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1.
J Med Genet ; 55(11): 721-728, 2018 11.
Article in English | MEDLINE | ID: mdl-30049826

ABSTRACT

BACKGROUND: Rare genetic conditions are frequent risk factors for, or direct causes of, paediatric intensive care unit (PICU) admission. Such conditions are frequently suspected but unidentified at PICU admission. Compassionate and effective care is greatly assisted by definitive diagnostic information. There is therefore a need to provide a rapid genetic diagnosis to inform clinical management.To date, whole genome sequencing (WGS) approaches have proved successful in diagnosing a proportion of children with rare diseases, but results may take months to report. Our aim was to develop an end-to-end workflow for the use of rapid WGS for diagnosis in critically ill children in a UK National Health Service (NHS) diagnostic setting. METHODS: We sought to establish a multidisciplinary Rapid Paediatric Sequencing team for case selection, trio WGS, rapid bioinformatics sequence analysis and a phased analysis and reporting system to prioritise genes with a high likelihood of being causal. RESULTS: Trio WGS in 24 critically ill children led to a molecular diagnosis in 10 (42%) through the identification of causative genetic variants. In 3 of these 10 individuals (30%), the diagnostic result had an immediate impact on the individual's clinical management. For the last 14 trios, the shortest time taken to reach a provisional diagnosis was 4 days (median 8.5 days). CONCLUSION: Rapid WGS can be used to diagnose and inform management of critically ill children within the constraints of an NHS clinical diagnostic setting. We provide a robust workflow that will inform and facilitate the rollout of rapid genome sequencing in the NHS and other healthcare systems globally.


Subject(s)
Critical Illness , Genetic Diseases, Inborn/diagnosis , Genetic Diseases, Inborn/genetics , Whole Genome Sequencing , Child , Disease Management , Genome-Wide Association Study/methods , Genome-Wide Association Study/standards , Humans , Intensive Care Units, Pediatric , Rare Diseases , Whole Genome Sequencing/methods , Workflow
2.
Acta Neuropathol ; 135(5): 757-777, 2018 05.
Article in English | MEDLINE | ID: mdl-29541918

ABSTRACT

Adamantinomatous craniopharyngiomas (ACPs) are clinically challenging tumours, the majority of which have activating mutations in CTNNB1. They are histologically complex, showing cystic and solid components, the latter comprised of different morphological cell types (e.g. ß-catenin-accumulating cluster cells and palisading epithelium), surrounded by a florid glial reaction with immune cells. Here, we have carried out RNA sequencing on 18 ACP samples and integrated these data with an existing ACP transcriptomic dataset. No studies so far have examined the patterns of gene expression within the different cellular compartments of the tumour. To achieve this goal, we have combined laser capture microdissection with computational analyses to reveal groups of genes that are associated with either epithelial tumour cells (clusters and palisading epithelium), glial tissue or immune infiltrate. We use these human ACP molecular signatures and RNA-Seq data from two ACP mouse models to reveal that cell clusters are molecularly analogous to the enamel knot, a critical signalling centre controlling normal tooth morphogenesis. Supporting this finding, we show that human cluster cells express high levels of several members of the FGF, TGFB and BMP families of secreted factors, which signal to neighbouring cells as evidenced by immunostaining against the phosphorylated proteins pERK1/2, pSMAD3 and pSMAD1/5/9 in both human and mouse ACP. We reveal that inhibiting the MAPK/ERK pathway with trametinib, a clinically approved MEK inhibitor, results in reduced proliferation and increased apoptosis in explant cultures of human and mouse ACP. Finally, we analyse a prominent molecular signature in the glial reactive tissue to characterise the inflammatory microenvironment and uncover the activation of inflammasomes in human ACP. We validate these results by immunostaining against immune cell markers, cytokine ELISA and proteome analysis in both solid tumour and cystic fluid from ACP patients. Our data support a new molecular paradigm for understanding ACP tumorigenesis as an aberrant mimic of natural tooth development and opens new therapeutic opportunities by revealing the activation of the MAPK/ERK and inflammasome pathways in human ACP.


Subject(s)
Craniopharyngioma/metabolism , MAP Kinase Signaling System , Pituitary Neoplasms/metabolism , Transcriptome , Tumor Microenvironment/physiology , Animals , Computational Biology , Craniopharyngioma/pathology , Craniopharyngioma/therapy , Cytokines/metabolism , Disease Models, Animal , Humans , Inflammation/metabolism , Inflammation/therapy , Laser Capture Microdissection , Mice , Neuroglia/metabolism , Odontogenesis/physiology , Pituitary Gland/embryology , Pituitary Gland/pathology , Pituitary Neoplasms/pathology , Pituitary Neoplasms/therapy , Sequence Analysis, RNA , Tissue Culture Techniques
3.
Nat Commun ; 8(1): 1819, 2017 11 28.
Article in English | MEDLINE | ID: mdl-29180744

ABSTRACT

Senescent cells may promote tumour progression through the activation of a senescence-associated secretory phenotype (SASP), whether these cells are capable of initiating tumourigenesis in vivo is not known. Expression of oncogenic ß-catenin in Sox2+ young adult pituitary stem cells leads to formation of clusters of stem cells and induction of tumours resembling human adamantinomatous craniopharyngioma (ACP), derived from Sox2- cells in a paracrine manner. Here, we uncover the mechanisms underlying this paracrine tumourigenesis. We show that expression of oncogenic ß-catenin in Hesx1+ embryonic precursors also results in stem cell clusters and paracrine tumours. We reveal that human and mouse clusters are analogous and share a common signature of senescence and SASP. Finally, we show that mice with reduced senescence and SASP responses exhibit decreased tumour-inducing potential. Together, we provide evidence that senescence and a stem cell-associated SASP drive cell transformation and tumour initiation in vivo in an age-dependent fashion.


Subject(s)
Cellular Senescence/physiology , Craniopharyngioma/metabolism , Neoplastic Stem Cells/metabolism , Pituitary Neoplasms/metabolism , Aniline Compounds/pharmacology , Animals , Biphenyl Compounds/pharmacology , Cell Transformation, Neoplastic , Child , Craniopharyngioma/pathology , Disease Models, Animal , Homeodomain Proteins/metabolism , Humans , Mice , Nitrophenols/pharmacology , Oncogenes/physiology , Piperazines/pharmacology , Pituitary Gland/metabolism , Pituitary Gland/pathology , Pituitary Neoplasms/pathology , Repressor Proteins/metabolism , SOXB1 Transcription Factors/metabolism , Sulfonamides/pharmacology , Exome Sequencing , Young Adult , beta Catenin/metabolism
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