Search bioRxiv⌕ Search

bioRxiv · 10.64898/2026.01.11.698863

Analysis of the principles governing the dimensionality reduction performed by Lobula Plate Tangential Cells

Abstract

Lobula Plate Tangential Cells (LPTCs) are critical for visual navigation in flies, enabling efficient processing of optical flow. Unlike upstream neurons in the visual pathway, such as those in the Lobula, Medulla, and T4/T5 layers, which retain a retinotopic organisation, LPTCs perform the first major dimensionality reduction of visual signals. This reduction simplifies the vast amount of visual information into key motion signals essential for navigation. In this paper, we investigate the principles governing this dimensionality reduction and explore with a data-based approach the efficiency of LPTCs in compressing optical flow information while preserving critical motion cues for navigation and their role in transmitting information to descending neurons. More specifically, our contribution is as follows: (i) we demonstrate, using Principal Component Analysis (PCA) as a reference, that global optical flow patterns, as also found in LPTC response maps, are efficient to describe and encode the variation in the optical flow experienced during visual navigation tasks; (ii) we show that LPTCs present a strong alignment with Principal Components of the experienced optical flow, supporting the hypothesis that the LPTCs maximize the flow of signal energy from the T4/T5 cells to the descending neurons; and (iii) we show that whilst LPTCs encode optical flow information in a lossy fashion, it can be reconstructed. Using optical flow priors, such as the complementarity of LPTCs in contralateral hemispheres and continuity of the flow in navigation tasks, we performed a reconstruction of the original flow from LPTCs response. Our analysis reveals the dual potential of LPTCs: selectively relaying signals for navigation that are fine-tuned in relation to the flys own dynamics; and broadly compressing the optical flow information that is sensed by the flys visual system.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Leroy, A., Taylor, G.. 2026-01-12. Analysis of the principles governing the dimensionality reduction performed by Lobula Plate Tangential Cells. https://doi.org/10.64898/2026.01.11.698863

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Automated pup-level analysis reveals distinct effects of prenatal CBD and THC exposure on maternal retrieval

This study examined how prenatal CBD and {Delta}9-tetrahydrocannabinol (THC) exposure affects maternal caregiving in C57BL/6J mice. We developed the Machine-Automated Scoring of the Pup Retrieval Test (MAS-PRT) to overcome limitations of manual behavioral scoring. MAS-PRT integrates Multi-Animal DeepLabCut for dam and pup tracking with Detectron2 for dynamic nest reconstruction. Validated against 170 manually annotated retrieval trials, the pipeline showed high concordance with manual measurements and enabled reproducible extraction of encounter latency, retrieval latency, and locomotor trajectories. Prenatal exposure did not impair general nest-building or overall home-cage maternal care. However, pups from both CBD and THC groups showed reduced body weight at postnatal day 5. Cox proportional hazards modeling revealed divergent effects by compound: CBD-exposed dams exhibited a weight-dependent increase in probability of encountering and retrieving lighter pups, independent of pup sex. Spatial tracking further showed that dams traversed significantly shorter total trajectories when retrieving female progeny exposed to either compound. Longitudinal trial-by-trial analysis indicated intact task acquisition in controls and CBD dams, whereas THC dams displayed a flattened learning curve driven by lower retrieval latencies on initial trials. Together, these findings indicate that prenatal cannabinoid exposure does not produce generalized disruption of maternal care but instead induces compound-specific alterations in maternal reactivity, retrieval kinematics, and learning dynamics.

animal behavior and cognition↗

A comparison of female competitive traits: Female aggression peaks at nest building but female song spans multiple contexts in a temperate songbird

Female-female competition is increasingly recognized as a key driver of female ornamentation, including birdsong, which often functions in intrasexual competition. However, the specific resources females use elaborate traits to compete for remain unclear. In addition, few studies have simultaneously investigated the use of multiple competitive traits in females, despite growing independent interest in these traits (e.g., female song and aggression). We investigated the competitive contexts of female song, aggression and calling behavior in northern house wrens (Troglodytes aedon) to determine which resources females compete for across the breeding season. We simulated conspecific territorial intrusions using female song at three breeding stages representing different contexts: arrival (mate and territory acquisition), nest building (nest site and breeding status defense), and egg laying (brood defense). We tested whether female song and physical aggression varied as reproductive resources shifted across the breeding cycle. Females were significantly more aggressive during nest building, showing 5.8 times greater odds of a higher-intensity aggressive response during nest building compared to arrival. Female song output was similar across early stages but declined during egg laying, though this was not statistically significant after correction for multiple comparisons and individuals varied substantially in overall singing propensity. Non-song vocalizations varied by call type and breeding stage. Calls associated with aggression occurred most frequently during nest building, consistent with peak physical aggression responses. Together, these results identify nest building as the stage of highest female aggression, consistent with heightened competition over nest cavities and associated breeding status in this cavity-nesting species. In contrast, female song occurred across all stages and appears to function in multiple competitive contexts. This study provides evidence for context and mode-specific female signaling in a temperate songbird and highlights that females strategically use aggression, calls, and song to mediate social conflict across breeding contexts.

animal behavior and cognition↗

Tracking human foragers and their prey reveals adaptive predator-prey dynamics

Hunting for mobile prey is thought to have played a key role in hominin evolution, by providing high-quality nutrition that supported the development of the exceptionally large human brain. However, human-prey dynamics remain poorly understood because studies have not yet tracked human foragers and their prey simultaneously. Here, we employ high resolution tracking of groups of human foragers (ice-fishers) and their prey (fish shoals) to study human-prey dynamics. Our results show that foragers adaptively combined personal and social information in deciding where to forage and for how long, closely matching the prey distribution. Prey responded dynamically to human exploitation, showing increased attraction to fishing activity, alongside decreased biting probability. Furthermore, we found that foragers adaptively relied on memory, preferentially returning to areas with high prey presence, particularly when their current return rate was low. Our results show how human foragers overcome the challenges of extracting invisible, mobile and reactive prey by tightly tuning patch-selection, patch-leaving and patch-return decisions to the distribution and behaviour of their prey.

animal behavior and cognition↗