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About CRUK Scotland Institute

Find out what we do, how we do it and why we do what we do.

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Life in Glasgow

Find out about living and working in Glasgow and Scotland.

Our Research

Explore the science at CRUK Scotland Institute. Our research groups, the people who lead them, and how we work.

Operations

The teams and services that keep the Institute running and support our research.

Partners

The networks and organisations we work with to accelerate cancer research.

Careers & Study

Jobs, studentships and opportunities for students at every stage at our world-renowned cancer research institute.

Studentships

PhD opportunities at the Institute

Studentship Vacancies

Open studentships to apply for

Internships

For undergraduate and masters students

Molecular Technology

Group Leader:
Dr Graeme Clark

The Molecular Technology Service offers a diverse range of services to individuals and research groups throughout the Institute. The main focus of the facility has centred around the continuing expansion of our Next Generation Sequencing (NGS) services, allied to which, we also offer a range of Single Cell services predominantly focussing on single cell RNAseq. We process samples for a variety of cancer associated projects, in both mouse and human derived materials. We offer a full end-to-end service, from initial study design & planning, through sample QC, full library preparation, sequencing and data return. Allied to these advanced techniques, we continue to offer a range of standard molecular tests covering, plasmid purifications, Sanger sequencing and mycoplasma screening.

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Lab Members

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Recent Publications

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Recent Publications

Human-correlated genetic models identify precision therapy for liver cancer. Nature. 2025.

A Comparative Evaluation of Mediastinal Nodal SUVmax and Derived Ratios from (18)F-FDG PET/CT Imaging to Predict Nodal Metastases in Non-Small Cell Lung Cancer. Diagnostics (Basel). 2023;13:1209.

PD-1 and TIM-3 differentially regulate subsets of mouse IL-17A-producing γδ T cells. J Exp Med. 2023;220:e20211431.

Results of the Meso-ORIGINS feasibility study regarding collection of matched benign-mesothelioma tissue pairs by longitudinal surveillance. BMJ Open. 2023;13:e067780.

Glioblastoma extracellular vesicles influence glial cell hyaluronic acid deposition to promote invasiveness. Neuro-Oncology Advances. 2023;5:vdad067.

Absent expansion of AXIN2+ hepatocytes and altered physiology in Axin2CreERT2 mice challenges the role of pericentral hepatocytes in homeostatic liver regeneration. J Hepatol. 2023;78:1028-1036.

PTEN deficiency exposes a requirement for an ARF GTPase module for integrin-dependent invasion in ovarian cancer. The EMBO Journal. 2023.

Competing risks analysis for neutrophil to lymphocyte ratio as a predictor of diabetic retinopathy incidence in the Scottish population. BMC Med. 2023;21:304.

Spatial regulation of the glycocalyx component podocalyxin is a switch for prometastatic function. Sci Adv. 2023;9:eabq1858.

Phase II proof-of-concept study of atorvastatin in castration-resistant prostate cancer. BJU Int. 2023;131:236-243.

Epithelial TGFβ engages growth-factor signalling to circumvent apoptosis and drive intestinal tumourigenesis with aggressive features. Nat Commun. 2022;13:7551.

Traject3d allows label-free identification of distinct co-occurring phenotypes within 3D culture by live imaging. Nat Commun. 2022;13:5317.

p53-mediated redox control promotes liver regeneration and maintains liver function in response to CCl4. Cell Death Differ. 2022;29:514-526.

Cancer-associated fibroblasts require proline synthesis by PYCR1 for the deposition of pro-tumorigenic extracellular matrix. Nature Metabolism. 2022;4(6):693-710.

CXCR2 inhibition enables NASH-HCC immunotherapy. Gut. 2022;71:2093-2106.

Mesenchymal stromal cells cultured in physiological conditions sustain citrate secretion with glutamate anaplerosis. Mol Metab. 2022.

E3 ligase-inactivation rewires CBL interactome to elicit oncogenesis by hijacking RTK-CBL-CIN85 axis. Oncogene. 2021;40:2149-2164.

Developing a coordinate-based strategy to support cognitive targeted prostate biopsies and correlative spatial-histopathological outcome analysis. Asian J Androl. 2021;23:231-235.

NOTUM from Apc-mutant cells biases clonal competition to initiate cancer. Nature. 2021;594:430-435.

PPAR-gamma induced AKT3 expression increases levels of mitochondrial biogenesis driving prostate cancer. Oncogene. 2021;40:2355-2366.

Oncogenic BRAF, unrestrained by TGFbeta-receptor signalling, drives right-sided colonic tumorigenesis. Nat Commun. 2021;12:3464.

Nuclear-capture of endosomes depletes nuclear G-actin to promote SRF/MRTF activation and cancer cell invasion. Nat Commun. 2021;12:6829.

SLFN5 Regulates LAT1-Mediated mTOR Activation in Castration-Resistant Prostate Cancer. Cancer Res. 2021;81:3664-3678.

MICAL1 regulates actin cytoskeleton organization, directional cell migration and the growth of human breast cancer cells as orthotopic xenograft tumours. Cancer Lett. 2021;519:226-236.

The amino acid transporter SLC7A5 is required for efficient growth of KRAS-mutant colorectal cancer. Nat Genet. 2021;53:16-26.

A RAC-GEF network critical for early intestinal tumourigenesis. Nat Commun. 2021;12:56.

Selection of established tumour cells through narrow diameter micropores enriches for elevated Ras/Raf/MEK/ERK MAPK signalling and enhanced tumour growth. Small GTPases. 2021;12:294-310.

Serum Proteomics and Plasma Fibulin-3 in Differentiation of Mesothelioma From Asbestos-Exposed Controls and Patients With Other Pleural Diseases. J Thorac Oncol. 2021;16:1705-1717.

MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer. British Journal of Cancer. 2020;122:868-884.

BRF1 accelerates prostate tumourigenesis and perturbs immune infiltration. Oncogene. 2020;38:1797-1806.

Repression of the Type I Interferon pathway underlies MYC & KRAS-dependent evasion of NK & B cells in Pancreatic Ductal Adenocarcinoma. Cancer Discovery. 2020;10:872-887.

Activation of beta-catenin cooperates with loss of Pten to drive AR-independent castration-resistant prostate cancer. Cancer Research. 2020;80:576-590.

RUNX1 is a driver of renal cell carcinoma correlating with clinical outcome. Cancer Res. 2020;80:2325-2339.

Loss of BCL9/9l suppresses Wnt driven tumourigenesis in models that recapitulate human cancer. Nature Communications. 2019;10:723.

Epithelial NOTCH Signaling Rewires the Tumor Microenvironment of Colorectal Cancer to Drive Poor-Prognosis Subtypes and Metastasis. Cancer Cell. 2019;36:319-336.

Identification of a Clinically Relevant Signature for Early Progression in KRAS-Driven Lung Adenocarcinoma. Cancers. 2019;11:600.

Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization. Journal of Cell Science. 2019;132.

TGFbeta inhibition restores a regenerative response in acute liver injury by suppressing paracrine senescence. Sci Transl Med. 2018;10:eaan1230.

Replication Stress Drives Constitutive Activation of the DNA Damage Response and Radioresistance in Glioblastoma Stem-like Cells. Cancer Res. 2018;78(17):5060-5071.

Fam49/CYRI interacts with Rac1 and locally suppresses protrusions. Nat Cell Biol. 2018;20:1159-1171.

N-WASP Control of LPAR1 Trafficking Establishes Response to Self-Generated LPA Gradients to Promote Pancreatic Cancer Cell Metastasis. Developmental Cell. 2019;51:431-445.

The ERBB network facilitates KRAS-driven lung tumorigenesis. Sci Transl Med. 2018;10:eaao2565.

Calcium signalling links MYC to NUAK1. Oncogene. 2018;37:982-989.

Colorectal Tumors Require NUAK1 for Protection from Oxidative Stress. Cancer Discovery. 2018;8:632-647.

TGFβ pathway limits dedifferentiation following WNT and MAPK pathway activation to suppress intestinal tumourigenesis. Cell Death Differ. 2017;24:1681-1693.

Increased T-cell Infiltration Elicited by Erk5 Deletion in a Pten-Deficient Mouse Model of Prostate Carcinogenesis. Cancer Res. 2017;77:3158-3168.

Sprouty2 loss-induced IL6 drives castration-resistant prostate cancer through scavenger receptor B1. EMBO Mol Med. 2018;10.

Histone chaperone HIRA deposits histone H3.3 onto foreign viral DNA and contributes to anti-viral intrinsic immunity. Nucleic Acids Res. 2017;45(20):11673-11683.

Transcriptomic profiling of human breast and melanoma cells selected by migration through narrow constraints. Sci Data. 2017;4:170172.

Bromodomain Protein BRD4 Is a Transcriptional Repressor of Autophagy and Lysosomal Function. Mol Cell. 2017;66:517-532.

Coordination by Cdc42 of Actin, Contractility, and Adhesion for Melanoblast Movement in Mouse Skin. Curr Biol. 2017;27:624-637.

Sleeping Beauty screen reveals Pparg activation in metastatic prostate cancer. Proc Natl Acad Sci USA. 2016;113:8290-8295.

The initiator methionine tRNA drives cell migration and invasion leading to increased metastatic potential in melanoma. Biol Open. 2016;5:1371-1379.

Group Leader

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Graeme Clark*

Information about this team member’s research interests, experience, and background will be added soon. Please check back for updates.

Lab Members

Senior Scientific Officer

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Jillian Murray*

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Senior Scientific Officer

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Andrew Keith*

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Affiliate Support Scientistr

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Abbie McFarlane*

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Affiliate Support Scientist

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Anna Shearer*

Information about this team member’s research interests, experience, and background will be added soon. Please check back for updates.