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Biology subjects

Gratz, D.

Publications and source records attributed to Gratz, D..

2 recordsLinked to original sources

Mitochondrial ROS-induced metabolic alterations differentially regulate ferroptosis sensitivity

Ferroptosis is an iron-catalyzed lipid peroxidation (LP)-dependent cell death. Induction of mitochondrial ROS (mtROS) is crucial in the execution of ferroptosis, but the underlying mechanism remains unclear. Through utilizing the hepatocyte model and RNA-seq analysis, we determined mtROS-dependent metabolic changes that modulate ferroptosis sensitivity. Elevated mtROS production and LP suppressed glycolysis, fatty acid oxidation, and citric acid cycle activity, representing adaptive responses that protect cells from ferroptosis. On the other hand, mtROS-driven signaling impaired glutathione biosynthesis and downregulated genes involved in coenzyme Q10 (CoQ) biosynthesis, including those in the mevalonate pathway and CoQ8A, a key stabilizer of the CoQ biosynthetic complex. Importantly, silencing CoQ8A expression enhanced, whereas overexpression of CoQ8A reduced, ferroptosis susceptibility of hepatocytes and various cancer cell types. The mtROS-mediated downregulation of CoQ8A was dependent on farnesoid X receptor (FXR) and retinoid X receptors (RXRs). Collectively, our findings highlight that mtROS promotes ferroptosis, at least in part, by suppressing glutathione and CoQ biosynthesis.

cell biology↗

Evaluating the practical aspects and performance of commercial single-cell RNA sequencing technologies

The rapid development of updated and new commercially available single-cell transcriptomics platforms provides users with a range of experimental options. Cost, sensitivity, throughput, flexibility, and ease of use, all influence the selection of an optimal workflow. We performed a comprehensive comparison of single-cell transcriptomic approaches using multiple standardized PBMCs from different donors. We report on standard single-cell metrics including cell recovery, sequencing efficiency, sensitivity, cell annotation, and differential gene expression for seven recently available kits that interrogate whole transcriptome mRNA, and two that include TCR profiling. We also discuss workflow throughput, sample requirements, timing, cost, and labor as critical factors to consider. In addition to variable experimental constraints imposed by each platform, our findings highlight differences in cell recovery and sensitivity, which we found to significantly influence the ability to resolve cell subtypes. This work provides a basis by which users can balance performance and practical considerations when selecting a single-cell RNA sequencing platform.

genomics↗