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Sanchez, J. C.

Publications and source records attributed to Sanchez, J. C..

2 recordsLinked to original sources

The Molecular Basis of Specific DNA Binding by the BRG1 AT-hook and Bromodomain

The ATP-dependent BAF chromatin remodeling complex plays a critical role in gene regulation by modulating chromatin architecture, and is frequently mutated in cancer. Indeed, subunits of the BAF complex are found to be mutated in >20% of human tumors. The mechanism by which BAF properly navigates chromatin is not fully understood, but is thought to involve a multivalent network of histone and DNA contacts. We previously identified a composite domain in the BRG1 ATPase subunit that is capable of associating with both histones and DNA in a multivalent manner. Mapping the DNA binding pocket revealed that it contains several cancer mutations. Here, we utilize SELEX-seq to identify the DNA specificity of this composite domain and NMR spectroscopy and molecular modelling to determine the structural basis of DNA binding. Finally, we demonstrate that cancer mutations in this domain alter the mode of DNA association.

biochemistry

Phenotypic and genotypic consequences of CRISPR/Cas9 editing of the replication origins in the rDNA of Saccharomyces cerevisiae

The complex structure and repetitive nature of eukaryotic ribosomal DNA (rDNA) is a challenge for genome assembly, and thus, the consequences of sequence variation in rDNA remain unexplored. However, renewed interest in the role that rDNA variation may play in diverse cellular functions, aside from ribosome production, highlights the need for a method that would permit genetic manipulation of the rDNA. Here, we describe a CRISPR/Cas9 based strategy to edit the rDNA locus in the budding yeast Saccharomyces cerevisiae. Using this approach, we modified the endogenous rDNA origin of replication in each repeat by deleting or replacing its consensus sequence. We characterized the transformants that have successfully modified their rDNA locus and propose a mechanism for how CRISPR/Cas9 mediated editing of the rDNA occurs. In addition, we carried out extended growth and life span experiments to investigate the long-term consequences that altering the rDNA origin of replication has on cellular health. We find that long-term growth of the edited clones results in faster growing suppressors that have acquired segmental aneusomy of the rDNA containing region of chr XII or aneuploidy of chromosomes XII, II, or IV. Furthermore, we find that all edited isolates suffer a reduced life span, irrespective of their levels of extrachromosomal rDNA circles. Our work demonstrates that it is possible to quickly, efficiently and homogeneously edit the rDNA locus via CRISPR/Cas9. It serves as a model for modifying other parts of the rDNA and, more generally, for editing other tandemly repeated sequences in higher eukaryotes.

genetics