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Waters, M. F.

Publications and source records attributed to Waters, M. F..

3 recordsLinked to original sources

A propensity to hyperinsulinaemia underpins diet-induced diabetes in NODk mice

Aims/hypothesisHeterogeneity in the pathophysiology of type 2 diabetes is increasingly being realised. The currently available rodent models of type 2 diabetes all have limitations and do not accurately reflect all human type 2 diabetes subtypes. NOD.BR-H2k /Wicker mice (NODk), derived from the non-obese diabetic (NOD) mouse, are type 1 diabetes resistant. However, transgene induced beta-cell stress in male NODk mice induces hyperinsulinaemia followed by diabetes. Here we have investigated the propensity of NODk mice to develop a Western-diet (WD) induced hyperinsulinaemic subtype of type 2 diabetes. Comparator mouse strains used were BALB/c and B10.BR-H2k /SgSnJ mice (B10k). MethodsIn the longer-term studies (14-24 weeks), NODk, B10k and BALB/c mice were randomised to receive Chow or WD from 4 weeks of age, followed by serial measurement of body weight and fed-state blood glucose. IPGTT and IPITT tests were conducted at 13 weeks of age. Blood and pancreas were harvested for further analyses at 14 and 24 weeks of age, or sooner if diabetes developed (blood glucose concentrations [≥]20 mmol/l on two consecutive days). In the acute studies, metabolic characteristics of the three strains at 8 weeks of age, continued on Chow or after a 5-day WD challenge (WDC) were assessed, along with harvesting pancreas on day 5 for ex vivo islet insulin secretion, electron microscopy, and bulk islet transcriptomics analyses. ResultsMale WD-fed NODk mice became markedly hyperinsulinaemic, gained excess weight and developed a severe type 2 diabetes phenotype. Emergence of diabetes was associated with islet endocrine cell apoptosis and loss of beta-cell mass, without evidence of insulitis. Insulin resistance on IPITT testing, however, was not evident in Chow-fed NODk mice. In contrast, male B10k mice already had poor glucose tolerance on Chow diet and, despite having a hypoinsulinaemic phenotype, were resistant to WD-induced diabetes. BALB/c mice developed very mild glucose intolerance and hyperinsulinaemia in response to the WD. Female NODk mice were diabetes resistant. At 8 weeks of age, male Chow-fed NODk mice were mildly hyperinsulinaemic despite relative hypoglycaemia compared to the other strains. The acute 5-day WDC markedly increased hyperinsulinaemia in NODk mice. Transcriptomics analyses identified robust strain-specific differences, including altered islet cell differentiation, energy metabolism, endoplasmic reticulum to golgi vesicle transport and insulin processing. Conclusions/interpretationNODk mice, which exhibit mild hyperinsulinaemic hypoglycaemia on Chow diet and rapidly develop marked hyperinsulinaemia on WD, are type 2 diabetes prone. In contrast, B10k mice have poor glucose tolerance on Chow diet and no or limited capacity to increase insulinaemia in response to WD, are diabetes resistant. These findings support the hypothesis that hyperinsulinaemia is upstream to insulin resistance in the pathogenesis of severe insulin resistant subset of type 2 diabetes for which the WD-fed NODk mouse is a suitable new mouse model. Research in ContextO_ST_ABSWhat is already known about this subject?C_ST_ABSO_LIWhich of insulin hypersecretion and insulin resistance are upstream in the pathogenesis of the severe insulin resistant subtype of type 2 diabetes continues to be debated C_LIO_LIRodent models of type 2 diabetes do not accurately reflect all human subtypes of type 2 diabetes C_LIO_LINODk mice, derived from the non-obese diabetic (NOD) mouse, are type 1 diabetes resistant, but with transgene induction of islet beta-cell stress develop hyperinsulinaemia, followed by type 2 diabetes C_LI What is the key question?O_LICould Western-diet fed NODk mice be developed as a model of severe insulin resistant type 2 diabetes and shed light on its upstream pathogenesis? C_LI What are the new findings?O_LIMale NODk mice tend to hyperinsulinaemic hypoglycaemia on Chow diet, rapidly develop marked hyperinsulinaemia on Western-diet feeding, and then develop type 2 diabetes C_LIO_LIMale B10k mice (one of two comparator strains (B10k and BALB/c)) have poor glucose tolerance on Chow diet, limited capacity to increase insulinaemia in response to Western-diet feeding, but are resistant to develop Western-diet induced type 2 diabetes C_LIO_LIIsolated islet findings show strain differences that favour intrinsic hyper-responsiveness and hypo-responsiveness of islet beta-cells of NODk and B10k mice, underpinning their respective metabolic phenotypes C_LI How might this impact on clinical practice in the foreseeable future? O_LIThe findings are in support of the insulin hypersecretion hypothesis for severe insulin resistant type 2 diabetes, such that therapies to limit islet beta-cell hyperresponsiveness to prevent and treat this subtype of diabetes warrant investigation C_LI

physiology↗

Intra-arterial Deoxyribonuclease therapy improves stroke outcomes in aged mice

BackgroundFutile recanalization affects more than half of acute ischemic stroke (AIS) patients. Neutrophil extracellular traps (NETs) are a major factor of microvascular hypoperfusion after stroke. Deoxyribonuclease I (DNase) targeting NETs exhibited a neuroprotective effect in young mice with AIS. This study explored a novel direct intra-arterial administration of DNase therapy and its effect in aged mice with AIS. MethodAIS was induced in aged C57BL/6 mice followed by reperfusion and immediate, intra-arterial DNase administration via the internal carotid artery. Cerebral blood flow, neurological function, cerebral infarct volume, and NET markers were examined. ResultsDirect intra-arterial DNase therapy significantly increased cerebral blood flow, reduced neurological deficit scores, increased the latency to fall in wire hang test, reduced cerebral infarct volume, and decreased neutrophil and NET count in both the parenchyma and micro vessels in aged mice with AIS compared with age-matched, vehicle controls. ConclusionOur data is the first to demonstrate that successful, direct intra-arterial DNase therapy provides more efficient cerebral reperfusion and better outcomes after recanalization during the treatment of large vessel occlusion in aged mice. This study provides evidence for the potential clinical application of catheter delivered intra-arterial DNase therapy post-recanalization.

neuroscience↗

Association of cerebellar inflammation and neurodegeneration in a novel spinocerebellar ataxia type 13 mouse model

BackgroundNeuroinflammation is a recognized pathological characteristic of neurodegenerative diseases. Spinocerebellar ataxia 13 (SCA13) is a progressive neurodegenerative disease with no effective treatments. Our previous studies reported human mutations in KCNC3 gene are causative for SCA13. Human R423H allelic mutation induces early-onset neurodegeneration and aberrant intracellular retention of Epidermal Growth Factor Receptor (EGFR) in drosophila. However, the neurodegeneration and inflammatory response induced by the R424H allele are unknown in a mammalian model of disease. MethodIn this study, a single Kcnc3 R424H mutation (Analogous to the human SCA13 R423H isoform) transgenic mice were created using CRISPR/Cas 9 technique. Motor function (gait, tremor, coordination and balance) and cerebellar volume (scanned and imaged with 7T MRI) of the R424H transgenic mice were evaluated at multiple timepoints. Neurodegeneration (Purkinje cells loss) as well as cerebellar (astroglia, microglia and macrophage activation) and peripheral (plasma cytokines levels) inflammatory responses were examined and analyzed. ResultThe R424H transgenic mice showed marked neurological motor dysfunction with high-frequency tremor, aberrant gait, and short latency to fall in Rotarod testing at 3 and 6 months of age. Abnormal spontaneous firing was recorded in electrophysiology of Purkinje cells. Pathological changes in our R424H transgenic mice included progressive Purkinje cell degeneration and cerebellar atrophy. Over-active microglia, astrocytes, and macrophages were observed in the cerebella of transgenic mice. Pearson correlation analyses indicated that the number of Calbindin positive cells, a Purkinje cell marker, showed a strong inverse correlation with the positive cell number of EGFR, phosphorylated EGFR (pEGFR), and CD68. The expression of EGFR/pEGFR was positively correlated with CD68 and Glial Fibrillary Acidic Protein. ConclusionTransgenic R424H mice provide a novel SCA13 model showing significant motor deficits, Purkinje cells loss, cerebellar inflammation, and atrophy. Our study suggests that the activation of inflammatory immune cells (astroglia, microglia and macrophages) and strong expression of EGFR/ pEGFR signal in these immune cells are associated with Purkinje cell loss in the cerebellum. This abnormal neuroinflammation may play a significant role in the aggressive procession of neurodegeneration.

neuroscience↗