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Nicholson, L.

Publications and source records attributed to Nicholson, L..

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Neuronal Transcriptome Disruption, Tau Accumulation and Synapse Loss in Alzheimer's Knock-in Mice Require Cellular Prion Protein

BackgroundCellular prion protein (PrPC) is a high-affinity cell-surface receptor for Amyloid-{beta} oligomers (A{beta}o). In certain overexpression models of Alzheimers Disease (AD), pharmacology and genetics demonstrate its essential role for synaptic plasticity impairment, memory deficits and synapse loss. However, PrPCs role in AD-related phenotypes with endogenous expression levels, its role in tau accumulation and its effect on imaging biomarkers are unknown. The necessity of PrPC for transcriptomic alterations driven by A{beta} across cell types is unexplored. MethodsThe role of PrPC was examined as a function of age in homozygous AppNL-G-F/hMapt double knock-in mice (DKI). Phenotypes of AppNL-G-F/hMapt mice with a deletion of Prnp expression (DKI; Prnp-/-) were compared with DKI mice with intact Prnp, mice with a targeted deletion of Prnp (Prnp-/-), and mice with intact Prnp (WT). Phenotypes examined included behavioral deficits, synapse loss by PET imaging, synapse loss by immunohistology, tau pathology, gliosis, inflammatory markers, and snRNA-seq transcriptomic profiling. ResultsBy 9 months age, DKI mice showed learning and memory impairment, but DKI; Prnp-/- and Prnp-/- groups were indistinguishable from WT. Synapse loss in DKI brain, measured by [18F]SynVesT-1 SV2A PET or anti-SV2A immunohistology, was prevented by Prnp deletion. Accumulation of Tau phosphorylated at aa 217 and 202/205, C1q tagging of synapses, and dystrophic neurites were all increased in DKI mice but each decreased to WT levels with Prnp deletion. In contrast, astrogliosis, microgliosis and A{beta} levels were unchanged between DKI and DKI; Prnp-/- groups. Single-nuclei transcriptomics revealed differential expression in neurons and glia of DKI mice relative to WT. For DKI; Prnp-/- mice, the majority of neuronal genes differentially expressed in DKI mice were no longer significantly altered relative to WT, but most glial DKI-dependent gene expression changes persisted. The DKI-dependent neuronal genes corrected by Prnp deletion associated bioinformatically with synaptic function. Additional genes were uniquely altered only in the Prnp-/-or the DKI; Prnp-/- groups. ConclusionsA functional Prnp gene is required in AppNL-G-F/hMapt double knock-in mice for synapse loss, phospho-tau accumulation and neuronal gene expression. These data support the efficacy of targeting the A{beta}o-PrPC interaction to prevent A{beta}o-neurotoxicity and pathologic tau accumulation in AD.

neuroscience↗

Activation of bone marrow adaptive immunity in type 2 diabetes: rescue by co-stimulation modulator Abatacept

Hypothesis Type 2 diabetes (T2D) is characterized by low-grade inflammation. Here, we investigated the state of adaptive immunity in bone marrow (BM) of patients and mice with T2D. We also tested if inhibition T cell co-stimulation by Abatacept could rescue the immune profile of T2D mice.Methods Flow-cytometry and cytokine analyses were performed on BM samples from patients with or without T2D. Moreover, we studied the immune profile of db/db and control wt/db mice. A cohort of db/db mice was randomized to receive Abatacept or vehicle for 4 weeks, with endpoints being immune cell profile and indexes of insulin sensitivity and heart performance.Results T2D patients showed increased frequencies of BM CD4+ (2.8-fold, p=0.001) and CD8+ T cells (1.8-fold, p=0.01), with upregulation of the activation marker CD69 and homing receptor CCR7 in CD4+ (1.64-fold, p=0.003 and 2.27-fold, p=0.01, respectively) and CD8+ fractions (1.79-fold, p=0.05 and 1.69-fold, p=0.02, respectively). CCL19 (CCR7 receptor ligand) and CXCL10/11 (CXCR3 receptor ligands), implicated in T cell migration and activation, were the most differentially modulated chemokines. Studies in mice confirmed the activation of adaptive immunity in T2D. Abatacept reduced the activation of T cells and levels of pro-inflammatory chemokines and cytokines. Additionally, Abatacept improved indexes of cardiac systolic function, but not insulin sensitivity.Conclusions These novel findings support the concept of BM adaptive immune activation in T2D. Modulation of T cell co-stimulation could represent an attractive and immediately available modality to dampen inappropriate activation of adaptive immune response and protect from target organ damage.Competing Interest StatementThe authors have declared no competing interest.Abbreviations(APCs)antigen-presenting cells(BM)bone marrow(BMMCs)BM mononuclear cells(CO)cardiac output(TCM)central memory(CCR7)CC-chemokine receptor 7(DCs)dendritic cells(EDV)end diastolic volume(TEM)effector memory(ND)non-diabetic control(HSPCs)hematopoietic stem/progenitor cells(SV)stroke volume(TEMRA)terminally differentiated T memory cells(T2D)type 2 diabetes mellitus(VAT)visceral adipose tissueView Full Text

immunology↗