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Liaquat, I.

Publications and source records attributed to Liaquat, I..

6 recordsLinked to original sources

FMRP regulates adult human cortical excitability via cyclic-AMP signalling

Fragile X Syndrome (FXS) is a common inherited neurodevelopmental condition, resulting from loss of Fragile X Messenger Ribonuclear Protein (FMRP). Rodent models of FXS display cellular hyperexcitability, but it is not known to what extent this is the case in intact human neurons. Depleting FMRP in human brain slice cultures reveals cyclic-AMP-dependent cellular hyperexcitability which is corrected by phosphodiesterase 4D inhibition and may be independent of neurodevelopment.

neuroscience↗

Absence of short-term axon initial segment plasticity in human, mouse, and rat cortical circuits

Maintaining neuronal output with respect to input in the physiological range relies on the ability of neurons to update their responsiveness to inputs dependent on changing activity levels. Termed homeostatic plasticity, the mechanisms that neurons employ to control their responsiveness are varied, and proposed to include structural changes to a key neuronal structure - the axon initial segment (AIS). As the site of action potential initiation, the AIS has been postulated to rapidly change its length in response to increased or decreased cellular and circuit activity. To date, AIS structural plasticity has only been tested in tissue cultures and rodent models. In our current study, we assess the ability of neurons to alter their AIS length over a variety of timescales in ex vivo rodent and human brain slices, human neurons derived from induced pluripotent stem cells, and in mice dark-reared during early life; using a combination of electrophysiology and immunohistochemistry. We find no evidence for changes to AIS length following depolarisation for up to 3 hours, despite positive controls confirming modulated activity. However, we do find that neuronal physiological properties are altered by changes in activity - but these are largely independent of action potential initiation associated with the AIS. In summary, we find no evidence supporting a role for AIS structural plasticity in mouse, rat, or human cortical neurons.

neuroscience↗

Single cell proteomic analysis defines discrete neutrophil functional states in human glioblastoma

Neutrophils are vital innate immune cells shown to infiltrate glioblastomas, however we currently lack the molecular understanding of their functional states within the tumour niche. Given that neutrophils are known to display a prominent discordance between mRNA and protein abundance, we developed ultra-sensitive mini-bulk and single cell proteomic (SCP) workflows to study the heterogeneity of peripheral blood and tumour associated neutrophils (TAN) from patients with glioblastoma. Mini-bulk analysis enabled a deeper protein coverage of circulating immature, mature and TAN populations, defining signatures of maturity and demonstrating that TANs resemble mature circulating neutrophils. Analysis of the SCP data resulted in the detection of >1,100 proteins from a single TAN providing a detailed characterization of neutrophil subsets in glioblastoma. Our approach shows evidence of pathogenic and anti-tumorigenic clusters and discovers cell states invisible to scRNAseq, opening new opportunities to selectively target pro-tumoural neutrophil states.

immunology↗

Phylogenetic divergence of GABAB receptor signalling in neocortical networks over adult life.

Cortical circuit activity is controlled by GABA-mediated inhibition in a spatiotemporally restricted manner. Much is known about fast GABA currents, GABAB receptor (GABABR) signalling exerts powerful slow inhibition that controls synaptic, dendritic and neuronal activity. However, little is known about how GABABRs contribute to circuit-level inhibition over the lifespan of rodents and humans. In this study, we quantitatively determine the functional contribution of GABABR signalling to pre- and postsynaptic domains in rat and human cortical principal cells (PC). We find that postsynaptic GABABR differentially control pyramidal cell activity within the cortical column as a function of age and species, and that these receptors contribute to co-ordination of local information processing in a layer- and species-dependent manner. These data directly increase our knowledge of translationally relevant local circuit dynamics, with direct impact on understanding the role of GABABRs in the treatment of seizure disorders. HighlightsO_LIGABAB receptor signalling displays age and species differences in cortex C_LIO_LIGABAB receptor presynaptic inhibition is stronger in humans than rodents C_LIO_LIIn vitro oscillations in human cortex are strongly regulated by GABABRs C_LIO_LILevetiracetam enhances endogenous GABABR signalling in human cortex C_LI

neuroscience↗

Opposing roles of physiological and pathological amyloid-β on synapses in live human brain slice cultures

In Alzheimers disease, it is theorised that amyloid beta (A{beta}) and tau pathology contribute to synapse loss. However, there is limited information on how endogenous levels of tau and A{beta} protein relate to patient characteristics, or how manipulating physiological levels of A{beta} impacts synapses, in living adult, human brain. Here, we employed live human brain slice cultures as a translational tool to assess endogenous tau and A{beta} release, pathology, and response to experimental manipulation. We found that the levels of A{beta}1-40 and tau detected in the culture medium depend on donor age, and brain region, respectively. Pharmacologically raising physiological A{beta} concentration enhanced levels of synaptic transcripts. Treatment of slices with A{beta}-containing Alzheimers disease brain extract resulted in postsynaptic A{beta} uptake and loss of presynaptic puncta. These data indicate that physiological and pathological A{beta} can have opposing effects on synapses in living human brain tissue.

neuroscience↗

Tau phosphorylated at serine 356 is associated with Alzheimer's disease pathology and can be lowered in mouse and human brain tissue using the NUAK inhibitor WZ4003

Tau hyperphosphorylation and aggregation is a common feature of many dementia-causing neurodegenerative diseases. Tau can be phosphorylated at up to 85 different sites, and there is increasing interest in whether tau phosphorylation at specific epitopes, by specific kinases, plays an important role in disease progression. The AMP-activated protein kinase (AMPK) related enzyme NUAK1 been identified as a potential mediator of tau pathology, whereby NUAK1-mediated phosphorylation of tau at Ser356 prevents the degradation of tau by the proteasome, further exacerbating tau hyperphosphorylation and accumulation. This study provides a detailed characterisation of the association of p-tau Ser356 with progression of Alzheimers disease pathology, identifying a Braak stage-dependent increase in p-tau Ser356 protein levels and an almost ubiquitous presence in neurofibrillary tangles. We also demonstrate, using sub-diffraction-limit resolution array tomography imaging, that p-tau Ser356 co-localises with synapses in AD post-mortem brain tissue, increasing evidence that this form of tau may play important roles in AD progression. To assess the potential impacts of pharmacological NUAK inhibition in an ex vivo system that retains multiple cell types and brain-relevant neuronal architecture, we treated postnatal mouse organotypic brain slice cultures from wildtype or APP/PS1 littermates with the commercially available NUAK1/2 inhibitor WZ4003. Whilst there were no genotype specific effects, we found that WZ4003 results in a culture-phase dependent loss of total tau and p-tau Ser356, which corresponds with a reduction in neuronal and synaptic proteins. By contrast, application of WZ4003 to live human brain slice cultures results in a specific lowering of p-tau Ser356, alongside increased neuronal tubulin protein. This work identifies differential responses of postnatal mouse organotypic brain slice cultures and adult human brain slice cultures to NUAK1 inhibition that will be important to consider in future work developing tau-targeting therapeutics for human disease.

neuroscience↗