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Dornan, A.

Publications and source records attributed to Dornan, A..

2 recordsLinked to original sources

Discovery of the Honeycomb Synapse in Spinal Motor Circuits

The structural and molecular diversity of synapses in the nervous system contributes to the specialisation of neural circuits underlying diverse behaviours. We have discovered a morphologically distinct postsynaptic specialisation in the mammalian spinal cord. We have named this the Honeycomb Synapse based on its elaborate postsynaptic nanostructure, comprising rings formed of ~6 scaffolding protein domains that create multiple perforations throughout the large postsynaptic domain. Analysis of the organisation of other synaptic proteins reveals that Honeycomb Synapses harbour mixed signalling properties structurally facilitated by a postsynaptic scaffold matrix supporting chemical transmission, with gap junction proteins occupying some of the perforations. We reveal anatomical diversity in the presence of Honeycomb Synapses on populations of -motoneurons across the lumbar spinal cord in mice from approximately 2 weeks of age through to adulthood. The Honeycomb Synapse was found to be a subtype of synapse within the Ia afferent monosynaptic stretch reflex circuit. Finally, we have identified that Honeycomb Synapses are highly vulnerable to degeneration in two different genetically engineered mouse models of Amyotrophic Lateral Sclerosis (ALS), contributing to monosynaptic stretch reflex circuit dysfunction. These findings suggest that synaptic diversity within circuits may confer selective vulnerability to distinct synaptic subclasses.

neuroscience↗

Microbiota/gut/neuron axis promotes Drosophila ageing via Acetobacter, Tachykinin, and TkR99D

Gut microbiota exert an evolutionarily conserved influence on ageing, from invertebrates to humans. How do microbes that are physically confined to the gut lumen affect the systemic physiological process of ageing? In female Drosophila, we show that microbiota increase expression of the peptide hormone Tachykinin (Tk), which corresponds to reduced lifespan. Tk is required for microbiota to shorten lifespan, with knockdown rendering flies constitutively long-lived even in the presence of an intact microbiota. This lifespan extension does not come with canonical costs to fecundity or feeding, but impacts on triacylglyceride (TAG) storage suggest adaptive functions in metabolic homeostasis. In flies with defined (gnotobiotic) microbiotas, we show that we can model Tk-dependent effects of microbiota on lifespan and TAG by monoassociation with Acetobacter pomorum. These effects require Tk in the midgut, and the cognate TK receptor TkR99D in neurons, implicating a microbiota-gut-neuron relay. This relay also appears to compromise gut barrier function in aged flies, indicating roles in healthspan as well as lifespan. However, the effect of TkR99D is independent of its reported role in insulin signalling and adipokinetic hormone signalling which, respectively, are canonical regulators of lifespan and TAG metabolism, suggesting a non-canonical role for TkR99D elsewhere in the nervous system. Altogether our results implicate a microbiota-gut-neuron axis in ageing, via a specific bacterium modulating activity of a specific and evolutionarily-conserved hormone.

genetics↗