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Cindy L White

Publications and source records attributed to Cindy L White.

5 recordsLinked to original sources

Nucleosome core particles containing a poly(dA.dT) sequence element exhibit a locally distorted DNA structure.

Poly(dA.dT) DNA sequence elements are thought to promote transcription by either excluding nucleosomes or by altering their structural or dynamic properties. Here, the stability and structure of a defined nucleosome core particle containing a 16 base-pair poly(dA.dT) element (A16 NCP) was investigated. The A16 NCP requires a significantly higher temperature for histone octamer sliding in vitro compared to comparable nucleosomes that do not contain a poly(dA.dT) element. Fluorescence resonance energy transfer showed that the interactions between the nucleosomal DNA ends and the histone octamer were destabilized in A16 NCP. The crystal structure of A16 NCP was determined to a resolution of 3.2 A. The overall structure was maintained except for local deviations in DNA conformation. These results are consistent with previous in vivo and in vitro observations that poly(dA.dT) elements cause only modest changes in DNA accessibility and modest increases in steady-state transcription levels.

Crystallography, X-Ray↗

Defined structural changes occur in a nucleosome upon Amt1 transcription factor binding.

Here, we study the binding of the transcription factor Amt1 to its recognition site near the dyad of a highly positioned nucleosome. We find that the DNA binding domain of Amt1 binds to nucleosomes with only threefold reduced affinity compared to free DNA. We show by fluorescence resonance energy transfer that factor binding at the nucleosomal dyad is accompanied by the partial dissociation of the DNA ends from the histone octamer surface; however, no dissociation or subtle rearrangements of histone subunits is observed. A poly(dA.dT) DNA sequence element adjacent to the transcription factor binding site appears to facilitate factor binding, but is not essential. The methods that we describe here characterize for the first time the subtle structural changes that occur upon transcription factor binding to nucleosomes, and demonstrate the ability of the nucleosome to structurally adapt in response to outside influences.

Animals↗

Crystal structures of histone Sin mutant nucleosomes reveal altered protein-DNA interactions.

Here we describe 11 crystal structures of nucleosome core particles containing individual point mutations in the structured regions of histones H3 and H4. The mutated residues are located at the two protein-DNA interfaces flanking the nucleosomal dyad. Five of the mutations partially restore the in vivo effects of SWI/SNF inactivation in yeast. We find that even nonconservative mutations of these residues (which exhibit a distinct phenotype in vivo) have only moderate effects on global nucleosome structure. Rather, local protein-DNA interactions are disrupted and weakened in a subtle and complex manner. The number of lost protein-DNA interactions correlates directly with an increased propensity of the histone octamer to reposition with respect to the DNA, and with an overall destabilization of the nucleosome. Thus, the disruption of only two to six of the approximately 120 direct histone-DNA interactions within the nucleosome has a pronounced effect on nucleosome mobility and stability. This has implications for our understanding of how these structures are made accessible to the transcription and replication machinery in vivo.

Chromatin↗

Crystal structures of nucleosome core particles in complex with minor groove DNA-binding ligands.

We determined the crystal structures of three nucleosome core particles in complex with site-specific DNA-binding ligands, the pyrrole-imidazole polyamides. While the structure of the histone octamer and its interaction with the DNA remain unaffected by ligand binding, nucleosomal DNA undergoes significant structural changes at the ligand-binding sites and in adjacent regions to accommodate the ligands. Our findings suggest that twist diffusion occurs over long distances through tightly bound nucleosomal DNA. This may be relevant to the mechanism of ATP-dependent and spontaneous nucleosome translocation, and to the effect of bound factors on nucleosome dynamics.

Animals↗