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Biology subjects

Summers, M. F.

Publications and source records attributed to Summers, M. F..

2 recordsLinked to original sources

NMRFx: Integrated Software for NMR Data Processing, Visualization, Analysis and Structure Calculation

NMR spectroscopy is applied across a wide range of scientific disciplines to derive chemical, structural, and dynamical information for a broad and diverse range of molecular systems. The utility of the technique depends on robust computational protocols for processing, visualizing, and analyzing a wide range of experimental data types and transforming the data into useful chemical and structural information. Here we introduce NMRFx, a novel software application that integrates and augments features of our existing NMRViewJ and NMRFx Processor applications. NMRFx enables data processing, peak picking and assignment, chemical shift and molecular structure calculation, and beyond, through a high-speed, feature-rich graphical user interface. This paper describes advances over existing software and presents a series of case studies that demonstrate its utility in diverse contexts. These case studies include the assignments of the protein ubiquitin, a 36 nucleotide RNA construct, and the natural product taccalonolide E; and a metabolomics study of triacylglyceride production in algal cells.

biochemistry↗

Adeno-Associated Virus 2 (AAV2) - induced RPA exhaustion generates cellular DNA damage and restricts viral gene expression

Parvoviruses are single-stranded DNA viruses that have been modified to serve as vehicles for therapeutic transgene delivery in the form of recombinant Adeno-Associated Virus (rAAV2) vectors or rodent parvovirus-derived oncolytic agents. Infection with viruses of the Parvoviridae family induces a cellular DNA Damage Response (DDR) signal that supports virus replication. However, it remains unknown whether rAAV2 vectors or non-replicative AAV2 genomes induce cellular DDR signals, which might be deleterious to the cell. To determine the impact of AAV2/rAAV2 genomes on the integrity of the host chromosome, we have pulsed AAV2/rAAV2 infected cells with BrdU analogs followed by single-molecule imaging of the cellular replisomes and proteomic analysis of the host replication forks. We discovered that non-replicative AAV2/rAAV2 genomes are sufficient to induce replication stress on the host genome, leading to DDR signals in a dose-dependent manner. Moreover, infection with replication-competent AAV2 leads to enrichment of replication stress proteins, DNA repair factors and RNA processing machinery on cellular replication forks. However, neither the AAV2 Inverted Terminal Repeats (ITRs) that are retained in rAAV2s nor empty capsids are sufficient to induce host-cell replication stress. Strikingly, incoming AAV2 genomes associate with the single-stranded DNA binding protein RPA in host cells in a dose-dependent manner, progressively shortening cellular replication forks. These elevated levels of AAV2-induced cellular replication stress eventually leads to accumulation of DDR signals in the nucleus. Chemical inhibition of RPA activity and RNAi-mediated knockdown leads to de-repression of the AAV2 genome, increasing Rep 68/78 gene expression. Ectopic expression of RPA rescues AAV2-induced replication stress. Taken together, our findings suggest that depletion of cellular stores of RPA molecules by competing AAV2 genomes restrict viral gene expression and cause cellular DNA damage. AUTHOR SUMMARYAdeno-Associated Viruses 2 (AAV2) are modified to design therapeutic gene therapy vectors, but how they interact with the guardians of host DNA remains unknown. In this work, we show that AAV2 genomes compete with the host cell for the single-stranded DNA binding protein RPA, rendering the host vulnerable to replication stress leading to both suppression of the viral gene expression and induction of cellular DNA breaks. These findings provide insights into how gene therapies delivered at high doses could have genotoxic effects, underscoring the importance of engineering AAV2-based gene therapy platforms that express efficiently at lower doses.

microbiology↗