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overview My laboratory is interested in the enzymology and chemistry of nucleic acid enzymes. Helicases are enzymes that manipulate DNA and RNA in all aspects of nucleic acid metabolism. We are studying a DNA helicase from Bacteriophage T4 called Dda (for DNA-Dependent-ATPase) in order to develop a detailed chemical and kinetic mechanism for DNA unwinding by this model DNA helicase. A second enzyme we study is called Pif1. This helicase is involved in many aspects of DNA metabolism ranging from telomere maintenance to transcription. Pif1 binds tightly to unusual DNA structures called quadruplexes, for which the biological functions are being intensively explored. A second project involves the Hepatitis C viral helicase NS3 (Non-Structural Protein 3). NS3 is an RNA helicase that is capable of unwinding DNA. We are studying the mechanism of NS3 as well as its interactions with other HCV and cellular proteins. Our goal is to recapitulate RNA replication in vitro using biological relevant substrates and proteins and a biologically relevant sub-genomic replicon of HCV. Our research projects are currently expanding in development of new tools for studying and protein-protein interactions and post-translational modifications at specific sites in the genome using a Crispr-based approach coupled with protein mass spectrometry. In a new project, we have recently discovered a possible signaling mechanism by which cells respond to DNA damage. During oxidative stress, guanine residues are oxidized, leading to excision of the damaged DNA. When the excised DNA consists of specific sequences containing runs of guanine, the resulting DNA fragment can fold into a stable structure called quadruplex DNA. Telomeric DNA is particularly susceptible to oxidative stress and contains sequences that readily fold into quadruplex structures. The excised DNA quadruplexes can bind to proteins such as DHX36 (a helicase), leading to formation of sub-organelles called stress granules. The functional role of stress granules is to modulate translation. Hence, this mechanism provides a stepwise chemical mechanism for the cell to respond to DNA damage leading to changes in translation.

One or more keywords matched the following items that are connected to Raney, Kevin

Item TypeName
Academic Article Multiple full-length NS3 molecules are required for optimal unwinding of oligonucleotide DNA in vitro.
Academic Article Structural and biological identification of residues on the surface of NS3 helicase required for optimal replication of the hepatitis C virus.
Academic Article A helicase staircase.
Academic Article DNA unwinding by Escherichia coli DNA helicase I (TraI) provides evidence for a processive monomeric molecular motor.
Academic Article The T4 phage SF1B helicase Dda is structurally optimized to perform DNA strand separation.
Academic Article Helicase-catalysed translocation and strand separation.
Academic Article Hepatitis C virus nonstructural protein 5A (NS5A) is an RNA-binding protein.
Academic Article Inhibition of human telomerase by PNA-cationic peptide conjugates.
Academic Article Non-Watson-Crick interactions between PNA and DNA inhibit the ATPase activity of bacteriophage T4 Dda helicase.
Academic Article DNA unwinding and protein displacement by superfamily 1 and superfamily 2 helicases.
Academic Article Superfamily 2 helicases.
Academic Article Development and evaluation of a structural model for SF1B helicase Dda.
Academic Article Biotin-streptavidin-labeled oligonucleotides as probes of helicase mechanisms.
Concept Models, Chemical
Concept Models, Genetic
Concept Models, Biological
Concept Models, Statistical
Concept Models, Molecular
Academic Article A biochemical and biophysical model of G-quadruplex DNA recognition by positive coactivator of transcription 4.
Academic Article A catch and release program for single-stranded DNA.
Academic Article Structure and function of Pif1 helicase.
Grant Mechanisms of RNA binding and remodeling proteins
Grant Using ChAP-MS to Study Macromolecular Chromatin Composition during Transcription
Grant Single molecule nucleic acid enzymology
Grant DNA Unwinding and Translocation by Helicases
Grant MECHANISM OF HEPACIVIRUS REPLICASE ASSEMBLY
Grant MECHANISM OF THE RNA HELICASE OF THE HEPATITIS C VIRUS
Academic Article Direct quantification of the translocation activities of Saccharomyces cerevisiae Pif1 helicase.

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