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Watkins, R.

Publications and source records attributed to Watkins, R..

3 recordsLinked to original sources

TP53 and RB1 are predictive genetic biomarkers for sensitivity to cytarabine in gliomas

Therapeutic progress in glioma, one of the most lethal human cancers, has been limited by molecular heterogeneity and lack of biomarker-driven drug deployment. Here we used a proprietary large-scale CRISPRi screening in primary patient-derived glioma tumorspheres to identify genetic vulnerabilities and nominate pharmacologically tractable targets. DNA polymerase-linked dependencies emerged as top-ranked hits, which we validated through orthogonal viability assays. Network-based integration of dependency data with drug-target relationships nominated cytarabine, a nucleoside analogue already approved for intrathecal use, as a candidate agent targeting this axis. Dose-response profiling across molecularly diverse glioma models revealed substantial heterogeneity in cytarabine sensitivity (IC50 range: 0.04-9.8 {micro}M). Machine learning analysis of whole-genome sequencing data identified TP53 wild-type and RB1-wild-type status as dominant predictors of response, with double wild-type lines showing three standard deviations (3 s.d.) increased sensitivity compared to altered models. Prospective validation in an independent cohort confirmed that TP53/RB1 genotype stratifies cytarabine activity. These findings establish a mechanistically anchored, biomarker-restricted repurposing opportunity for cytarabine in leptomeningeal glioma, enabling rational prioritisation of an accessible therapy in a molecularly defined patient subset.

cancer biology↗

Physical determinants of perceived vibration intensity: Insights from haptic feedback given at the wrist

Understanding how mechanical vibrations applied to the skin translate into touch sensations is key to advancing tactile interfaces, from non-invasive neuroprosthetics to effective haptic tools. We investigate how modulating vibration waveform, frequency, and amplitude of a wrist-worn vibrotactile device influence perceived touch intensity, while simultaneously measuring accelerations at the actuator and skin surface. Thirty participants provided free-magnitude estimates of perceived intensity, showing that perceived intensity is significantly influenced by all parameters, while being strongly correlated with actuator and skin accelerations. Modulating the waveform shape showed that square waves are consistently rated as more intense. Vibration frequency exerted a non-linear influence, with perceived intensity peaking ~150 Hz and secondary acceleration and perceptual peaks were found at low frequencies for square and sawtooth waveforms. Thus, the skin faithfully preserves the mechanical signature of vibrations, which are clearly differentiated perceptually. These findings demonstrate that precise tactile characterization, both physically and perceptually, is essential, where device vibrations delivered to the skin determine what is perceived to a very high degree. As vibrations are relatively easy to control and apply, this opens up opportunities to convey a multitude of sensations, from brief taps to pressure, as well as more complex percepts like roughness and texture.

neuroscience↗

The Splicing Factor PTBP1 interacts with RUNX1 and is Required for Leukemia Cell Survival

Runt-related Transcription Factor 1 (RUNX1) is essential for definitive hematopoiesis and is among the most frequently mutated genes in leukemia. Previous work from our lab demonstrated that Histone Deacetylase 1 (HDAC1), a known RUNX1 partner, is unexpectedly required for active transcription suggesting a non-histone role for HDAC1 regulating components of the RUNX1 complex. Here, we use proteomics, genomics, and long-read transcriptomics to identify novel RUNX1 interacting partners and decipher their role in gene regulation and RNA splicing in leukemia cells. We demonstrate that Polypyrimidine Tract Binding Protein 1 (PTBP1) interacts with RUNX1 in an HDAC1 dependent manner. Chromatin profiling revealed extensive genome-wide overlap in sites occupied by RUNX1 and PTBP1, with significant enrichment at promoters of actively transcribed genes. Loss of PTBP1 in AML cells led to widespread alterations in RNA splicing and decreased expression of genes whose promoters are bound by both factors, including metabolic genes. In agreement with these findings, we found that loss of PTBP1 reduced glycolysis and glucose uptake and ultimately caused cell death. Based on our data, we propose that the interaction between RUNX1 and PTBP1 facilitates expression of metabolic proteins essential for leukemia cell growth and survival. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=92 SRC="FIGDIR/small/654547v1_ufig1.gif" ALT="Figure 1"> View larger version (20K): org.highwire.dtl.DTLVardef@74e3b9org.highwire.dtl.DTLVardef@12a090org.highwire.dtl.DTLVardef@eb5a48org.highwire.dtl.DTLVardef@17465dc_HPS_FORMAT_FIGEXP M_FIG C_FIG KEY POINTSO_LIPTBP1 binds RUNX1 in a HDAC1-dependent manner and co-localizes to the promoters of target genes in leukemia cells. C_LIO_LILoss of PTBP1 decreases expression of key metabolic genes, resulting in decreased cell growth and glycolysis, increased sensitivity to chemotherapy, and cell death. C_LI

cancer biology↗