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Humphreys, J. L.

Publications and source records attributed to Humphreys, J. L..

3 recordsLinked to original sources

Shape-constrained, changepoint additive models for time series omics data with cpam

Time series omics experiments are critical for the study of a wide range of biological processes such as cell differentiation and developmental programs or responses to pathogens and environmental cues. While statistical tools for differential analysis across static conditions have matured, comparable comprehensive methodology is lacking for time series data. Here, we introduce cpam, a novel time series method and user-friendly software that performs temporal differential analysis of omics data for case-only or case-control time series, incorporating quantification uncertainty. Powerful features of cpam include changepoint detection and shape-constrained temporal trend estimation to allocate omics data into similar clusters. Performance evaluation shows that cpam outperforms existing time series methods in terms of control of the false discovery rate versus power to detect temporal changes and accurate changepoint estimation. In particular, we find that trend-based models provide superior performance compared to pairwise comparisons, even with as few as six time points. The software provides an interactive interface with modern customizable visualisations, offering both graphical and statistical insight into complex molecular processes. Application to published transcriptome data illustrates RNA isoform-level modelling together with high resolution clustering during human embryogenesis and the identification of 910 novel genes differentially expressed in response to excess light in Arabidopsis. This method has the potential for application to a range of omics data, including single-cell analyses via pseudobulked data, providing the analytical power to reveal complex temporal patterns of gene expression in any biological system.

bioinformatics↗

The transcription factor bZIP11 acts antagonistically with trehalose 6-phosphate to inhibit shoot branching

The ontogenetic regulation of shoot branching allows plants to adjust their architecture in accordance with the environment. This process is due to the regulation of axillary bud outgrowth into branches, which can be induced by increasing sugar availability to the buds through decapitation of the shoot tip. Different sugar signalling components have been identified in the induction of shoot branching. However, the molecular components that maintain bud dormancy in response to sugar starvation remain largely unknown. Here, we show at the genetic level that basic leucine zipper 11 (bZIP11), a transcription factor that plays important roles in response to sugar starvation in plants, inhibits shoot branching in Arabidopsis thaliana. Physiology experiments demonstrated that bZIP11 protein levels are decreased by decapitation. Molecular and genetic evidence suggests that bZIP11 acts in a negative feedback loop with trehalose 6-phosphate (Tre6P), a sugar signal that promotes shoot branching. Our data also suggest that the central energy sensor SUCROSE NON-FERMENTING 1 RELATED KINASE1 (SnRK1), alleviates the inhibitory effect of Tre6P on bZIP11 protein accumulation and inhibits shoot branching. Altogether, these data provide a working model that involves bZIP11, Tre6P and SnRK1 in the regulation of shoot branching.

plant biology↗

Strigolactone-dependent gene regulation requires chromatin remodeling

Strigolactones (SL) function as plant hormones in control of multiple aspects of plant development. Regulation of gene expression by SL is a critical component of SL function. Immediate early gene regulation by SL remains unexplored due to difficulty in dissecting early from late gene expression responses to SL in whole plants. We used leaf-derived Arabidopsis protoplasts to explore early (5-180 minutes) changes in gene expression induced by SL by employing RNA-seq and ATAC-seq. We discovered over 1500 genes regulated by SL as early as 20 minutes, and up to 3669 genes across the entire time course of the experiment, indicative of rapid, dynamic regulation of gene expression in response to SLs. We identified 1447 regions of changing chromatin accessibility in response to SL that are likely to harbour SL cis-regulatory elements and cognate candidate trans-acting factors regulated early by SL. Importantly, we discovered that this extensive transcriptomic reprogramming requires the SYD-containing SWI/SNF chromatin remodelling complex(es) and regulates other chromatin remodellers. This study therefore provides the first evidence that SL signalling requires regulation of chromatin accessibility, and it identifies previously unknown transcriptional targets of strigolactones. One sentence summaryStrigolactone regulated gene expression reprogramming requires chromatin remodelling by SPLAYED.

plant biology↗