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Cader, Z. M.

Publications and source records attributed to Cader, Z. M..

2 recordsLinked to original sources

Cryptochrome Stabilization Ameliorates Chronic Pain

Physiological and pathological pain exhibits striking diurnal variation, but the underlying mechanisms are largely unknown. We now describe an independent molecular clock in peripheral sensory neurons and satellite glial cells of sensory ganglia. We show that it is the sensory neuron transcription-translation feedback loops (TTFLs) that are responsible for diurnal pain behaviors. This clock regulates diurnal neurophysiological responses to a range of ligands, as well as synaptic activities of primary nociceptors. Furthermore, we find that loss of Cry1 and Cry2, the repressive arm of the core TTFLs, intensifies pain responses associated with increased voltage-gated sodium channel currents. Conversely, stabilization of CRY1 and CRY2 using the small molecule KL001, reduces pain sensitivity. Our results highlight novel opportunities to address chronic pain by directly harnessing circadian mechanisms. One-Sentence SummaryA peripheral pain clock governs daily pain fluctuations, which can be harnessed for treating pain disorders.

neuroscience↗

Neurons derived from individual early Alzheimer's disease patients reflect clinical vulnerability

Establishing preclinical models of Alzheimers disease that predict clinical outcomes remains a critically important, yet to date not fully realised, goal. Models derived from human cells offer considerable advantages over non-human models, including the potential to reflect some of the inter-individual differences that are apparent in patients. Here we report an approach using induced pluripotent stem cell-derived cortical neurons from people with early symptomatic Alzheimers disease where we sought a match between individual disease characteristics in cells with analogous characteristics in the people from whom they were derived. We show that the response to amyloid-{beta} burden in life, as measured by cognitive decline and brain activity levels, varies between individuals and this vulnerability rating correlates with the individual cellular vulnerability to extrinsic amyloid-{beta} in vitro as measured by synapse loss and function. Our findings indicate that patient induced pluripotent stem cell-derived cortical neurons not only present key aspects of Alzheimers disease pathology, but also reflect key aspects of the clinical phenotypes of the same patients. Cellular models that reflect an individuals in-life clinical vulnerability thus represent a tractable method of Alzheimers disease modelling using clinical data in combination with cellular phenotypes.

neuroscience↗