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631.
Primordial Germ Cell (PGC) migration in zebrafish is guided by SDF-1a. Binding of this chemokine to its receptor CXCR4b activates downstream signalling cascades leading to cell polarization and directed migration towards the attractant source. Despite the detailed information available concerning the role of SDF-1 in guiding the PGCs to their targets, little was known regarding the molecular mechanisms controlling the distribution of SDF-1a within the tissue. We have recently shown that the activity of a second SDF-1/CXCL12 receptor, CXCR7 is crucial for proper migration of PGCs. Although CXCR4 and CXCR7 are structurally related and serve as receptors for the same ligand, they appear to serve very different functions during PGC migration. Here we discuss a model according to which CXCR4b translates the polarized distribution of SDF-1 into directed PGC migration, while CXCR7 acts as a high-affinity decoy receptor and facilitates the migration of PGCs by shaping the distribution of the chemokine in the environment.Key words: cell migration, CXCR4, CXCR7, SDF-1, chemokine, chemotaxisChemokine-guided cell migration is central for many processes in normal development and homeostasis (e.g., embryogenesis) as well as in pathological conditions (e.g., inflammation). Zebrafish primordial germ cells (PGCs) serve as a useful model for studying chemokine-controlled cell migration in vivo as the migrating PGCs sense and respond to the dynamic distribution of the chemokine SDF-1a through its receptor CXCR4b.1,2Recent reports identified CXCR7 as a receptor for SDF-13,4 that controls processes such as cell adhesion, survival and tumor progression. A role for this receptor in regulating cell migration during development was demonstrated in the zebrafish lateral line.5,6 The zebrafish lateral line primordium migrates directionally on a stripe of uniform sdf-1a expression to deposit a set of sensory organs along the fish tail. While the authors raised the hypothesis that antagonistic interactions between CXCR4b and CXCR7 polarize the developing organ to allow its migration, the precise function of CXCR7 in this process remained unclear.To address this question in an in vivo context, we examined the role CXCR7 plays in zebrafish PGC migration.7 Our experiments revealed that knockdown of cxcr7 translation using morpholino antisense oligo nucleotides results in impaired polarity and aberrant migration of PGCs. Unlike cxcr4b, cxcr7 is not specifically expressed in the PGCs but is initially uniformly distributed throughout the embryo. Furthermore, in contrast to activity of CXCR4, CXCR7 function was found to be required in tissues surrounding the migrating cells rather than in the PGCs themselves.To examine the function of CXCR7 in somatic cells we determined the subcellular localization of the protein as compared with that of CXCR4b and SDF-1a. Interestingly, while CXCR4b is predominantly localized to the plasma membrane, CXCR7 is found primarily in intracellular structures. The fact that SDF-1α and CXCR7 colocalized in the cell and that SDF-1α was found in vesicles that contained the lysosomal marker LAMP-1 suggested that the prime role of CXCR7 is to bind and internalize SDF-1a thereby controlling the level of the diffusible chemokine in the extracellular space. Indeed, observing PGCs expressing CXCR4b on their membrane we detected strong receptor internalization when CXCR7 function was knocked down. The enhanced internalization, a typical response to high levels of SDF-1a8 could be reversed by concomitant removal of SDF-1.These findings provided an explanation for the CXCR7 knock-down phenotype as abnormally high levels of SDF-1a in the environment have been shown before to interfere with cell motility.1,2 Indeed, PGCs in CXCR7 knocked-down embryos displayed strong inhibition of motility manifested in short migration tracks—a phenotype that could be reversed by simultaneous removal of CXCR7 and SDF-1.The implication of the results presented above is that the sole function of CXCR7 in the context of PGC migration is ligand sequestration. Consistent with this idea, two typical signalling responses acting downstream of chemokine receptors namely, elevation of intracellular calcium levels and PI3K activation913 were not altered in cells knocked down for CXCR7. Thus, consistent with other reports,4,14 our results imply that CXCR7 signalling is not required for PGC migration.An important outstanding question concerns the molecular basis for the dramatic difference between the activity of CXCR4 and that of CXCR7. Defining domains and amino acids responsible for this difference would provide extensive information regarding chemokine receptor signalling and trafficking within the cell. Whereas random mutagenesis and generation of various CXCR4-CXCR7 chimeric molecules might provide an answer to this question, it is tempting to speculate that known protein motifs are responsible for the differences between the two receptors. For example, an obvious candidate region is that around its DRY motif,14 a motif within the second intracellular loop that is important for Gprotein coupling and signalling.15 Whereas uncoupling downstream signalling in the case of CXCR7 is an interesting research avenue, other non-mutually exclusive options should be examined (Fig. 1). For example, CXCR7 could possess domains that facilitate interaction with components that enhance internalization. Such an interaction could remove the receptor from the location where it normally interacts with the signalling machinery, while effectively internalizing SDF-1a.Open in a separate windowFigure 1Proposed model for differential functions of CXCR4b and CXCR7. (A) CXCR4b signalling in PGCs controls cell polarization and directional migration in response to SDF-1a binding (squares), through interaction with G-proteins and elevation of calcium levels. (B) Binding of SDF-1a by CXCR7 does not elicit signalling. Endocytosis of the lignad-bound CXCR7 leads to sequestration and degradation of SDF-1a in the somatic environment.Taken together, we show that proper PGC migration requires a mechanism to remove the guidance cue thereby allowing the formation of an informative chemotactic gradient. It would be very interesting to examine whether the paradigm demonstrated for the PGC migration model applies for other chemokine-guided events in development and disease.  相似文献   
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633.
The sizable symmetrical region, comprising 180 ribosomal RNA nucleotides, which has been identified in and around the peptidyl transferase center (PTC) in crystal structures of eubacterial and archaeal large ribosomal subunits, indicates its universality, confirms that the ribosome is a ribozyme and evokes the suggestion that the PTC evolved by gene fusion. The symmetrical region can act as a center that coordinates amino acid polymerization by transferring intra-ribosomal signals between remote functional locations, as it connects, directly or through its extensions, the PTC, the three tRNA sites, the tunnel entrance, and the regions hosting elongation factors. Significant deviations from the overall symmetry stabilize the entire region and can be correlated with the shaping and guiding of the motion of the tRNA 3'-end from the A- into the P-site. The linkage between the elaborate PTC architecture and the spatial arrangements of the tRNA 3'-ends revealed the rotatory mechanism that integrates peptide bond formation, translocation within the PTC and nascent protein entrance into the exit tunnel. The positional catalysis exerted by the ribosome places the reactants in stereochemistry close to the intermediate state and facilitates the catalytic contribution of the P-site tRNA 2'-hydroxyl.  相似文献   
634.
Immune modulation for prevention of type 1 diabetes mellitus   总被引:5,自引:0,他引:5  
Prevention of type 1 diabetes mellitus requires early intervention in the autoimmune process directed against beta cells of the pancreatic islets of Langerhans. This autoimmune inflammatory process is thought to be caused by the effect of Th1 cells and their secreted cytokines (e.g. interferon) and to be suppressed by Th2-secreted anti-inflammatory cytokines (e.g. IL-4, IL-10). Various methods aimed specifically at halting or modulating this response have been attempted. An alternative method is the re-induction of tolerance towards the putative self antigen that causes the disease. Proposed antigens such as insulin, glutamic acid decarboxilase (GAD) and the heat shock protein 60 (Hsp60)-derived peptide 277 have been used successfully in murine diabetes models and in initial clinical trials in early diabetes patients. Here, we review the results of these trials.  相似文献   
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636.
Mutations in the human cellular retinaldehyde binding protein (CRALBP) gene cause retinal pathology. To understand the molecular basis of impaired CRALBP function, we have characterized human recombinant CRALBP containing the disease causing mutations R233W or M225K. Protein structures were verified by amino acid analysis and mass spectrometry, retinoid binding properties were evaluated by UV-visible and fluorescence spectroscopy and substrate carrier functions were assayed for recombinant 11-cis-retinol dehydrogenase (rRDH5). The M225K mutant was less soluble than the R233W mutant and lacked retinoid binding capability and substrate carrier function. In contrast, the R233W mutant exhibited solubility comparable to wild type rCRALBP and bound stoichiometric amounts of 11-cis- and 9-cis-retinal with at least 2-fold higher affinity than wild type rCRALBP. Holo-R233W significantly decreased the apparent affinity of rRDH5 for 11-cis-retinoid relative to wild type rCRALBP. Analyses by heteronuclear single quantum correlation NMR demonstrated that the R233W protein exhibits a different conformation than wild type rCRALBP, including a different retinoid-binding pocket conformation. The R233W mutant also undergoes less extensive structural changes upon photoisomerization of bound ligand, suggesting a more constrained structure than that of the wild type protein. Overall, the results show that the M225K mutation abolishes and the R233W mutation tightens retinoid binding and both impair CRALBP function in the visual cycle as an 11-cis-retinol acceptor and as a substrate carrier.  相似文献   
637.
This study investigated the effects of radiation heat-load reduction by shading on the growth and development of citrus trees in a warm subtropical region. The experiment was conducted from mid-June until late October when daily maximal air temperature averaged 29.3 degrees C. Two-year-old de-fruited Murcott tangor (Citrus reticulata BlancoxCitrus sinensis (L.) Osb.) trees were grown under 30% or 60% shade tunnels, or 60% flat shade (providing midday shade only), using highly reflective aluminized nets. Non-shaded trees were used as the control. Shading reduced direct more than diffuse radiation. Daily radiation was reduced by 35% for the 30% Tunnel and 60% Flat treatments, and by 55% for the 60% Tunnel. Two days of intensive measurement showed that shading increased average sunlit leaf conductance by 44% and photosynthesis by 29%. Shading did not significantly influence root and stem dry weight growth, but it increased the increment in leaf dry weight during the three month period by an average of 28% relative to the control, while final tree height in the 30% Tunnel treatment exceeded the control by 35%. Shoot to root and shoot mass ratios increased and root mass ratio decreased due to shading because of the increase in leaf dry weight. Shading increased starch concentration in leaves while the shadiest treatment, 60% Tunnel, decreased starch concentration in the roots. Carbon isotope ratio (delta(13)C) of exposed leaves that developed under shading was significantly reduced by 1.9 per thousand in the 60% Tunnel, indicating that shading increased CO(2) concentrations at the chloroplasts (C(c)), as would be expected from increased conductance. Substomatal CO(2) concentrations, C(i), computed from leaf net CO(2) assimilation rate and conductance values, also indicate that shading increases internal CO(2) concentrations. Based on tree dry mass, tree height, and total carbohydrates fractions, the 30% Tunnel and the 60% Flat were the optimal shade treatments.  相似文献   
638.
Autocrine motility factor (AMF)/phosphoglucose isomerase (PGI; EC 5.3.1.9) is a housekeeping cytosolic enzyme that plays a key role in both glycolysis and gluconeogenesis pathways. AMF/PGI is also a multifunctional protein that displays cytokine properties, eliciting mitogenic, motogenic, and differentiation activities, and has been implicated in tumor progression and metastasis. Because little is known about AMF/PGI-dependent signaling in general and during tumorigenesis in particular, we sought to study its effect on the cell cycle. To elucidate the functional role of PGI, we stably transfected its cDNA into NIH/3T3 and BALB/c 3T3-A31 fibroblasts. Ectopic overexpression of PGI results in the acquisition of a transformed phenotype associated with an acceleration of G1 to S cell cycle transition. These were manifested by up-regulation of cyclin D1 expression and cyclin-dependent kinase activity and down-regulation of the cyclin-dependent kinase inhibitor p27Kip1. The reduced p27Kip1 protein expression level in PGI-overexpressing cells could be restored to control levels by treatment with proteasome inhibitor. PGI-overexpressing cells also exhibited elevated expression of Skp2 involved in p27Kip1 ubiquitination and elevation in the levels of retinoblastoma protein hyperphosphorylation. Thus, we may conclude that the overexpression of AMF/PGI enhances cell proliferation together with up-regulation of cyclin/cyclin-dependent kinase activities and down-regulation of p27Kip1, whereas the induction of 3T3 fibroblast transformation by PGI is regulated by the retinoblastoma protein pathway.  相似文献   
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