Parallels between the #zebrafish head direction neuron circuits and the #Drosophila central complex:

"we asked if and how the recently identified HD [head direction] cells in the larval zebrafish ... incorporate visual information."

"zebrafish HD cells can reliably track the orientation of multiple visual scenes, exploiting both landmark and optic flow cues. The mapping between landmark cues and the heading estimates is idiosyncratic across fish, and experience-dependent."

"The physiological and morphological parallels suggest that a Hebbian mechanism similar to the fly ring neuron is at work in the habenula axons."

From: "Mechanisms for plastic landmark anchoring in zebrafish compass neurons" by Tanaka and Portugues, 2024
https://www.biorxiv.org/content/10.1101/2024.12.13.628331v2

#neuroscience #CentralComplex

Mechanisms for plastic landmark anchoring in zebrafish compass neurons

Vision is a sensory modality particularly important for navigation, as it can inform animals of their current heading (i.e. visual landmarks) as well as its changes (i.e. optic flow). It has been shown that head direction (HD) neurons in various species incorporate the visual cues into their heading estimates. However, circuit mechanisms underlying this process remain still elusive in vertebrates. Here, we asked if and how the recently identified HD cells in the larval zebrafish – one of the smallest vertebrate models – incorporate visual information. By combining two-photon microscopy with a panoramic virtual reality setup, we demonstrate that the zebrafish HD cells can reliably track the orientation of multiple visual scenes, exploiting both landmark and optic flow cues. The mapping between landmark cues and the heading estimates is idiosyncratic across fish, and experience-dependent. Furthermore, we show that the landmark tracking requires the lateralized projection from the habenula to the interpeduncular nucleus (IPN), where the HD neuron processes innervate. The physiological and morphological parallels suggest that a Hebbian mechanism similar to the fly ring neuron is at work in the habenula axons. Overall, the observations that the hindbrain HD cells of the larval zebrafish lacking an elaborate visual telencephalon shed new light on the evolution of the navigation circuitry in vertebrates. ### Competing Interest Statement The authors have declared no competing interest.

bioRxiv

"we illustrate that in our theory, the consistent presence of the eight-column organisation of head direction circuits across multiple insect species is not a chance artefact but instead can be explained by basic evolutionary principles."

Interesting take on possible constraints that defined the circuit architecture of the #Drosophila central complex in its role as a brain centre for spatial navigation.

"The insect compass system: From theory to circuitry", by Pau Vilimelis Aceituno et al. 2023 at #INIZurich https://www.biorxiv.org/content/10.1101/2023.07.05.547838v2.full

#neuroscience #CentralComplex

"The insect compass system: From theory to circuitry" by Vilimelis et al. 2023 https://www.biorxiv.org/content/10.1101/2023.07.05.547838v2

Interesting insight on extra-genomic contributions to neural circuit architecture:

"we demonstrate that our predicted circuit can emerge naturally using Hebbian plasticity, which means the neural connectivity does not need to be explicitly encoded in the genetic program of the insect but rather can emerge during development."

And particularly:

"we now address another question: whether there might be a reason that insect head direction circuits typically have an eight-column architecture [...] powers of two are easier to generate with replication dynamics than other numbers, because they just require each cell to divide a set number of times."

"The circuits for N = 2 and N = 4 are degenerate – either producing a single dimensional encoding, or two disconnected circuits that do not enforce the required circular topology. N = 8 is the smallest power of two that could result in a non-degenerate circuit. This hints at the possibility that the eight-column architecture is not a chance evolutionary artefact, but rather that it is the genetically simplest circuit capable of performing heading integration."

#neuroscience #Drosophila #CentralComplex

@jdrugowitsch

“Bayesian inference in ring attractor networks”, Anna Kutschireiter et al. 2023

“we describe a simple and biologically plausible network model that can track the uncertainty associated with working memory”

“This “Bayesian ring attractor” performs near-optimal angular path integration and evidence accumulation”

Tagging with #neuroscience #Drosophila #CentralComplex #connectomics