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Ahamed, H.

Publications and source records attributed to Ahamed, H..

2 recordsLinked to original sources

A heteromeric nicotinic acetylcholine receptor promotes sleep by relaying GABAergic signals within a locus of motor and sensory integration

Locomotor inactivity and reduced sensory responsiveness are defining attributes of sleep, yet the underlying mechanisms are not well understood. In particular, the molecular and circuit mechanisms by which sleep-regulatory signals from the brain restrict movement and sensation remain largely ill-defined. Here we identify a nicotinic acetylcholine receptor (nAChR) that promotes sleep in Drosophila through its expression in GABAergic neurons of the ventral nerve cord (VNC), a center for motor and sensory systems. Biochemical, genetic, and pharmacological manipulations indicate that a heteromeric nAChR containing the 1 and {beta}1 subunits promotes sleep by coupling cholinergic input to GABA release in the VNC and the likely inhibition of motor neurons, sensory afferents, or both. The functional parallels of the VNC and the mammalian spinal cord suggest that disruptions of analogous inhibitory circuits in humans may impair suppression of behavioral activity and sensory inputs during sleep and contribute to sleep disorders.

neuroscience↗

Scalable Apparatus to Measure Posture and Locomotion (SAMPL): a high-throughput solution to study unconstrained vertical behavior in small animals

Balance and movement are impaired in a wide variety of neurological disorders. Recent advances in behavioral monitoring provide unprecedented access to posture and loco-motor kinematics, but without the throughput and scalability necessary to screen candidate genes / potential therapeutics. We present a powerful solution: a Scalable Apparatus to Measure Posture and Locomotion (SAMPL). SAMPL includes extensible imaging hardware and low-cost open-source acquisition software with real-time processing. We first demonstrate that SAMPLs hardware and acquisition software can acquire data from D. melanogaster, C.elegans, and D. rerio as they move vertically. Next, we leverage SAMPLs throughput to rapidly (two weeks) gather a new zebrafish dataset. We use SAMPLs analysis and visualization tools to replicate and extend our current understanding of how zebrafish balance as they navigate through a vertical environment. Next, we discover (1) that key kinematic parameters vary systematically with genetic background, and (2) that such background variation is small relative to the changes that accompany early development. Finally, we simulate SAMPLs ability to resolve differences in posture or vertical navigation as a function of effect size and data gathered - key data for screens. Taken together, our apparatus, data, and analysis provide a powerful solution for laboratories using small animals to investigate balance and locomotor disorders at scale. More broadly, SAMPL is both an adaptable resource for laboratories looking process video-graphic measures of behavior in real-time, and an exemplar of how to scale hardware to enable the throughput necessary for screening.

neuroscience↗