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PubMed · 3330868

[Calcium-binding protein].

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J X Bao. 1987. [Calcium-binding protein].. https://pubmed.ncbi.nlm.nih.gov/3330868/

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Mutation and phosphorylation change the oligomeric structure of phospholamban in lipid bilayers.

Phospholamban (PLB), a 52-residue protein integral to the cardiac sarcoplasmic reticulum, is a key regulator of the Ca pump. PLB has been shown to form pentamers in the denaturing detergent sodium dodecyl sulfate (SDS), but its oligomeric state in the natural environment of the lipid membrane remains unknown. In order to address this issue, we performed electron paramagnetic resonance (EPR) experiments on two types of lipid-reconstituted, recombinant PLB: wild type (WT PLB) and a mutant substituted with alanine at leucine 37 (L37A PLB), whose propensity to oligomerize in SDS is greatly diminished. The lipid used in reconstitution was dioleoylphosphatidylcholine (DOPC) doped with a phospholipid spin-label that detects protein contact. EPR spectroscopy was used to determine the fraction of the total lipid molecules in contact with PLB. Our results show that, in phospholipid bilayers, WT PLB is oligomeric (effective oligomeric size of 3.52 +/- 0.71), while L37A PLB is monomeric (effective oligomeric size of 1.15 +/- 0.15). Thus, the oligomeric states of these proteins in the lipid membrane are remarkably similar to those in SDS solution. In particular, the point mutation in L37A PLB greatly destabilizes the PLB oligomer. Phosphorylation of PLB by protein kinase A, which has been shown to relieve inhibition of the cardiac Ca pump, changes the lipid-PLB interactions, decreasing the number of lipids restricted by contact with protein. The results are consistent with a phosphorylation-dependent increase of the effective oligomer size of WT PLB from 3.52 to 5.34 and of L37A PLB from 1.15 to 1.91. These phosphorylation effects were abolished in a medium with a high ionic strength. We conclude that the oligomeric states of PLB in lipid membranes are in a dynamic equilibrium that is perturbed by phosphorylation due to reduced electrostatic repulsion among PLB protomers.

Calcium-Binding Proteins

Reglucosylation of N-linked glycans is critical for calnexin assembly with T cell receptor (TCR) alpha proteins but not TCRbeta proteins.

Association of calnexin with newly synthesized glycoproteins involves recognition of monoglucosylated glycans, generated in the endoplasmic reticulum via initial removal of two glucose (Glc) residues from immature glycan chains by glucosidase enzymes (Glc trimming), or addition of a single Glc residue to fully trimmed glycans by glucosyltransferase enzymes (reglucosylation). While it has been established that creation of monoglucosylated glycans is important for chaperone binding, it is unknown if most proteins require both deglucosylation and reglucosylation for calnexin assembly or if initial Glc trimming is sufficient. Here, we studied the deglucosylation and reglucosylation of two related glycoproteins, the alpha and beta subunits of the T cell receptor (TCR) complex, and their assembly with calnexin in BW thymoma cells. Our data demonstrate that TCRalpha/beta glycoproteins undergo multiple cycles of Glc removal and addition within the endoplasmic reticulum and that numerous reglucosylated proteins assemble with calnexin, including TCRalpha/beta glycoproteins. Importantly, the current study shows that TCRbeta proteins, but not TCRalpha proteins, effectively associate with calnexin under conditions of functional Glc trimming but impaired reglucosylation. These data demonstrate that reglucosylated proteins associate with lectin-like chaperones in vivo and provide evidence that reglucosylation is of differential importance for the association of individual, indeed similar, glycoproteins with calnexin.

Calcium-Binding Proteins

Regulation of intercellular adhesion molecule-1 gene by tumor necrosis factor-alpha is mediated by the nuclear factor-kappaB heterodimers p65/p65 and p65/c-Rel in the absence of p50.

Human intercellular adhesion molecule-1 (ICAM-1) plays an important role in immune responses as the major specific ligand for the beta2-integrins LFA-1 and Mac-1. During the inflammatory process, ICAM-1 expression is stimulated by various proinflammatory cytokines. We have examined the mechanisms of transcriptional control involved in the stimulation of ICAM-1 gene expression by tumor necrosis factor-alpha (TNF-alpha) and by the nuclear factor-kappaB (NF-kappaB) family of transcription factors in the Ad5-transformed human embryonal kidney cell line 293. A proximal site (5'-TTGGAAATTCC-3') mapping at position -228 from the ATG and known to mediate TNF-alpha responsiveness in endothelial cells is also critical for TNF-alpha responsiveness in 293 cells. However, unlike endothelial cells, electrophoretic mobility shift assays, using whole-cell extracts prepared from TNF-alpha-treated cells, showed that TNF-alpha induces the formation of a specific kappaB binding complex, mainly composed of NF-kappaB subunits RelA and c-Rel. Electrophoretic mobility shift assays done with 293 cells transfected with p50, p65, or both subunits showed that p50 only has a weak ability to bind the proximal ICAM-1 NF-kappaB site. Another element exhibiting sequence homology with NF-kappaB binding sites and located at position -540 relative to the mRNA cap site was found to be involved in the basal activity of the ICAM-1 promoter, is not required for TNF-alpha responsiveness, and does not bind NF-kappaB subunits. Whereas transactivation of the ICAM-1 promoter by p65 requires the proximal NF-kappaB site, deletion mutant analysis showed that p50 and, to a greater extent, p52 transactivate reporter plasmids lacking NF-kappaB sites, suggesting the presence of other p50/p52 responsive element(s).

Calcium-Binding Proteins