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Kohli, J.

Publications and source records attributed to Kohli, J..

2 recordsLinked to original sources

Stress-responsive enhancer RNAs couple chromatin reprogramming to post-transcriptional control of senescence

BackgroundCellular senescence is accompanied by extensive epigenomic reprogramming leading to changes in enhancer RNA levels, yet how enhancer activity is translated into functional RNA-level regulation remains unclear. Here we investigate how enhancer reprogramming during senescence impacts functional RNA-level regulation by eRNAs. ResultsBy integrating time-resolved transcriptomic analyses across multiple primary human cell types, we identify a set of recurrently dysregulated senescence-associated enhancer RNAs (SAeRs). We focus on one of these transcripts, EN526, which is reproducibly repressed during senescence while its locus remains broadly stable across cell states. EN526 eRNA exhibits cytoplasmic localisation and extensive eRNA-mRNA interactions, and cytoplasmic depletion of EN526 recapitulates its senescence-associated loss and alters the stability and translation of the cell-cycle regulator CDKN2C. EN526 perturbation further mediates stress responses, cellular survival, and extracellular remodelling associated with the senescence phenotype. ConclusionTogether, these findings show that SAeRs changes accompanying enhancer reprogramming in senescence are not merely passive events but can act as functional intermediates linking enhancer dynamics to post-transcriptional regulatory networks that phenocopy key senescence-associated cellular features. Extending this model, genetic associations at the EN526 locus further connect this regulatory axis to age-related traits and circulating protein phenotypes, supporting its broader relevance to human ageing and disease.

genomics↗

Decreased BOLD signal variability in middle-aged and older adults on the Autism Spectrum

PurposeAutism spectrum disorder (ASD) is a lifelong neurodevelopmental disorder. Preliminary evidence suggests an increased risk for accelerated or early-onset cognitive and neurological decline in ASD. While it is well established that brain development in children, adolescents and young adults with ASD diverges from neurotypical (NT) peers, it is unknown how brain function is impacted in older adults with ASD. Understanding age-related changes of brain function in ASD is crucial to establish best practices for cognitive and health screenings in adults with ASD and develop interventions that might reduce the risk of accelerated decline. Decreases in blood-oxygenation-level-dependent (BOLD) signal variability (BSV) in typical aging have been shown across multiple studies, likely reflecting declining Gamma-Aminobutyric Acid (GABA) activity, and is associated with poorer cognitive performance. We hypothesized that adults with ASD would show reduced BSV compared to the NT group, with steeper negative age associations in the ASD than NT group. MethodsThe study assessed BSV in a cohort of adults (40-70 years), 28 with ASD and 39 age-matched NT. General linear models tested for main effects of diagnostic group (ASD, NT), age and group-by-age interactions (controlling for RMSD). LimitationsOur cross-sectional data and small sample size highlight the need for longitudinal analyses in larger cohorts, alongside exploring links to cognitive function. Additionally, psychotropic medications used by our cohort of adults on the autism spectrum may have affected BSV. ResultsSignificant group-by-age interactions were observed for the right insular, left temporal occipital fusiform, right frontal orbital and right inferior lateral occipital cortex, with BSV showing strong negative associations with age in the ASD but not NT group. ConclusionThese findings suggest that BSV decreases may occur earlier in adults on the autism spectrum compared to their neurotypical peers, possibly indicating accelerated aging. However, given limited prior research, additional longitudinal analyses will be necessary to determine if the results presented truly reflect accelerated aging or arise from lifelong persistent differences in brain function.

neuroscience↗