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Corke, J.

Publications and source records attributed to Corke, J..

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Maturation of GABAergic signalling times the opening of a critical period in Drosophila melanogaster

The occurrence of critical periods during the development of neural networks is widely documented. Activity manipulation when these periods are open can lead to permanent, and often debilitating, effects to the mature neural network. Detailed understanding of the specific contribution of critical periods to network development, however, remains elusive. This is partly because identified critical periods in mammals are present in complex sensory networks (e.g., visual and auditory) that make focused experimental manipulation challenging. It is significant, therefore, that critical periods have been identified in simpler model systems. A critical period occurs during the development of the embryonic locomotor network in the fruit fly, Drosophila melanogaster. Perturbation of neuronal activity during this period is sufficient to permanently destabilise the mature larval locomotor network: leaving it prone to induced seizures. Given a clear role of {gamma}-aminobutyric acid (GABA) in the timing of the mammalian critical period of ocular dominance, we sought to establish whether this neurotransmitter also regulates the opening of the Drosophila locomotor critical period. Utilising GABA agonists, antagonists, and genetics, we manipulated the embryonic GABAergic system and, at the end of larval life, measured an induced seizure phenotype in mature third-instar larvae. We found that potentiating GABAergic signalling, via embryonic exposure to diazepam or overexpression of the GABAA receptor rdl, induced precocious opening of the critical period. By contrast, exposure to the GABA antagonist gabazine, or knockdown of the GABA-synthetic enzyme Gad1, delayed opening. Thus, we show that critical period timing within the Drosophila CNS is dictated by GABAergic signalling, indicating a phylogenetically conserved role.

neuroscience↗

Circadian control in the timing of critical periods during Drosophila larval neuronal development.

Critical periods (CPs) of development are temporal windows of heightened neural plasticity. Activity perturbation during CPs can produce significant, and permanent, alterations to the development of neural circuits. In this study we report a circadian mechanism underlying the timing of CPs in Drosophila embryonic and larval development. These CPs occur at [~]24 hr intervals and are open to manipulation through blue light (BL)-activation of the circadian regulator Cryptochrome (CRY). This manipulation is sufficient to destabilize the larval CNS, evidenced by an induced seizure phenotype when tested at third instar (L3). In addition to CRY nulls, genetic ablation of the period gene also mitigates the BL exposure seizure phenotype and, moreover, alleles of period that affect circadian timing alter the timing of the CPs. Our analysis shows a clear role for the main clock neuropeptide, pigment dispersing factor (PDF), to transduce the output of these CPs. Targeted PDF receptor knockdown, in either GABAergic or CRY-positive neurons, is sufficient to prevent the CRY-mediated seizure phenotype. This study is a first demonstration of a circadian mechanism in Drosophila larvae, and whilst this alone is of major significance, our results highlight the potential of using Drosophila larvae as a model to investigate the impact of circadian rhythms on early neuronal development in higher organisms, which remains experimentally challenging. Significance StatementWhilst the role of the biological clock is well understood in adult organisms, the same is not true for embryonic development. How the maternal clock impacts the mammalian fetus remains poorly understood. Given that many expectant mothers experience altered circadian rhythms, largely due to nightshift working, it is important to address these concerns. Here we identify clock-mediated periods in neural development of the embryonic Drosophila which can be manipulated by light. These findings provide an experimental opportunity to better understand the role of the circadian clock in early development.

neuroscience↗