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Storchova, Z.

Publications and source records attributed to Storchova, Z..

2 recordsLinked to original sources

mitoXplorer, a visual data mining platform to systematically analyze and visualize mitochondrial expression dynamics and mutations

BackgroundMitochondria produce cellular energy in the form of ATP and are involved in various metabolic and signaling processes. However, the cellular requirements for mitochondria are different depending on cell type, cell state or organism. Information on the expression dynamics of genes with mitochondrial functions (mito-genes) is embedded in publicly available transcriptomic or proteomic studies and the variety of available datasets enables us to study the expression dynamics of mito-genes in many different cell types, conditions and organisms. Yet, we lack an easy way of extracting these data for gene groups such as mito-genes.\n\nResultsHere, we introduce the web-based visual data mining platform mitoXplorer, which systematically integrates expression and mutation data of mito-genes. The central part of mitoXplorer is a manually curated mitochondrial interactome containing [~]1200 genes, which we have annotated in 35 different mitochondrial processes. This mitochondrial interactome can be integrated with publicly available transcriptomic, proteomic or mutation data in a user-centric manner. A set of analysis and visualization tools allows the mining and exploration of mitochondrial expression dynamics and mutations across various datasets from different organisms and to quantify the adaptation of mitochondrial dynamics to different conditions. We apply mitoXplorer to quantify expression changes of mito-genes of a set of aneuploid cell lines that carry an extra copy of chromosome 21. mitoXplorer uncovers remarkable differences in the regulation of the mitochondrial transcriptome and proteome due to the dysregulation of the mitochondrial ribosome in retinal pigment epithelial trisomy 21 cells which results in severe defects in oxidative phosphorylation.\n\nConclusionsWe demonstrate the power of the visual data mining platform mitoXplorer to explore expression data in a focused and detailed way to uncover underlying potential mechanisms for further experimental studies. We validate the hypothesis-creating power of mitoXplorer by testing predicted phenotypes in trisomy 21 model systems. MitoXplorer is freely available at http://mitoxplorer.ibdm.univ-mrs.fr. MitoXplorer does not require installation nor programming knowledge and is web-based. Therefore, mitoXplorer is accessible to a wide audience of experimental experts studying mitochondrial dynamics.

bioinformatics

Single chromosome gains can function as metastasis suppressors and metastasis promoters

Most human tumors display chromosome-scale copy number alterations, and high levels of aneuploidy are frequently associated with advanced disease and poor patient prognosis. To examine the relationship between aneuploidy and cancer progression, we generated and analyzed a series of congenic human cell lines that harbor single extra chromosomes. We find that different aneuploidies can have distinct effects on invasive behavior: across 13 different cell lines, 12 trisomies suppressed invasiveness or were largely neutral, while a single trisomy increased metastatic behavior by triggering a partial epithelial-mesenchymal transition. In contrast, chromosomal instability, which can lead to the development of aneuploidy, uniformly suppressed cellular invasion. By analyzing genomic copy number and survival data from 10,133 cancer patients, we demonstrate that specific aneuploidies are associated with distinct clinical outcomes, and the acquisition of certain aneuploidies is in fact linked with a favorable prognosis. Thus, aneuploidy is not a uniform driver of malignancy, and different chromosome copy number changes can uniquely influence tumor progression. At the same time, the gain of a single chromosome is capable of inducing a profound cell state transition, underscoring how genomic plasticity can engender phenotypic plasticity and lead to the acquisition of enhanced metastatic properties.

cancer biology