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G Felsenfeld

Publications and source records attributed to G Felsenfeld.

At least 37 records · Page 2Linked to original sources

Perturbation of nucleosome structure by the erythroid transcription factor GATA-1.

The ability of transcription factors to gain access to their sites in chromatin requires the disruption or displacement of nucleosomes covering the promoter, signalled by the generation of a nuclease hypersensitive site. We characterise here the alterations in nucleosome structure caused by binding of the erythroid factor GATA-1 to a nucleosome carrying GATA-1 sites. DNase I and micrococcal nuclease probes show that GATA-1 binding causes extensive, cooperative breakage of the histone/DNA contacts to generate a complex very similar to that formed by the factor with free DNA. The only region which differs is confined to about 50 bp surrounding the nucleosome dyad axis which appears to be the domain of residual contact between the DNA and histone octamer. Despite considerable breakage of the histone/DNA contacts, the complex is completely stable in solution, and disruption of the nucleosome is entirely reversible: it is regenerated quantitatively upon removal of the transcription factor. Moreover, the histone 2A/2B component of the octamer does not exchange to external competitor. We suggest that formation of this complex may be a step in the generation of a fully hypersensitive site in vivo over regulatory elements containing GATA family binding sites.

Animals↗

Mechanism of transcription through the nucleosome by eukaryotic RNA polymerase.

Nucleosomes, the nucleohistone subunits of chromatin, are present on transcribed eukaryotic genes but do not prevent transcription. It is shown here that the large yeast RNA polymerase III transcribes through a single nucleosome. This takes place through a direct internal nucleosome transfer in which histones never leave the DNA template. During this process, the polymerase pauses with a pronounced periodicity of 10 to 11 base pairs, which is consistent with restricted rotation in the DNA loop formed during transfer. Transcription through nucleosomes by the eukaryotic enzyme and by much smaller prokaryotic RNA polymerases thus shares many features, reflecting an important property of nucleosomes.

Base Sequence↗

The N-terminal fingers of chicken GATA-2 and GATA-3 are independent sequence-specific DNA binding domains.

The GATA family of vertebrate DNA binding regulatory proteins are expressed in diverse tissues and at different times of development. However, the DNA binding regions of these proteins possess considerable homology and recognize a rather similar range of DNA sequence motifs. DNA binding is mediated through two domains, each containing a zinc finger. Previous results have led to the conclusion that although in some cases the N-terminal finger can contribute to specificity and strength of binding, it does not bind independently, whereas the C-terminal finger is both necessary and sufficient for binding. Here we show that although this is true for the N-terminal finger of GATA-1, those of GATA-2 and GATA-3 are capable of strong independent binding with a preference for the motif GATC. Binding requires the presence of two basic regions located on either side of the N-terminal finger. The absence of one of these near the GATA-1 N-terminal finger probably accounts for its inability to bind. The combination of a single finger and two basic regions is a new variant of a motif that has been previously found in the binding domains of other finger proteins. Our results suggest that the DNA binding properties of the N-terminal finger may help distinguish GATA-2 and GATA-3 from GATA-1 and the other GATA family members in their selective regulatory roles in vivo.

Amino Acid Sequence↗

Characterization of the chicken beta-globin insulator.

Insulators, first identified in Drosophila, are DNA sequence elements that shield a promoter from nearby regulatory elements. We have previously reported that a DNA sequence at the 5' end of the chicken beta-globin locus can function as an insulator. It is capable of shielding a reporter gene from the activating effects of a nearby mouse beta-globin locus control region element in the human erythroleukemic cell line K562. In this report, we show that most of the insulating activity lies in a 250-bp CpG island (core element), which contains the constitutive DNase I-hypersensitive site (5'HS4). DNA binding assays with the core sequence reveal a complex protein binding pattern. The insulating activity of the core element is multiplied when tandem copies are used. Although CpG islands are often associated with promoters of housekeeping genes, we find little evidence that the core element is a promoter. Furthermore, the insulator differs from a promoter in its ability to block the locus control region effect directionally.

Animals↗

The solution structure of a specific GAGA factor-DNA complex reveals a modular binding mode.

The structure of a complex between the DNA binding domain of the GAGA factor (GAGA-DBD) and an oligonucleotide containing its GAGAG consensus binding site has been determined by nuclear magnetic resonance spectroscopy. The GAGA-DBD comprises a single classical Cys2-His2 zinc finger core, and an N-terminal extension containing two highly basic regions, BR1 and BR2. The zinc finger core binds in the major groove and recognizes the first three GAG bases of the consensus in a manner similar to that seen in other classical zinc finger-DNA complexes. Unlike the latter, which require tandem zinc finger repeats with a minimum of two units for high affinity binding, the GAGA-DBD makes use of only a single finger complemented by BR1 and BR2. BR2 forms a helix that interacts in the major groove recognizing the last G of the consensus, while BR1 wraps around the DNA in the minor groove and recognizes the A in the fourth position of the consensus. The implications of the structure of the GAGA-DBD-DNA complex for chromatin remodelling are discussed.

Amino Acid Sequence↗

Chromatin structure and gene expression.

It is now well understood that chromatin structure is perturbed in the neighborhood of expressed genes. This is most obvious in the neighborhood of promoters and enhancers, where hypersensitivity to nucleases marks sites that no longer carry canonical nucleosomes, and to which transcription factors bind. To study the relationship between transcription factor binding and the generation of these hypersensitive regions, we mutated individual cis-acting regulatory elements within the enhancer that lies between the chicken beta- and epsilon-globin genes. Constructions carrying the mutant enhancer were introduced by stable transformation into an avian erythroid cell line. We observed that weakening the enhancer resulted in creation of two classes of site: those still completely accessible to nuclease attack and those that were completely blocked. This all-or-none behavior suggests a mechanism by which chromatin structure can act to sharpen the response of developmental systems to changing concentrations of regulatory factors. Another problem raised by chromatin structure concerns the establishment of boundaries between active and inactive chromatin domains. We have identified a DNA element at the 5' end of the chicken beta-globin locus, near such a boundary, that has the properties of an insulator; in test constructions, it blocks the action of an enhancer on a promoter when it is placed between them. We describe the properties and partial dissection of this sequence. A third problem is posed by the continued presence of nucleosomes on transcribed genes, which might prevent the passage of RNA polymerase. We show, however, that a prokaryotic polymerase can transcribe through a histone octamer on a simple chromatin template. The analysis of this process reveals that an octamer is capable of transferring from a position in front of the polymerase to one behind, without ever losing its attachment to the DNA.

Animals↗

Tissue-specific factors additively increase the probability of the all-or-none formation of a hypersensitive site.

DNase I-hypersensitive sites lack a canonical nucleosome and have binding sites for various transcription factors. To understand how the hypersensitivity is generated and maintained, we studied the chicken erythroid-specific beta(A)/epsilon globin gene enhancer, a region where both tissue-specific and ubiquitous transcription factors can bind. Constructions containing mutations of this enhancer were stably introduced into a chicken erythroid cell line. We found that the hypersensitivity was determined primarily by the erythroid factors and that their binding additively increased the accessibility. The fraction of accessible sites in clonal cell lines was quantitated using restriction endonucleases; these data implied that the formation of each hypersensitive site was an all-or-none phenomenon. Use of DNase I and micrococcal nuclease probes further indicated that the size of the hypersensitive site was influenced by the binding of transcription factors which then determined the length of the nucleosome-free gap. Our data are consistent with a model in which hypersensitive sites are generated stochastically: mutations that reduce the number of bound factors reduce the probability that these factors will prevail over a nucleosome; thus, the fraction of sites in the population that are accessible is also diminished.

Animals↗

The single Cys2-His2 zinc finger domain of the GAGA protein flanked by basic residues is sufficient for high-affinity specific DNA binding.

Specific DNA binding to the core consensus site GAGAGAG has been shown with an 82-residue peptide (residues 310-391) taken from the Drosophila transcription factor GAGA. Using a series of deletion mutants, it was demonstrated that the minimal domain required for specific binding (residues 310-372) includes a single zinc finger of the Cys2-His2 family and a stretch of basic amino acids located on the N-terminal end of the zinc finger. In gel retardation assays, the specific binding seen with either the peptide or the whole protein is zinc dependent and corresponds to a dissociation constant of approximately 5 x 10(-9) M for the purified peptide. It has previously been thought that a single zinc finger of the Cys2-His2 family is incapable of specific, high-affinity binding to DNA. The combination of an N-terminal basic region with a single Cys2-His2 zinc finger in the GAGA protein can thus be viewed as a novel DNA binding domain. This raises the possibility that other proteins carrying only one Cys2-His2 finger are also capable of high-affinity specific binding to DNA.

Amino Acid Sequence↗

Expression and codon usage optimization of the erythroid-specific transcription factor cGATA-1 in baculoviral and bacterial systems.

Biochemical characterization of cGATA-1, a key transcription factor in the regulation of globin expression in chickens, has been precluded by the unavailability of appreciable amounts of the pure protein. Purification directly from embryonic red blood cells has been limited by the difficulty in obtaining large quantities of the starting material, and previous attempts at bacterial expression have consistently yielded truncated product. To solve these problems, we have taken two approaches to the expression of cGATA-1. First, we were able to produce efficient expression from baculovirus-infected insect cells. Second, by altering the codon usage in cDNA encoding the protein's carboxy-terminal region, we obtained good expression of full-length protein in Escherichia coli. These preparations should prove useful in biochemical and structural studies of the factor. Additionally, we describe a primer extension/PCR-based method which can be used to synthesize extended regions of DNA sequence for gene construction.

Animals↗

A palindromic regulatory site within vertebrate GATA-1 promoters requires both zinc fingers of the GATA-1 DNA-binding domain for high-affinity interaction.

GATA-1, a transcription factor essential for the development of the erythroid lineage, contains two adjacent highly conserved zinc finger motifs. The carboxy-terminal finger is necessary and sufficient for specific binding to the consensus GATA recognition sequence: mutant proteins containing only the amino-terminal finger do not bind. Here we identify a DNA sequence (GATApal) for which the GATA-1 amino-terminal finger makes a critical contribution to the strength of binding. The site occurs in the GATA-1 gene promoters of chickens, mice, and humans but occurs very infrequently in other vertebrate genes known to be regulated by GATA proteins. GATApal is a palindromic site composed of one complete [(A/T)GATA(A/G)] and one partial (GAT) canonical motif. Deletion of the partial motif changes the site to a normal GATA site and also reduces by as much as eightfold the activity of the GATA-1 promoter in an erythroid precursor cell. We propose that GATApal is important for positive regulation of GATA-1 expression in erythroid cells.

Amino Acid Sequence↗

Overcoming a nucleosomal barrier to transcription.

We have studied the kinetics of transcription through a nucleosome core. RNA polymerase transcribes the first approximately 25 bp of nucleosomal DNA rapidly, but then hits a barrier and continues slowly to the nucleosomal dyad region. Here, the barrier disappears and the transcript is completed at a rapid rate, as if on free DNA, indicating that histone octamer transfer is completed as polymerase reaches the dyad. If DNA behind the polymerase is removed during transcription, the barrier does not appear until the polymerase has penetrated up to 15 bp farther into the nucleosome. On a longer template, the barrier is almost eliminated. We have shown previously that the octamer is transferred around the transcribing polymerase via an intermediate containing an intranucleosomal DNA loop. Our results exclude the possibility that polymerase has difficulty breaking histone-DNA contacts and suggest instead that polymerase pauses because it has difficulty transcribing DNA in the loop.

Base Sequence↗

Negative regulation of chicken GATA-1 promoter activity mediated by a hormone response element.

GATA-1 is a DNA-binding protein that regulates transcription of erythroid-specific genes and is required for the formation of mature erythroid cells. We show here that the GATA-1 hormone response-like element (GHRE) within the first intron of the gene functions as an inhibitory element in chicken erythroid precursor cells, as revealed by expression studies with mutants of the minimal GATA-1 promoter. We identify in these precursor cells the relevant proteins that interact with GHRE as a heterodimer of the thyroid hormone receptor alpha and the chicken ovalbumin upstream promoter transcription factor. Our results indicate that this novel complex can negatively regulate the GATA-1 promoter and suggest that GATA-1 can overcome this inhibitory action. We provide evidence that the viral gene product, v-erb A, can also reduce GATA-1 promoter activity through the GHRE site.

Animals↗

The leucine zipper is necessary for stabilizing a dimer of the helix-loop-helix transcription factor USF but not for maintenance of an elongated conformation.

The basic helix-loop-helix transcription factor USF43 binds to E box motifs on certain promoters and enhancers, as well as the beta-globin locus control region. We have used gel filtration chromatography, velocity centrifugation, and chemical cross-linking methods to investigate the stoichiometry and shape of USF43 in solution and when bound to DNA. USF43 has a very large Stokes' radius (44 A) and a high frictional ratio (1.64), consistent with an asymmetric elongated oligomer. Under a variety of conditions, the only detectable USF43 species in solution and bound to DNA is a dimer. The carboxyl-terminal leucine zipper is absolutely essential for a stable dimer but not for the elongated conformation. We used a protease footprinting assay to demonstrate that, when USF43 binds to DNA, a approximately 15-kDa USF43 domain becomes resistant to cleavage with trypsin. This domain includes sequences that are not expected to interact with the DNA helix, suggesting that trypsin cleavage sites are masked by a conformational change. Our results show that the oligomerization state of USF43 does not change upon binding to DNA, and the helix-loop-helix oligomerization motif of USF43 is not itself sufficient to form a high affinity dimerization interface.

Amino Acid Sequence↗

Nucleosome positioning on chicken and human globin gene promoters in vitro. Novel mapping techniques.

We have developed two new techniques to assess the positions adopted by core histone octamers when reconstituted onto DNA. These, together with a previously described technique, were applied to mapping binding sites on plasmid DNAs containing either the human zeta-globin or chicken beta-globin gene promoters. Each of the approaches enabled the sites occupied by histone octamers to be measured at high resolution and, in qualitative terms, revealed the same pattern of multiple, overlapping sites. Monomer extension, one of the novel techniques, can be used to reveal binding sites over extensive stretches of a single reconstitute (approximately 1000 bp). We found the distribution of histone octamer binding sites to be largely independent of the conditions employed for reconstitution, the topology of the DNA substrate and prolonged incubation under various post-reconstitution conditions. These properties, and features of the binding site maps that we derived, suggest that histone octamer positioning on these DNAs is predominantly a characteristic of the DNA sequence itself and, by implication, that nucleosome-nucleosome interactions and the formation of nucleosome arrays are of minor influence. Some of the techniques provide quantitative information concerning the relative binding strengths of the core histone octamer for different positioning sequences. In this context, it is notable that the majority of potential binding sites compete very poorly for the histone octamer, demonstrating that under the conditions pertinent to our analysis, the range of binding strengths exhibited by the octamer for particular DNA sequences is extensive, and greater than that observed when competitive binding has been studied by methods that do not reflect precise positioning.

Animals↗

Dual promoter activation by the human beta-globin locus control region.

The human beta-globin locus control region (LCR) is necessary for high-level and position-independent expression of globin genes in erythroid cells. A variety of mechanisms have been proposed for the cis-activation of individual members of the beta-globin gene family by the LCR located 10-50 kilobases upstream. It is not known, however, whether a given LCR can activate all developmentally appropriate globin family members on its chromosome or whether, within a given chromosome, the LCR must be committed to activating only a single gene. We have devised an experiment to distinguish between these possibilities. This experiment takes advantage of the fact that if two genes in a cluster are transcriptionally active and their promoters, therefore, are in a conformation hypersensitive to nucleases, restriction enzymes that cleave the promoters will excise the intervening chromatin fragment. The Apa I sites on human fetal G gamma- and A gamma-globin gene promoters are accessible to cleavage in nuclei from the human erythroleukemia cell line K562, which expresses these genes, but not in HeLa cells. We find that Apa I digestion leads to excision in high yield of the fragment spanning these promoters, showing that a LCR element is capable of sharing its activating function among members of a gene cluster on a single chromosome.

Cells, Cultured↗