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Elena Hidalgo

Publications and source records attributed to Elena Hidalgo.

2 recordsLinked to original sources

Experimental workflows for the accurate identification of mitochondrial redox events.

The study of redox biology has been growing constantly since the last decades. Over these years, redox processes have been linked to an extraordinarily wide range of physiological and pathological events, becoming recognized as central mechanisms underlying many of them. In this context, it becomes essential to understand the advantages and limitations of the tools under use, to recognize the specific controls required for each measurement and to accurately distinguish between distinct redox mechanisms. So far, multiple and excellent reviews have dealt with either the tools, the protocols or the mechanisms involved in reactive oxygen species (ROS) production and quenching, a.k.a. redox events. However, a review outlining the workflows to appropriately detect them is still lacking. We define workflow as the combination of tools, methods and mechanistic knowledge that allow the definition of a specific redox event. In this review, we aim to provide an optimal workflow for the research on mitochondrial redox events. To this end, we first summarize the molecular tools available to measure and quench ROS. We then explain the mechanisms of ROS production and scavenging in several of the cellular compartments, with special focus on mitochondria, as well as their implication in physiology and disease. Finally, we use the knowledge in all sections to build a recommended experimental workflow, illustrated by several cases of study. This review will enable the reader to understand how specific mitochondrial redox events can be accurately measured, considering all technical, methodological and mechanistical variables and limitations required for their reliable detection and interpretation.

(Patho)physiology

Nrm1 is a bistable switch connecting cell cycle progression to transcriptional control.

Entry into the cell cycle requires activation of G1 cyclin-dependent kinases (CDKs) and the G1/S transcriptional program. In fission yeast, the MBF complex is the main transcription factor driving early cell-cycle gene expression. MBF-dependent transcription is activated in metaphase and repressed at the end of S phase by a feedback loop involving the cyclin Cig2 and co-repressors Nrm1 and Yox1. While replicative stress inactivates Yox1 via phosphorylation, the mechanism that activates MBF during an unperturbed cell cycle remains unclear. Here, we identify Nrm1 as the key target of cell cycle regulation in a two-step control mechanism. First, CDK1 phosphorylates Nrm1 in metaphase, leading to its release-along with Yox1-from chromatin. Second, unphosphorylated Nrm1, generated either by dephosphorylation or de novo synthesis, is degraded during anaphase, preventing its re-association with MBF until the end of the next S phase. Together, these parallel pathways create a precisely timed window of MBF activation, ensuring proper cell cycle progression and preserving genomic stability.

Schizosaccharomyces