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Biology subjects

Morris, C. J.

Publications and source records attributed to Morris, C. J..

5 recordsLinked to original sources

Affinity-selected peptide ligands specifically bind i-motif DNA and modulate c-Myc gene expression

c-Myc is an oncogene that is dysregulated in ~70% of cancers. Its multifaceted function complicates effective drug targeting of the protein. i-Motif DNA structures in gene promotor regions have gained attention for their potential role in modulation of gene expression. These include the i-motif formed by the cytosine-rich sequence that lies upstream of the key P1 promotor of the c-Myc gene. Currently, selective ligands interacting with i-motif structures are limited. Here, peptide ligands for the i-motif from the promoter of c-Myc were identified via phage display. Hit peptides were filtered for selective binding to i-motif structures over other DNA structures using displacement assays and DNA melting experiments. Two lead peptides were found to produce dose-dependent changes on c-Myc gene expression after delivery into HEK293 cells expressing a c-Myc luciferase reporter construct. These leads may be used as chemical tools for the manipulation of c-Myc i-motif in vitro and have potential to be developed into cell-permeable peptidomimetics for delivery in vivo. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=78 SRC="FIGDIR/small/656635v2_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@18a4e9aorg.highwire.dtl.DTLVardef@12e72b0org.highwire.dtl.DTLVardef@6ba866org.highwire.dtl.DTLVardef@1fcd338_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗

P3ANUT: An enhanced DNA sequencing analysis platform for uncovering and correcting errors in peptide phage display library screening

Display technologies are used extensively in the discovery of peptides and antibodies towards the development of new medicines and diagnostic tools. Phage display technology enables the filtering of <1010 random peptides/antibodies down to and enriched pool of candidates with favourable binding affinities. In recent years, next-generation DNA sequencing technologies have increased the precision and accuracy with which the peptide sequences of phage display library clones are identified. Inaccuracies in DNA sequencing such as substitutions, insertions and deletions in the library oligonucleotide region have the potential to result in the identification of erroneous candidate sequences. Here, we describe a Python Pipeline for Phage Analysis through a Normative Unified Toolset (P3ANUT) which employs Levenshtein distance, k-mer approaches and a novel encoding scheme on paired-end sequencing outputs to correct sequencing errors from next-generation sequencing outputs of display library screens. We introduce an easy-to-use and highly customisable computational tool with graphical user- and command line interfaces to process entire datasets within a single input, as well as visualisation tools for candidate analysis and data generation. P3ANUT shows significant improvements in read recovery, overall read quality, and runtime compared to a previously published pipeline. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=96 SRC="FIGDIR/small/648809v1_ufig1.gif" ALT="Figure 1"> View larger version (17K): org.highwire.dtl.DTLVardef@15e1172org.highwire.dtl.DTLVardef@cb9097org.highwire.dtl.DTLVardef@81cabcorg.highwire.dtl.DTLVardef@1253865_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioinformatics↗

Structural Insights into Regulation of Insulin Expression Involving i-Motif DNA Structures in the Insulin-Linked Polymorphic Region.

The insulin linked polymorphic region (ILPR) is a variable number of tandem repeats (VNTR) region of DNA in the promoter of the insulin gene that regulates transcription of insulin. This region is known to form the alternative DNA structures, i-motifs and G-quadruplexes. Individuals have different sequence variants of VNTR repeats and although previous work investigated the effects of some variants on G-quadruplex formation, there is not a clear picture of the relationship between the sequence diversity, the DNA structures formed, and the functional effects on insulin gene expression. Here we show that different sequence variants of the ILPR form different DNA secondary structures and insulin expression is dependent on formation of i-motif and G-quadruplex structures. The first crystal structure and dynamics of an intramolecular i-motif also reveal sequences within the loop regions forming additional stabilising interactions, which are critical to formation of the stable i-motif structures that modulate insulin expression. The outcomes of this work reveal the detail in formation of stable i-motif DNA structures, with potential for rational based drug design for compounds to alter insulin gene expression.

biophysics↗

Modeling Mechanical Feedback Mechanisms in a Multiscale Sliding Filament Model of Lymphatic Muscle Pumping

The lymphatic system maintains bodily fluid balance by returning interstitial fluid to the venous system. Flow can occur through a combination of extrinsic pumping, due to forces from surrounding tissues, and intrinsic pumping involving contractions of muscle in the lymphatic vessel walls. Lymph transport is important not only for fluid homeostasis, but also for immune function, as lymph is a carrier for immune cells. Lymphatic muscle cells exhibit cardiac-like phasic contractions to generate flow and smooth-muscle-like tonic contractions to regulate flow. Lymphatic vessels therefore act as both active pumps and conduits. Lymphatic vessels are sensitive to mechanical stimuli, including flow-induced shear stresses and pressure-induced vessel stretch. These forces modulate biochemical pathways, leading to changes in intracellular calcium and interaction with regulatory and contractile proteins. In a multiscale computational model of phasic and tonic contractions in lymphatic muscle coupled to a lumped-parameter model of lymphatic pumping, we tested different models of the mechanical feedback mechanisms exhibited by lymphatics in experiments. Models were validated using flow and pressure experiments not used in the models construction. The final model shows that with flow-induced shear stress modulation, there is a small change in flow rate but an increase in muscle efficiency. A better understanding of the mechanobiology of lymphatic contractions can help guide future lymphatic vessel experiments, providing a basis for developing better treatments for lymphatic dysfunction.

bioengineering↗

A hydrogel-based model of aortic stiffness reveals that microtubules are novel regulators of smooth muscle cell hypertrophy

During ageing, the extracellular matrix of the aortic wall becomes more rigid. In response, VSMCs generate enhanced contractile forces. Our previous findings demonstrate that VSMC volume is enhanced in response to increased matrix rigidity, but our understanding of mechanisms regulating this process remain incomplete. In this current study, we show that microtubule stability in VSMCs is reduced in response to enhanced matrix rigidity via piezo1-mediated Ca2+ influx. Moreover, VSMC volume and Ca2+ flux was regulated by microtubule dynamics; microtubule stabilising agents reduced both VSMC volume and Ca2+ flux on rigid hydrogels, whereas microtubule destabilising agents increased VSMC volume and Ca2+ flux on pliable hydrogels. Finally, we show that disruption of the microtubule deacetylase HDAC6 uncoupled these processes and increased K40 alpha tubulin acetylation, VSMC volume and Ca2+ flux on pliable hydrogels, but did not alter VSMC microtubule stability. These findings uncover a microtubule stability switch that controls VSMC volume by regulating Ca2+ flux. Together, these data demonstrate that manipulation of microtubule stability can modify VSMC matrix rigidity response.

cell biology↗