in light scattering suited for suspensions of biological material. The time resolution is 35 mus, the amplitude resolution for bovine rod outer segments is typically delta I/I = 5 X 10(-4) at a scattering angle of = 20 degrees. The use of the apparatus is demonstrated by recording the near infrared scattering of bovine rod outer segments after excitation with flashes of green light. Semiconductor detector arrays are arranged centrosymmetrically around a hemispherical cuvette. The optical characteristics of a hemispherical cuvette and the resulting geometry of cuvette and detection are discussed. Calculations of optimal signal transfer and noise of the detectors led to the following arrangement for each scattering angle: pairs of parallel connected photodiodes are fed into several current-to-voltage converters, whose output voltages are summed up by a summing amplifier. For the test of the device so-called N signals of fresh and liquid N2-frozen and thawed ROS samples were measured at four scattering angles simultaneously. A strong angular dependence (difference scattering curve) of the relative light scattering change is seen for fresh ROS which is transformed into a flat curve by freezing and thawing. It is concluded that the competence of the fresh sample to extend the light-induced local events - presumably rhodopsin conformational changes - into the gross-structural range is terminated by freezing.

Animals↗

Scanning tunneling and transmission electron microscopy on identical areas of biological specimens.

A methodology for tip and specimen-support manufacturing is described which allows for scanning tunneling microscopy (STM) and transmission electron microscopy (TEM) on identical areas of biological specimens, at comparable resolution. Topographs and dI/ds-maps were used to investigate tip-specimen interaction on native air-dried phage T4 polyheads where individual capsomeres and structural alterations upon repetitive scans have been observed at a tunnel current of 0.5 pA.

Microscopy, Electron, Scanning↗

Continuous monitoring of transport by fluorescence on cells and vesicles.

Fluorescence techniques are gaining wider applicability in the field of membrane transport due to their high temporal resolution, modest demand for biological material and the kinetic information which is made available by fluorescence tracings. The development of novel fluorescent substrates for particular transport systems and of novel fluorescent indicators for permeant ions, have opened the way for studying transport kinetics and regulation of transport in a variety of cellular and vesicular systems. The various methods of continuous monitoring of transport by fluorescence (CMTF) which are presently in use, are reviewed with emphasis on both analytical and applicative properties.

Biological Transport↗

Photo-patterning of sensor surfaces with biomolecular structures: characterisation using AFM and fluorescence microscopy.

The miniaturisation of biosensors has resulted in the need to develop techniques for the high resolution patterning of different biological molecules onto surfaces. In this paper, we describe a procedure for the selective deposition of antibodies using biological self-assembly with photo-activation of a bound ligand, and we will detail methods which may subsequently be used to characterise the resultant biomolecular constructs.

Antibodies, Monoclonal↗

Crystal structure of amine oxidase from bovine serum.

Copper-containing amine oxidase extracted from bovine serum (BSAO) was crystallized and its three-dimensional structure at 2.37A resolution is described. The biological unit of BSAO is a homodimer, formed by two monomers related to each other by a non-crystallographic 2-fold axis. Each monomer is composed of three domains, similar to those of other amine oxidases from lower species. The two monomers are structurally equivalent, despite some minor differences at the two active sites. A large funnel allows access of substrates to the active-site; another cavity, accessible to the solvent, is also present between the two monomers; this second cavity could allow the entrance of molecular oxygen necessary for the oxidative reaction. Some sugar residues, bound to Asn, were still present and visible in the electron density map, in spite of the exhaustive deglycosylation necessary to grow the crystals. The comparison of the BSAO structure with those of other resolved AO structures shows strong dissimilarities in the architecture and charge distribution of the cavities leading to the active-site, possibly explaining the differences in substrate specificity.

Amine Oxidase (Copper-Containing)↗

Reduction of RF-induced sample heating with a scroll coil resonator structure for solid-state NMR probes.

Heating due to high power 1H decoupling limits the experimental lifetime of protein samples for solid-state NMR (SSNMR). Sample deterioration can be minimized by lowering the experimental salt concentration, temperature or decoupling fields; however, these approaches may compromise biological relevance and/or spectroscopic resolution and sensitivity. The desire to apply sophisticated multiple pulse experiments to proteins therefore motivates the development of probes that utilize the RF power more efficiently to generate a high ratio of magnetic to electric field in the sample. Here a novel scroll coil resonator structure is presented and compared to a traditional solenoid. The scroll coil is demonstrated to be more tolerant of high sample salt concentrations and cause less RF-induced sample heating. With it, the viable experimental lifetime of a microcrystalline ubiquitin sample has been extended by more than an order of magnitude. The higher B1 homogeneity and permissible decoupling fields enhance polarization transfer efficiency in 15N-13C correlation experiments employed for protein chemical shift assignments and structure determination.

Carbon Isotopes↗

The advantages and limitations of protein crystal structures.

Crystal structure analysis using X-ray diffraction is, in many cases, the most advanced method available for obtaining high-resolution structural information about biological macromolecules. The ways in which X-ray diffraction data are collected and refined have a strong impact on the final quality of the structural models and the type and magnitude of their associated errors. It is becoming increasingly necessary for both structural and non-structural biologists to judge the reliability and accuracy of these models, which are being used in many aspects of research, including structure-based drug design, and to address detailed functional biological questions. In this article, we discuss how errors in these models arise and how they can be evaluated, and we argue for even more stringent validation checks and documentation of structures before deposition with the Protein Data Bank.

Crystallization↗

CTF determination and correction in electron cryotomography.

Electron cryotomography (cryoET) has the potential to elucidate the structure of complex biological specimens at molecular resolution but technical and computational improvements are still needed. This work addresses the determination and correction of the contrast transfer function (CTF) of the electron microscope in cryoET. Our approach to CTF detection and defocus determination depends on strip-based periodogram averaging, extended throughout the tilt series to overcome the low contrast conditions found in cryoET. A method for CTF correction that deals with the defocus gradient in images of tilted specimens is also proposed. These approaches to CTF determination and correction have been applied here to several examples of cryoET of pleomorphic specimens and of single particles. CTF correction is essential for improving the resolution, particularly in those studies that combine cryoET with single particle averaging techniques.

Cryoelectron Microscopy↗

Immuno-atomic force microscopy of purple membrane.

The atomic force microscope is a useful tool for imaging native biological structures at high resolution. In analogy to conventional immunolabeling techniques, we have used antibodies directed against the C-terminus of bacteriorhodopsin to distinguish the cytoplasmic and extracellular surface of purple membrane while imaging in buffer solution. At forces > or = 0.8 nN the antibodies were removed by the scanning stylus and the molecular topography of the cytoplasmic purple membrane surface was revealed. When the stylus was retracted, the scanned membrane area was relabeled with antibodies within 10 min. The extracellular surface of purple membrane was imaged at 0.7 nm resolution, exhibiting a major and a minor protrusion per bacteriorhodopsin monomer. As confirmed by immuno-dot blot analysis and sodium dodecyl sulfate-gel electrophoresis, labeling of the purple membrane was not observed if the C-terminus of bacteriorhodopsin was cleaved off by papain.

Amino Acid Sequence↗