Search bioRxiv⌕ Search

Biology subjects

van Dijk, C.

Publications and source records attributed to van Dijk, C..

2 recordsLinked to original sources

Genomewide paired DNA-RNAseq analyses to discover intronic splice mutation hotspots in neurological disorders

Explaining missing heritability in rare disorders requires effective methods to interpret genetic variants. Sequence-to-function models such as SpliceAI support discovery of splice altering variants but filtering their output to identify pathogenic mutations remains challenging. We developed SpliPath to address 2 unmet needs in this process. First, SpliPath links the output of SpliceAI with reference transcriptomics data. This allows users to identify genetic variants that induce unannotated splice isoforms selectively expressed in disease models or patient tissue. Second, SpliPath aggregates variants with similar functional consequences into collapsed splicing quantitative trait loci (csQTLs) for more powerful genetic association analyses. We first used SpliPath to annotate whole genome sequencing (WGS) of 9,467 ALS patients and controls using RNAseq data from an iPSC model of TDP-43 dysfunction. Through this, SpliPath identified 53 variants predicted to enhance cryptic exon (CE) retention events associated with a core ALS pathomechanism. We then applied SpliPath to 294 ALS patients where both WGS and RNAseq were available and discovered missing genetic risk in the known ALS gene KIF5A. This revealed a first of kind intronic mutation hotspot that was validated using minigene reporter assays. Finally, using the same RNAseq data we then predicted 754 candidate csQTL for an independent WGS cohort of 6,625 ALS patients and 2,472 controls. Unbiased genomewide csQTL association testing successfully recovered KIF5A and nominated EPG5 as a potential pathogenic gene. These effects were undetectable using simplistic SpliceAI gene burden tests. Collectively, our study demonstrates the utility of SpliPath for uncovering missing heritability in rare disorders.

bioinformatics↗

Deconvolution Of Hematopoietic Stem/Progenitor Cell Signaling Predicts Inflammatory Niche Remodeling To Be A Determinant Of Tissue Failure And Outcome In Human AML

Cancer initiation is orchestrated by interplay between tumor-initiating cells and their stromal/immune environment. Here, by adapted scRNAsequencing, we decipher the predicted signaling between tissue-resident hematopoietic stem/progenitor cells (HSPCs) and their neoplastic counterparts with their native niches in the human bone marrow. LEPR+ stromal cells are identified as central regulators of hematopoiesis through predicted interactions with all cells in the marrow. Inflammatory niche remodeling and the resulting deprivation of critical HSPC regulatory factors is predicted to repress distinct high-output HSC subsets in NPM1-mutated AML, with relative resistance of clonal cells. Stromal gene signatures reflective of niche remodeling are associated with reduced relapse rates and favorable outcome after chemotherapy, across all genetic risk categories. Elucidation of the intercellular signaling defining human AML, thus, predicts that inflammatory remodeling of stem cell niches drives tissue repression and clonal selection, but may pose a vulnerability for relapse-initiating cells in the context of chemotherapeutic treatment. statement of significanceTumor-promoting inflammation is considered an enabling characteristic of tumorigenesis, but mechanisms remain incompletely understood. By deciphering the predicted signaling between tissue-resident stem cells and their neoplastic counterparts with their environment, we identify inflammatory remodeling of stromal niches as a determinant of normal tissue repression and clinical outcome in human AML. Key pointsO_LIA comprehensive taxonomy of the predicted interactions between LEPR+ stromal niches, HSPCs and adaptive/innate immune cells in the human NBM. C_LIO_LIInflammation-associated decline of stromal niches in AML represses residual normal hematopoiesis with relative resistance of leukemic cells. C_LIO_LIInflammatory decline of stromal niches is associated with reduced relapse risk and favorable outcome. C_LI

cancer biology↗