Abstract
<jats:p>Postural control, the capacity of an animal to detect and correct an inappropriate body orientation, is a widespread and fundamental neurobiological function, yet the neural circuits that implement it remain poorly resolved in most species. The larva of Drosophila melanogaster performs a posture control stereotyped self-righting (SR) manoeuvre when turned upside-down, a behaviour previously shown to depend on a pair of segmentally repeated lateral transverse motor neurons (LT1/2-MNs) and on the normal expression of several Hox-targeting microRNAs. Here, we use a connectomics and a functional behavioural approach to trace and test the sensory, interneuronal and motor architecture of the SR circuit along the antero-posterior axis. Starting from the LT1/2-MNs, we identify a set of pre-motor interneurons, their principal upstream partners, and a population of class IV multidendritic sensory neurons as core components of the circuit, and show, through neuron-specific thermogenetic silencing, that inhibiting the great majority of these elements significantly impairs SR performance. We further find substantial overlap between the SR circuit and the previously described nociceptive rolling and touch crawling circuits, converging on shared interneurons including DnB, A02o (Wave-1) and TePn05. Network and axial connectivity analyses reveal a nested, hub-like organisation, a small number of integrator neurons bridging sensory and motor sub-networks, and a consistent decline in synapse number and density towards posterior segments. Together, these data yield the first axial wiring diagram for a postural control circuit in any animal and offer a set of structural principles including: hub organisation, shared sensory-motor structure, and antero-posterior connectivity gradients, which may extend to other segmentally organised nervous systems.</jats:p>