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Pekker, D.

Publications and source records attributed to Pekker, D..

2 recordsLinked to original sources

A Dose-Response Model for Accurate Detection and Quantification of Transcriptome-Wide Gene Knockdown for Oligonucleotide-Based Medicines

Synthetic antisense oligonucleotides and siRNAs are a class of Oligonucleotide-Based Medicines (OBMs) that can hybridize with pre-mRNA and mRNA, recruit a mechanism-of-action specific enzymatic complex, and knockdown target gene expression. This class of molecules provides an excellent substrate for designing precision gene-modulatory therapeutics; however, quantifying on- and off-target dose response as measured by next-generation sequencing for this class of therapeutics has remained under-powered and ambiguous. Often in silico predictions of off-targets (ranked by edit tolerance) are used as putative off-target analysis in ASO and siRNA drug design. We construct a simple, effective theory of transcriptional dynamics and enzymatic activity in order to describe the transcriptome-wide response to these oligonucleotides. We establish rigorous quantification methods of off-target analysis in oligonucleotide drug design. We also extend the DESeq work [1, 2] of Negative Binomial noise in gene expression measurements to describe noise, including outliers, in OBM-dose response NGS experiments. We demonstrate the performance of our model on both synthetic and experimental Digital Gene Expression (DGE) data of dose response in ASO-treated cells. We present our analysis package, DoReSeq, as a freely available resource for the community. We hope this will elevate the standards of off-target analysis for such an important class of precision therapeutics.

pharmacology and toxicology↗

Mapping the landscape of magnetic field effects on neural regeneration and repair: a systematic review, mathematical model, and meta-analysis

Although magnetic field exposure is a well-established diagnostic tool, its use as a therapeutic in regenerative medicine is relatively new. Our goal here was to evaluate how magnetic fields affect neural repair in vitro by performing a systematic review of the literature, mathematical modeling, and meta-analyses. The 38 included articles presented with high heterogeneity, representing 13 cell types, magnitudes ranging from 0.0002-10,000 mT, frequencies from 0-150 Hz, and exposure times lasting from one hour to several weeks. Mathematical modeling revealed that increasing magnetic field magnitude increases neural progenitor cell (NPC) viability. For regenerative processes that were not influenced by magnitude, frequency, and time, we integrated data with meta-analyses. Results revealed that magnetic field exposure increases NPC proliferation while decreasing astrocytic differentiation. Collectively, our work identifies neural repair processes that may be most responsive to magnetic field exposure and provides a framework for novel hypothesis and technology development.

neuroscience↗