The major allergen Phlp 5b from timothy grass pollen induces allergic rhinitis and bronchial asthma in millions of allergic patients worldwide. As an important step towards understanding the interactions between the pollen protein and components of the human immune system, the structure of the C-terminal key domain of Phlp 5b has been determined at 2.0 A resolution and refined to an R value of 19.7%. This is the first known allergen composed entirely of alpha-helices. The protein forms a dimer stabilized by one intermolecular disulfide bridge. Sequence homology suggests that at least all group V and group VI grass-pollen allergens belong to this new class of 'four-helix-bundle allergens'.
Crystals of proteinase K in complex with synthetic substrate analogues have been grown under microgravity on the US space shuttle missions STS-91 and STS-95 using the vapor diffusion apparatus (c-VDA) supplied by the Center for Macromolecular Crystallography at the University of Alabama at Birmingham. The crystals obtained under microgravity are compared with those grown simultanously on ground in identical c-VDA reactors and in conventional hanging-drop set-ups. The diffraction quality of space- and ground-grown crystals has been assessed by collecting complete data sets with a conventional X-ray source and with synchrotron radiation. Crystals grown in microgravity are clearly superior to those grown in the identical hardware on earth in terms of crystal habit and diffraction power. In comparison to best terrestrial crystals obtained in conventional hanging-drop set-ups the differences in crystal size and diffraction quality are less, but still confirm the benefit of microgravity for the crystallization of proteinase K–substrate analogue complexes.
The current study was performed to investigate the intracellular fate of triglyceride-rich lipoproteins. Triglyceride-rich lipoproteins are responsible for the delivery of lipids to various tissues, however, their intracellular pathway has not yet been elucidated. Here radiolabeled triglyceride-rich lipoproteins, associated with lipoprotein lipase, were used for the quantitative evaluation of the intracellular metabolism. Pulse chase experiments showed that after 90 minutes approximately 60% of the labeled protein, mainly apoproteins E and C, was released intact into the medium, where it re-associates with lipoproteins. Apoprotein B, in contrast, was degraded, following the same pathway as the apoprotein B from low density lipoproteins. In kinetic experiments uptake and intracellular fate of triglyceride-rich lipoproteins was compared to that of transferrin and low density lipoproteins. These experiments revealed that apoproteins were retained inside the cell much longer than transferrin, and unlike low density lipoproteins were not degraded. Using immunofluorescence it was shown that apoprotein E and lipoprotein lipase follow a distinct route from the sorting compartment to the surface, which is clearly distinguishable from the perinuclear transferrin recycling compartment. In contrast, the fluorescence labeled lipids were delivered to lysosomal compartments. The data presented here show that surface proteins of triglyceride-rich lipoproteins, such as apoproteins E and C and lipoprotein lipase follow a recycling pathway, whereas lipids and high molecular mass core proteins are degraded.
Crystallization of the hydrophilic ectodomain of the epidermal growth factor (EGF) receptor has been accomplished in the presence of the ligand EGF. Two different crystal forms have been obtained, one of which was suitable for X-ray analysis. The space group of this form has been assigned to P21212 with unit-cell dimensions of a = 207.4, b = 113.3 and c = 120.4 A. A native data set has been recorded and a heavy-atom search is currently under way. Diffraction from these crystals, however, is limited to low resolution and extensive trials to improve crystal quality further have all failed. To analyse the molecular shape and aggregation of the receptor protein in solution, small-angle X-ray diffraction and dynamic light-scattering techniques have been applied. Synchrotron radiation in combination with cryo-techniques is essential for data collection because of the high solvent content and radiation sensitivity.
Vipoxin is the main toxic component in the venom of the Bulgarian snake Vipera ammodytes meridionalis, the most toxic snake in Europe. Vipoxin is a complex between a toxic phospholipase A2 (PLA2) and a non-toxic protein inhibitor. The structure is of genetic interest due to the high degree of sequence homology (62%) between the two functionally different components. The structure shows that the formation of the complex in vipoxin is significantly different to that seen in many known structures of phospholipases and contradicts the assumptions made in earlier studies. The modulation of PLA2 activity is of great pharmacological interest, and the present structure will be a model for structure-based drug design.
We describe in vitro tyrosine phosphorylation of the C-terminal 334 amino acids of ras-GTPase-activating protein (ras-GAP)1 that contains the activity domain for ras interaction. To date, there have been no other phosphorylation sites determined than the reported in N-terminal domain of ras-GAP Tyr-460, which is considered to be the major phosphorylation site of ras-GAP. In our assays some differences of the kinetic parameters were observed when the reaction was catalyzed by EGF-R compared to p60c-src. Enzyme specific regulation of activity is associated with autophosphorylation which leads to reduced (in case of EGF-R) or increased (in case of p60c-src) phosphorylation of the C-terminal 334 amino acids of ras-GAP (GAP334). Because of the characteristics of these investigated reactions the phosphorylation of GAP334 seems to be-independent from the presence of SH2 or SH3 domains-triggered off by complex mechanisms different from those regulating the phosphorylation at Tyr-460.
ApoE and LpL are important in the metabolism of triglyceride rich lipoproteins, and defects in either or both may result in hyperlipidaemia. It has previously been shown that ApoE and LPL specifically enhance cellular catabolism of lipoproteins by various cell lines. The authors determine in this paper the effect of ApoE and LpL on chylomicron and LDL binding and uptake by human hepatocytes in primary culture. Separate addition of ApoE and LpL greatly enhanced binding and uptake of chylomicrons. Simultaneous addition of ApoE and LPL further increased chylomicron uptake in an additive way. For LDL a different situation was observed: neither ApoE nor LPL mediated a significant increase of lipoprotein uptake. The authors conclude that ApoE and LpL co-ordinately enhance binding and uptake of chylomicrons by primary human hepatocytes. The effect appears to be independent of LDL receptors and the co-ordinate effect of ApoE and LPL may be important for normal chylomicron catabolism.
Although biochemists working in the field of biological signal transduction have characterized cell surface receptors for numerous growth factors within the past ten years, none of the three-dimensional structures could be obtained for these important proteins which represent major components of the cells' growth control system. Now, the extracellular ligand binding domain of the EGF receptor was crystallized in the presence of EGF under microgravity on US Shuttle mission STS-47. In 8 out of 9 experiments prepared under different conditions crystal growth was observed. One of these spacegrown crystals showed higher diffraction quality than all crystals previously obtained in the laboratory. It allowed, for the first time, evaluation of the real space group by partial data collection.
To investigate the effects of gravity for the crystal growth of macromolecules, the effects of acceleration during re-entry and the influence of orbit-radiation in the X-ray range for already grown protein crystals the COSIMA hardware was re-configured. The system now fulfils all needs for a multi-approach crystallization experiment. The achieved crystallization results are equivalent to the best which can be obtained by crystallization techniques used in the laboratories. The modification of the hardware, in particular the newly designed crystallization vials, will be described in detail. In October 1991, COSIMA IV was performed on a Russian re-entry Photon capsule. 99 crystallization experiments were accomodated using three different protein crystallization techniques. Additionally, five already grown crystals were send to analyse the influence of the transport. Four radiation detectors were integrated to measure the radiation dose during the mission. A comparison of space- and ground-grown crystals will be included, which were not influenced by a malfunction of the satellite power supply.
A purified, soluble form of the epidermal growth factor receptor (sEGFR) was found, by isoelectric focusing in immobilized pH gradients, to consist of three major isoforms (with pi values 6.45, 6.71 and 6.96, respectively) and ca. a dozen minor components. This wild-type sEGFR, while producing crystals, has so far defied any attempt at decoding the structure, due to the very poor diffraction pattern. When the wild-type sEGFR was purified in a multicompartment electrolyzer with isoelectric Immobiline membranes, it yielded the three major isoforms as single-pi components, collected in three separate chambers of the recycling electrolyzer. The pi 6.71 and the pi 6.96 isoforms produced large crystals of apparent good quality. However, while the former produced a high-quality diffraction pattern, which may lead to decoding of the three-dimensional structure, the pi 6.96 produced crystals which did not diffract at all. It is concluded that, in the case of ''tough'' proteins (large size, heterogeneous glycosylation, high water content of crystals), purification to single-charge components might be an essential step for growing proper crystals. The unique advantage of purification via isoelectric membranes is that the protein is collected both isoelectric and isoionic, i.e. uncontaminated by soluble buffers (such as the carrier ampholytes used in conventional focusing).
Leukemia inhibitory factor (LIF) is a polyfunctional molecule with significant and diverse biological activities. LIF is a glycoprotein secreted by a number of different cell types in vitro. It is induced in fibroblasts, lymphocytes, monocytes and astrocytes by various inducers such as serum, TNF, interleukin-IP and EGF. Due to extensive and variable glycosylation the molecular weight can range from 38 to 67 kDA. The biological functions of LIF are mediated through a receptor and a signal transducer, gp130, which is also used by factors like interleukin-6 (IL-6), cilliary neurotropic factor (CNTF), and oncostatin M (OSM). Here, we report the crystallization of the non-glycosylated human-like LIF expressed in E. coli. The present crystals diffract to 2.0 A using synchrotron radiation. They belong to the monoclinic space group C2, and the cell dimensions are a = 61.5 A, b = 45.3 A, c = 77.7 A and beta = 112.3 degrees.
A protein composed of the external domain of the epidermal growth factor (EGF) receptor is secreted by A431 human tumor cells. The soluble receptor protein was isolated in bulk quantities from cell culture supernatants. It has an intact ligand binding site, exists in a 93-kDa monomeric form, and does not undergo oligomerization upon ligand binding; thus the receptor dimerization reported for the EGF holoreceptor appears not to be a function of its external domain. The unique system of a physiological soluble receptor was utilized for a crystallization study. Crystals were obtained but only in the presence of the ligand. They contained (in equimolar amounts) receptor as well as EGF. The crystals belong to the tetragonal space group P4(3)2(1)2 or P4(1)2(1)2 with unit cell dimensions a = b = 118 A, c = 202 A. The packing density parameter was 3.55 A3/dalton, indicating the asymmetric unit to consist of one receptor-ligand complex.
The low-density-lipoprotein (LDL) receptor is a cell-surface protein that plays an important part in the metabolism of cholesterol by mediating the uptake of LDL from plasma into cells. Although LDL particles bind to the LDL receptor through their apolipoprotein B (apo B) and apolipoprotein E (apo E) moieties, other apo E-containing particles, like chylomicron remnants, are not dependent on the LDL receptor for uptake into cells. Chylomicrons formed in the intestinal mucosa during the absorption of the products of digestion, are processed by the peripheral circulation by lipoprotein lipase, which catalyses the breakdown of triglycerides in chylomicrons to free fatty acids and glycerol. The resulting chylomicron remnants, which are cholesterol-rich lipoproteins, are subsequently taken up in the liver. A second distinct protein that binds to apo E-containing lipoproteins, but not to LDL, has been proposed to be the receptor mediating the clearance of chylomicron remnants from the plasma. This protein has a relative molecular mass (Mr) of 56,000 (56K). More recent studies have failed, however, to establish whether this protein is a cell-surface receptor. Here we describe crosslinking experiments in which apo E liposomes were found to bind specifically to the cell surface of hepG2 cells and to human liver membranes. The size and immunological cross-reactivity of the protein to which the liposomes bound was indistinguishable from that of the recently cloned and sequenced LDL-receptor-related protein, LRP. We therefore conclude that the LRP might function as an apo E receptor.