
Transcription of the glycoprotein hormone alpha-subunit gene in placental cells is repressed by glucocorticoids, an effect that is mediated through the glucocorticoid receptor (GR). Although the DNA-binding domain of GR has been shown to be important, mutation of the previously identified GR-binding sites in the alpha-subunit promoter fails to abolish repression. Furthermore, mutant receptors in which the DNA-binding specificity is converted to ERE binding or in which the first zinc finger is substituted with that from thyroid receptor remain fully inhibitory, indicating that specific DNA binding to the alpha-subunit gene is not important for repression. Inhibition by GR is only effective when the alpha-subunit promoter is activated by CREB, implicating CREB as the target for GR-mediated repression. Reciprocally, overexpression of CREB interferes with GR-mediated transcriptional activation of MMTV. This activity is not affected by the phosphorylation state of CREB. Despite the mutual cross-interference with activation of gene expression, GR and CREB do not appear to have a high-affinity protein:protein interaction in vitro. Nonetheless, GR and CREB may interact directly in vivo possibly through a third protein or, more likely, may sequester a mutually required target protein.
Upon neoplastic transformation, cells acquire the ability to grow in soft agar. We investigated how this occurs by cell cycle analysis of a rat cell line NRK-49F and its transformation-deficient mutants. Rapidly growing NRK and mutants arrest in G1 when deprived of anchorage by suspending in methylcellulose. Addition of epidermal growth factor (EGF) together with transforming growth factor-beta (TGF-beta), which is highly oncogenic to NRK, induces the rapid progression of G1-arrested NRK cells into S phase. The time course and the extent of synchronization are very similar to the cell cycle progression in the presence of anchorage. EGF alone, which is highly mitogenic but only slightly oncogenic, fails to induce such progression. Both mutants remain arrested in G1. These data indicate that oncogenic signals confer on NRK the ability to enter S phase in the absence of anchorage and that this is the principal mechanism for its ability to grow in soft agar.
The Y-box factors interact specifically with both DNA and RNA. Biologically they have roles in both transcriptional and translational regulation. Conserved through evolution from prokaryotic to eukaryotic organisms they represent a new family of nucleic acid binding proteins.
We have used molecular and biochemical techniques to analyze Na,K-ATPase from a simple metazoan, Hydra vulgaris. First we isolated and characterized cDNA clones encoding the Na,K-ATPase alpha subunit from a Hydra lambda gt11 cDNA library. The open reading frame predicts a protein of 1031 amino acids that bears a high degree of primary sequence and secondary structure similarity to mammalian, avian, and arthropod alpha subunits. The predicted Hydra alpha subunit contains charged residues at the termini of the H1-H2 extracellular domain, suggesting that the Hydra alpha subunit may be resistant to cardiac glycoside inhibition. Biochemical analysis of partially purified Hydra Na,K-ATPase reveals both high- and low-affinity components of ouabain-inhibitable ATPase activity. Our results suggest that the evolutionary ancestor of all metazoans possessed a Na,K-ATPase alpha subunit that was highly conserved with respect to its vertebrate counterparts. Further, expression of a ouabain-resistant Na,K-ATPase activity in Hydra suggests that cardiac glycoside resistance arose randomly during evolution of the Na,K-ATPase.
The Y box factors bind to a specific DNA sequence (the Y box, containing a reverse CCAAT element) and have been implicated in the regulation of transcription. We have used deletion mutagenesis to define the protein domains of two Xenopus Y box factors, FRG Y1 and FRG Y2, that are essential for DNA binding, multimerization, and transcription. A domain of the Y box factors homologous to an Escherichia coli cold shock protein is required for DNA binding. Both the E. coli protein and the Y box factors recognize DNA sequences with similar selectivity. The conserved region between these proteins does not contain any previously defined DNA-binding motifs. The hydrophilic C-terminal tail of the proteins contributes to the assembly of nucleoprotein complexes. This region contains an unusual pattern of basic and acidic amino acids and represents a new type of domain mediating protein-protein interactions in transcription factors. Both the DNA-binding and the multimerization domains are important for stimulating transcription from the Xenopus hsp70 promoter in vitro.
The immune system surveys the organism for the presence of foreign or abnormal structures. An important role in the immune response is assumed by T lymphocytes that recognize foreign antigen while tolerating self-proteins. T lymphocytes can recognize only peptide fragments that are presented to them by molecules of the major histocompatibility complex (MHC). Antigen processing for presentation to T cells involves distinct cellular compartments where peptides and MHC molecules interact. Whereas class I MHC molecules (recognized by CD8+ cytotoxic T cells) acquire peptides in an early biosynthetic compartment, class II molecules (recognized by CD4+ helper T cells) acquire peptides most efficiently in an endocytic compartment. It has emerged recently that the class II processing compartment can be fed not only from the outside with exogenous antigen but also from endogenous sources, including membrane-associated and cytosolic proteins. The potential sources of proteins that can trigger a helper T cell response during viral infections and that can induce self-tolerance are thus much wider than previously anticipated.
The secondary structure of the portion of the transferrin receptor mRNA responsible for the regulation of the transcript's half-life has been deduced by ribonuclease H cleavage directed by antisense oligodeoxyribonucleotides as well as with other ribonucleases sensitive to RNA secondary structure. The data indicate that both a synthetic 252-nucleotide RNA and the comparable portion of a 2.7-kb cellular mRNA contain three stem-loops referred to as iron-responsive elements (IREs). This secondary structure appears to be relatively static, with little interconversion with another possible structure having a similar calculated free energy but involving longer-range base pairing. Deletion of a selected cytosine residue from each of the IRE loops has been shown to yield an unregulated, unstable mRNA. This altered RNA has a secondary structure similar, if not identical, to that of the RNA that is competent in regulation.
The basic-helix-loop-helix-zipper (bHLH-Zip) motif is a conserved region of approximately 70 amino acids that mediates both sequence-specific DNA binding and protein dimerization. This motif is found in protein sequences from many eukaryotic organisms and is contained in the protein sequence of the oncogene myc and its partner max, and a shortened version of the motif (bHLH) is found in the muscle determination factor myoD and its partner E12. An evaluation of the conserved amino acids that define the motif coupled with the published mutagenic studies of this region has led to our formulation of a molecular model for the binding of this motif as a dimer to specific sequences of DNA. This model has the dimeric protein interacting with an abutted, dyad-symmetric DNA sequence. Helix 2 of each monomer is modeled as a coiled-coil extension of the C-terminal "leucine zipper." Helix 1 does not interact with helix 1 from its partner in the dimer but with the hydrophobic surface created when the helix 2 regions of the dimer interact with each other as a coiled-coil. Sequence-specific interactions are proposed between the basic region and the invariant cis elements that all bHLH-Zip proteins bind.
The plasmid R6K contains three distinct origins of replication: alpha, beta, and gamma. The gamma sequence is essential in cis and acts as an enhancer that activates the distant alpha and beta origins. R6K therefore represents a favorable procaryotic model system with which to unravel the biochemical mechanisms underlying selective origin activation, particularly activation involving distant sites on the same chromosome. We have discovered that plasmids containing the origins alpha and gamma required the Escherichia coli DnaA initiator protein in addition to the R6K-encoded initiator protein, Pi, and other host replisomal proteins for their maintenance in vivo. Plasmids initiating replication from origin beta required only the Pi initiator protein and other host replisomal proteins. We have exploited the differential requirement for the DnaA protein by origins gamma and beta to selectively study and localize the minimal origin beta sequences by deletion analysis as one test of a looping model of origin activation. A 64-bp region spanning the extreme -COOH terminal coding sequence of the Pi protein was found to be essential for replication in vivo in the absence of DnaA protein, consistent with the approximate physical location of the beta origin. Replication emanating from origin beta could be abolished in vivo by deletion of the 9-bp target site for Pi protein-mediated DNA looping between the gamma origin/enhancer and the distant beta origin. Electron microscopy of nascent replication intermediates generated in vivo directly confirmed our genetic localization of the beta origin. Our results strongly suggest that activation of the beta origin by a distant replication enhancer element requires a small target sequence essential for initiator protein-mediated DNA looping.