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Biology subjects

Henning, R. H.

Publications and source records attributed to Henning, R. H..

2 recordsLinked to original sources

Single-cell X-chromosome inactivation analysis links biased chimerism to differential gene expression and epigenetic erosion

Female cells randomly inactivate one X-chromosome, resulting in cellular mosaicism. Determining the bias in X-chromosomal inactivation (XCI) at single cell level may be relevant for understanding diseases prevalent in females. Here, we introduce a computational method that determines XCI profiles at single-cell level using solely sc/snRNA-Seq data. XCI analysis of skin cells from hybrid mice validates our approach and reveals biased inactivation of X-chromosomes among cell types. In human lung and brain cells, XCI status can be determined in 33.8% and 23.6% of cells. Among the patients, cells with opposite inactivation patterns differently express members of specific gene families and pathways. Alzheimers disease patients show reversal of XCI in cortical microglia and regional increase in biallelic expression denoting epigenetic erosion. We provide a robust utility to explore the degree and impact of XCI in single cell expression data.

bioinformatics↗

Liver transcriptomic and methylomic analyses identify transcriptional MAPK regulation in facultative hibernation of Syrian hamster

Hibernation consist of alternating torpor/arousal phases, during which animals cope with repetitive hypothermia and ischemia-reperfusion. Due to limited transcriptomic and methylomic information for facultative hibernators, we here conducted RNA and whole genome bisulfite sequencing in liver of hibernating Syrian hamster (Mesocricetus auratus). Gene Ontology analysis was performed on 844 differentially expressed genes (DEGs) and confirmed the shift in metabolic fuel utilization, inhibition of RNA transcription and cell cycle regulation as found in seasonal hibernators. We show a so far unreported suppression of MAPK and PP1 pathways. Notably, hibernating hamsters showed upregulation of MAPK inhibitors (DUSPs and SPRYs) and reduced levels of MAPK induced transcription factors. Promoter methylation was found to modulate the expression of genes targeted by these transcription factors. In conclusion, we document gene regulation between hibernation phases, which may aid the identification of pathways and targets to prevent organ damage in transplantation or ischemia-reperfusion.

genomics↗