bioRxiv Science⌕ Search

Biology subjects

Brandao, S. C.

Publications and source records attributed to Brandao, S. C..

2 recordsLinked to original sources

Undoing of firing rate adaptation enables invariant population codes

Neural adaptation supports coding efficiency by tuning responses to prevailing stimulus statistics. However, when information is represented by neural populations, adaptation of individual units could degrade behaviorally relevant signals. Here we investigate how the fly olfactory system implements adaptation in Olfactory Receptor Neurons (ORNs) and the consequences for combinatorial coding in downstream circuits. We show that adaptation of ORN firing rate is compensated at the axon terminal, where calcium transients remain background-invariant through inhibitory presynaptic feedback. Background invariance requires an adaptation strategy that shifts ORN response amplitude rather than sensitivity, diverging from efficient coding principles in single neurons. This property supports contrast encoding in ORN populations necessary for background compensation across the glomeruli. Downstream, the modulation of presynaptic Unc13 proteins maintains postsynaptic projection neurons responses to ON stimuli background invariant. We identify a new coding strategy where olfactory neuronal populations encode asymmetrically contrast information by implementing circuit computations that compensate peripheral firing rate adaptation.

neuroscience↗

Metabolic constraints on growth explain how developmental temperature scales synaptic connectivity relevant for behaviour.

Environmental temperature dictates the developmental pace of poikilothermic animals. In Drosophila, brain development at lower temperature is not only slower, but it also results in different wiring outcomes. A first-principle model that imposes different metabolic constraints for the growth of the neural system and the organism explains these findings, predicts brain wiring under ecologically relevant temperature cycles and explains the non-uniform scaling of neural development across temperatures. Dissecting the circuit architecture and function of first, second and third order neurons in the olfactory system, we demonstrate that the consequences of temperature are contingent upon the availability of synaptic partners in different circuits. Despite synaptic scaling, second order neurons encode robust odor representations, while temperature dependent connectivity of third order neurons leads to differences in odor-driven behavior. Therefore some circuit specific developmental programs have evolved to support functional robustness with respect to environmental temperature, while others allow phenotypic plasticity with possible adaptive advantages.

neuroscience↗