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Inorganic Chemistry Commons

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Series

2011

Swarthmore College

Articles 1 - 2 of 2

Full-Text Articles in Inorganic Chemistry

Relating Dynamic Protein Interactions Of Metallochaperones With Metal Transfer At The Single-Molecule Level, J. J. Benítez, A. M. Keller, D. L. Huffman, Liliya A. Yatsunyk, A. C. Rosenzweig, P. Chen Dec 2011

Relating Dynamic Protein Interactions Of Metallochaperones With Metal Transfer At The Single-Molecule Level, J. J. Benítez, A. M. Keller, D. L. Huffman, Liliya A. Yatsunyk, A. C. Rosenzweig, P. Chen

Chemistry & Biochemistry Faculty Works

Metallochaperones undertake specific interactions with their target proteins to deliver metal ions inside cells. Understanding how these protein interactions are coupled with the underlying metal transfer process is important, but challenging because they are weak and dynamic. Here we use a nanovesicle trapping scheme to enable single-molecule FRET measurements of the weak, dynamic interactions between the copper chaperone Hahl and the fourth metal binding domain (MBD4) of WDP. By monitoring the behaviors of single interacting pairs, we visualize their interactions in real time in both the absence and the presence of various equivalents of Cu(1+). Regardless of the proteins' metallation …


Rudimentary G-Quadruplex-Based Telomere Capping In Saccharomyces Cerevisiae, J. S. Smith, Q. Chen, Liliya A. Yatsunyk, John Michael Nicoludis , '12, M. S. Garcia, R. Kranaster, S. Balasubramanian, D. Monchaud, M.-P. Teulade-Fichou, L. Abramowitz, D. C. Schultz, F. B. Johnson Apr 2011

Rudimentary G-Quadruplex-Based Telomere Capping In Saccharomyces Cerevisiae, J. S. Smith, Q. Chen, Liliya A. Yatsunyk, John Michael Nicoludis , '12, M. S. Garcia, R. Kranaster, S. Balasubramanian, D. Monchaud, M.-P. Teulade-Fichou, L. Abramowitz, D. C. Schultz, F. B. Johnson

Chemistry & Biochemistry Faculty Works

Telomere capping conceals chromosome ends from exonucleases and checkpoints, but the full range of capping mechanisms is not well defined. Telomeres have the potential to form G-quadruplex (G4) DNA, although evidence for telomere G4 DNA function in vivo is limited. In budding yeast, capping requires the Cdc13 protein and is lost at nonpermissive temperatures in cdc13-1 mutants. Here, we use several independent G4 DNA-stabilizing treatments to suppress cdc13-1 capping defects. These include overexpression of three different G4 DNA binding proteins, loss of the G4 DNA unwinding helicase Sgs1, or treatment with small molecule G4 DNA ligands. In vitro, we show …