The heterodimeric ligand-binding region of the Bovicola ovis ecdysone receptor has been crystallized either in the presence of an ecdysteroid or a synthetic methylene lactam insecticide. Two X-ray crystallographic structures, determined at 2.7 Å resolution, show that the ligand-binding domains of both subunits of this receptor, like those of other nuclear receptors, can display significant conformational flexibility. Thermal melt experiments show that while ponasterone A stabilizes the higher order structure of the heterodimer in solution, the methylene lactam destabilizes it. The conformations of the EcR and USP subunits observed in the structure crystallized in the presence of the methylene lactam have not been seen previously in any ecdysone receptor structure and represent a new level of conformational flexibility for these important receptors. Interestingly, the new USP conformation presents an open, unoccupied ligand-binding pocket.
The binding of ecdysteroids and the bisacylhydrazine insecticide, tebufenozide, to recombinant ecdysone receptor ligand-binding domains from pest insects points to conserved and variable features of the receptor's ligand-binding pocket. Fluorophores conjugated to the terminus of the ecdysteroid alkyl chain have surprisingly little effect on receptor binding, permitting the development of a fluorescence polarization chemical library screen that has led to the discovery of a new class of ecdysone receptor ligands, the methylene lactams. X-ray structures of ecdysone receptor ligand-binding domains have allowed identification of the conserved and variable features within the binding pocket. The structures offer explanations for the lepidopteran selectivity of the bisacylhydrazines, the effect of amino acid replacements on the binding of ecdysteroids and other chemistries, and the preference of a phytophagous pentatomomorphan for makisterone A; indeed, they speak to the control spectra of future ecdysone receptor-targeting insecticides. Possible ligands for nematode ecdysone receptor orthologs are also considered.
Nuclear hormone receptors, such as the ecdysone receptor, often display a large amount of induced fit to ligands. The size and shape of the binding pocket in the EcR subunit changes markedly on ligand binding, making modelling methods such as docking extremely challenging. It is, however, possible to generate excellent 3D QSAR models for a given type of ligand, suggesting that the receptor adopts a relatively restricted number of binding site configurations or 'attractors'. We describe the synthesis, in vitro binding and selected in vivo toxicity data for gamma-methylene gamma-lactams, a new class of high-affinity ligands for ecdysone receptors from Bovicola ovis (Phthiraptera) and Lucilia cuprina (Diptera). The results of a 3D QSAR study of the binding of methylene lactams to recombinant ecdysone receptor protein suggest that this class of ligands is indeed recognised by a single conformation of the EcR binding pocket.
Clinical AnatomyVolume 23, Issue 6 p. 737-738 Letter to the Editor Reply: General considerations regarding the thin slice plastination technique Matthew Pollard, Matthew Pollard Department of Anatomy and Structural Biology, Otago School of Medical Sciences, University of Otago, Dunedin, New ZealandSearch for more papers by this authorShane Soal, Shane Soal Department of Anatomy and Structural Biology, Otago School of Medical Sciences, University of Otago, Dunedin, New ZealandSearch for more papers by this authorMark D. Stringer, Corresponding Author Mark D. Stringer [email protected] Department of Anatomy and Structural Biology, Otago School of Medical Sciences, University of Otago, Dunedin, New ZealandDepartment of Anatomy and Structural Biology, Otago School of Medical Sciences, University of Otago, P.O. Box 913, Dunedin 9054, New ZealandSearch for more papers by this author Matthew Pollard, Matthew Pollard Department of Anatomy and Structural Biology, Otago School of Medical Sciences, University of Otago, Dunedin, New ZealandSearch for more papers by this authorShane Soal, Shane Soal Department of Anatomy and Structural Biology, Otago School of Medical Sciences, University of Otago, Dunedin, New ZealandSearch for more papers by this authorMark D. Stringer, Corresponding Author Mark D. Stringer [email protected] Department of Anatomy and Structural Biology, Otago School of Medical Sciences, University of Otago, Dunedin, New ZealandDepartment of Anatomy and Structural Biology, Otago School of Medical Sciences, University of Otago, P.O. Box 913, Dunedin 9054, New ZealandSearch for more papers by this author First published: 20 August 2010 https://doi.org/10.1002/ca.21012Read the full textAboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinkedInRedditWechat No abstract is available for this article. Volume23, Issue6September 2010Pages 737-738 RelatedInformation
A pregnant mouse model was used to compare the effect of IgG, administered E13-E18, from mothers of children with autistic disorder (MCAD), to controls (simple- and IgG-) on behavioral testing in offspring. Mice, exposed in-utero to MCAD-IgG, as adolescents, were more active during the first ten minutes of central field novelty testing and, as adults, displayed anxiety-like behavior on a component of the elevated plus maze and had a greater magnitude of startle following acoustic stimulation. On a social interaction paradigm, adult mice had alterations of sociability. Pilot studies of immune markers in MCAD IgG-exposed embryonic brains suggest evidence of cytokine and glial activation. These studies demonstrate that the transplacental passage of IgG from MCAD is capable of inducing long-term behavioral consequences.
HYPOTHESIS: We hypothesized that the parameters of provocative discography including disc opening pressure, pressure required to produce pain, pain intensity, and the presence or absence of a painful border disc could be used to predict clinical outcome after lumbar interbody fusion.
Glutamine is taken up into the rat hepatoma cell line H4-IIE-C3 by a Na+-dependent transport system which is specific for glutamine, alanine, serine, cysteine and asparagine and does not tolerate substitution of Na+ by Li+. Glutamine transport was relatively weakly inhibited by a 50-fold excess of leucine and was not inhibited by phenylalanine or N -methyl aminoisobutyrate. These general properties are characteristic of the recently identified ASCT/B0 family of transporters. Using a reverse transcriptase PCR-based homology cloning approach, we have characterized a cDNA for a novel member of this transporter family (H4-ASCT2) from H4-IIE-C3 cells. The cDNA encodes a 551-amino acid protein which exhibits similarities of between 75 and 85% with ASCT/B0 transporters previously cloned from other sources. When expressed in Xenopus oocytes, this transporter catalyses Na+-dependent glutamine uptake with characteristics very similar to those of glutamine uptake into the H4-IIE-C3 cells. This newly characterized transporter possesses a number of amino acid sequence differences from ASCT2 clones recently isolated from rat astroglial cells and from normal rat liver. In particular, the loop region between transmembrane helices 3 and 4 from H4-ASCT2 shares less than 60% sequence similarity with ASCT2 from rat liver; furthermore, there are some 25 single amino acid substitutions elsewhere in the H4-ASCT2 sequence compared with that from rat liver. Thus enhanced glutamine uptake in rat hepatoma cells is mediated by the expression of a novel ASCT/B0 transporter isoform rather than by increased expression of the ASCT2 mRNA found in normal rat liver.
Na+-dependent neutral amino acid transport into the bovine renal epithelial cell line NBL-1 is catalysed by a broad-specificity transporter originally termed System B0. This transporter is shown to differ in specificity from the B0 transporter cloned from JAR cells [J. Biol. Chem. 271 (1996) 18657] in that it interacts much more strongly with phenylalanine. Using probes designed to conserved transmembrane regions of the ASC/B0 transporter family we have isolated a cDNA encoding the NBL-1 cell System B0 transporter. When expressed in Xenopus oocytes the clone catalysed Na+-dependent alanine uptake which was inhibited by glutamine, leucine and phenylalanine. However, the clone did not catalyse Na+-dependent phenylalanine transport, again as in NBL-1 cells. The clone encoded a protein of 539 amino acids; the predicted transmembrane domains were almost identical in sequence to those of the other members of the B0/ASC transporter family. Comparison of the sequences of NBL-1 and JAR cell transporters showed some differences near the N-terminus, C-terminus and in the loop between helices 3 and 4. The NBL-1 B0 transporter is not the same as the renal brush border membrane transporter since it does not transport phenylalanine. Differences in specificity in this protein family arise from relatively small differences in amino acid sequence.
The rate of uptake of aspartate into the rat hepatoma cell line H4-II-E-C3 is very much higher than that exhibited by normal rat hepatocytes. Using an RT-PCR-based strategy, a glutamate transporter resembling mouse liver GLT-1A has been cloned from H4-II-E-C3 cells. Northern blotting confirmed that relatively high levels of mRNA for GLT-1A are expressed in hepatoma cells compared with negligible levels in rat hepatocytes. To our knowledge, this is the first report of the cloning of a high-affinity glutamate transporter from a transformed cell line and also the first demonstration of functional expression of GLT-1 outside the central nervous system.