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James Lightfoot

@jameslightfoot.bsky.social
374 followers 323 following 28 posts

Max Planck Group leader exploring the evolution of behaviour using comparative nematode species at the MPI for Neurobiology of Behavior in Bonn (jlightfootlab.org).

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Reposted by James Lightfoot
Piali Sengupta @senguptalab.bsky.social · 01/04/2026
Another paper from our awesome lab out today @nature.com. Led by 🌟 PD Jihye Yeon with fantastic collaborators. We show how an ionotropic receptor (related to insect sensory IRs) in a single pharyngeal enteric neuron senses ingested salts and protects the worm from high salt stress. rdcu.be/fbd4a
rdcu.be
An enteric neuron ionotropic receptor regulates salt stress resistance
Nature - The I3 pharyngeal enteric neuron in Caenorhabditis elegans detects high-salt conditions, and the GLR-9 ionotropic salt receptor expressed specifically in I3 regulates genes related to salt...
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Reposted by James Lightfoot
Katrin Vogt @katrinvogt.bsky.social · 02/02/2026
The first paper from the lab is now out in Science Advances: Multimodal social context modulates larval behavior in Drosophila www.science.org/doi/10.1126/... We find that fly larvae keep their distance to conspecifics in the absence of food, enjoy reading! @cbehav.bsky.social @uni-konstanz.de
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James Lightfoot @jameslightfoot.bsky.social · 29/01/2026
Together, our results show how evolution can repurpose existing genes and sensory circuits for new purposes so systems that were once used for threat avoidance were rewired to support predation. This illustrates how complex behaviours emerge through evolutionary innovations. @mpinb.mpg.de
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James Lightfoot @jameslightfoot.bsky.social · 29/01/2026
At the neural level, both sensory pathways converge in the same IL2 neurons. These neurons form the first point of contact with prey and act as a hub that translates combined sensory input into attack.
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James Lightfoot @jameslightfoot.bsky.social · 29/01/2026
Importantly, while mechanosensation was important for detecting prey efficiently it was not the only sense these predatory worms were using. We found successful hunting requires the integration of touch and smell together and disrupting both causes stronger defects than disabling either alone.
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James Lightfoot @jameslightfoot.bsky.social · 29/01/2026
Therefore, a gene that once only helped worms feel touch, has taken on a new job in predatory nematodes—helping them find their prey. This revealed a surprising new role for an old sensory gene.
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James Lightfoot @jameslightfoot.bsky.social · 29/01/2026
To begin, we made mutations in genes predicted to mediate mechanosensation in our predatory nematode. Like C. elegans, several of these function in touch and threat avoidance. Strikingly, one gene was essential not only for touch but also for efficient prey detection. This is a gene called mec-6.
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James Lightfoot @jameslightfoot.bsky.social · 29/01/2026
To understand how this predatory feeding behaviour may have evolved, we examined genes involved in a key sensory modality that we predicted might be involved in detecting prey - mechanosensation.
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James Lightfoot @jameslightfoot.bsky.social · 29/01/2026
In our study we compared the predatory nematode Pristionchus pacificus to its close relative Caenorhabditis elegans. While C. elegans feeds on microbes, P. pacificus can actively hunt and kill other worms!
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James Lightfoot @jameslightfoot.bsky.social · 29/01/2026
How does evolution turn a harmless bacterial feeder into an active predator? Our new study led by @marianneroca.bsky.social and published in @pnas.org explores how sensory systems were rewired to enable prey detection and predatory behaviour in nematodes. www.pnas.org/doi/10.1073/... 🧵below!
pnas.org
Evolution of sensory systems underlies the emergence of predatory feeding behaviors in nematodes | PNAS
Understanding how animal behavior evolves remains a major challenge, with few studies linking genetic changes to differences in neural function and...
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Reposted by James Lightfoot
Max Planck Institute for Neurobiology of Behavior – caesar @mpinb.mpg.de · 21/01/2026
How do new behaviors evolve? A new Nature study shows how predatory aggression can emerge through changes in neuromodulatory circuits – without adding new neurons. We’ve created a short animated explainer video to walk through the key ideas. youtu.be/wNhjKDCPs_8?...
youtu.be
How new behaviors evolve: from peaceful worm to predator
YouTube video by MPINB
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
These results not only explain the mechanism of predatory aggression in nematodes but also highlight how evolution can create new behaviors by redirecting neuromodulatory signals within existing neural circuits. @mpinb.mpg.de @maxplanck.de
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
Finally, to trace the evolutionary origins of aggression, we examined predatory nematodes across this lineage. We found these behaviors emerged early and are similarly regulated by octopamine, indicating an ancient origin for aggression in these nematodes.
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
Silencing these neurons strongly inhibited the aggressive drive in our predators indicating they have been repurposed to trigger aggression and also detect prey. Their prey detection role has also been explored further in a concurrent paper www.biorxiv.org/content/10.1....
biorxiv.org
Evolution of sensory systems underlies the emergence of predatory feeding behaviours in nematodes
Understanding how animal behaviour evolves remains a major challenge, with few studies linking genetic changes to differences in neural function and behaviour across species. Here, we identify specific sensory adaptations associated with the emergence of predatory feeding behaviours in the nematode Pristionchus pacificus . While Caenorhabditis elegans uses contact-dependent sensing primarily to avoid threats, Pristionchus pacificus has co-opted this modality to support both avoidance and prey detection, enabling context-dependent predatory behaviour. To uncover a potential mechanism underlying the evolution of P. pacificus prey perception, we mutated 27 canonical mechanosensory genes and assessed their function using behavioural assays, automated behavioural tracking, and a machine learning analysis of behavioural states. While several mutants showed mechanosensory defects, Ppa-mec-6 mutants specifically also impaired prey detection, indicating the emergence of a novel mechanosensory module linked to predatory behaviour. Furthermore, disrupting both mechanosensation alongside chemosensation revealed a synergistic influence for these modalities. Crucially, both mechanosensation and chemosensation pathways converge in the same environmentally exposed IL2 neurons, and silencing these cells induced severe predation defects validating their importance for prey sensing. Thus, predation evolved through the co-option of mechanosensory and chemosensory systems that act together to shape the evolution of complex behavioural traits. ### Competing Interest Statement The authors have declared no competing interest. Max Planck Society, https://ror.org/01hhn8329
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
In particular, some of these are an exciting group of sensory neurons projecting out around the toothy mouth of these predators. These neurons are beautiful with six-fold symmetry and are the first point of contact between predator and prey.
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
With the role of these molecules established, we leveraged the genetic tools available in these worms to map the molecular pathways involved. This identified not only the receptors that detect the signals but also the neurons they modulate.
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
We found that there was a push – pull mechanism at play with octopamine pushing the worms towards aggression and tyramine making them more pacifistic (@nobelpeacecenter.bsky.social). Similar roles for octopamine and noradrenergic systems have been found in other species but not in a little nematode!
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
In C. elegans, many behavioral switches are generated through neuromodulator control so we thought this might be true for P. pacificus predatory aggression. To explore this, we turned to our machine learning tool and we screened all major bioamines for any involvement.
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
To learn more about some of the microscopes we used and look at how they slurp up the juicy innards of the prey check out www.biorxiv.org/content/10.1... …But we really wanted to know what was regulating the predatory aggression state changes.
biorxiv.org
A modular multi-color fluorescence microscope for simultaneous tracking of cellular activity and behavior
We present a modular epifluorescence tracking microscope which enables ratiometric imaging of muscles, neurons, and other structures in moving animals. The microscope is assembled entirely from commercial parts within 3 hours, making the system broadly accessible. Leveraging the improved brightness and bleaching characteristics of recent genetically-encoded indicators and fluorophores, the simple microscope is even suitable for simultaneous calcium imaging of neurons and behavior as we demonstrate in C. elegans . We also show how muscle dynamics in D. melanogaster larvae can be analyzed and how dual color fluorescence tracking elucidates inter-species interactions by visualizing both predatory nematodes and their prey. Finally, we showcase a configuration for bright-field imaging, by tracking tardigrade gait as an example of utility for non-model species. The affordability of the hardware and ease of use of the accompanying software make this a suitable tool for education in addition to its use in research. ### Competing Interest Statement The authors have declared no competing interest.
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
To begin with, we set about developing tools to capture the changing states automatically. We trained a machine-learning model that identified stereotypical behavioral states in P. pacificus including three predation-specific states. Even these tiny animals display surprisingly structured behavior!
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
Importantly, while P. pacificus is a voracious killer of other nematodes, this is not indiscriminate. Instead, it alternates between aggressive bursts and a pacifist mode. This lead us to explore how these behavioral states are controlled and why they appear in P. pacificus but not C. elegans.
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
We still know surprisingly little about how new behaviors evolve and how they are encoded in molecules and neural circuits. To explore this, we compared the bacterial feeding nematode Caenorhabditis elegans with its predatory cousin Pristionchus pacificus, which can attack other worms.
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James Lightfoot @jameslightfoot.bsky.social · 21/01/2026
Why do some worms graze on bacteria while others hunt and kill? Our study, published today in Nature, reveals how predatory aggression evolved in nematodes. Led by @gunizgozeeren.bsky.social and @leoboeger.bsky.social across the @jameslightfoot.bsky.social and @monikakscholz.bsky.social labs.
nature.com
Predatory aggression evolved through adaptations to noradrenergic circuits - Nature
Noradrenergic circuits support and balance aggressive behavioural states in predatory nematodes, distinguish predatory from non-predatory nematode species and are associated with the evolution of comp...
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Reposted by James Lightfoot
Marianne Roca @marianneroca.bsky.social · 26/03/2025
Curious about how the cannibalistic nematode Pristionchus pacificus hunts its prey? Check out our preprint on BioRxiv, where we explore the roles of mechanosensation and chemosensation, using behaviour tracking among other methods! www.biorxiv.org/content/10.1...
biorxiv.org
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Reposted by James Lightfoot
Monika Scholz @monikakscholz.bsky.social · 12/03/2025
Two weeks to go until @jameslightfoot.bsky.social lab and I will host some excellent colleagues from around the world at the NWG meeting in Göttingen for Symposium 24@neurowissg.bsky.social! Be ready for a diverse line up with 🐸 🕷️ 🪱 🪰 under the common umbrella of 'evolution of behavior'!
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Reposted by James Lightfoot
PlantEvolution 🌱🌾 @plantevolution.bsky.social · 23/02/2025
Fantastic work from the lab of @maxplanck.de colleague Paul Rainey, demonstrating how a locus can evolve to become hypermutable. Mutation rates depend on evolutionary relevance of this evolved locus! www.science.org/doi/10.1126/...
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James Lightfoot @jameslightfoot.bsky.social · 18/02/2025
Have you ever wondered what is on the surface of a #nematode like #Celegans? …it turns out they are surprisingly greasy little critters and covered in many different lipids. To read more about this, check out the excellent paper from the Chauhan lab which we were very happy to be a small part of.
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Reposted by James Lightfoot
Miriam B. Goodman, PhD @wormsense.bsky.social · 01/01/2025
How hard do bacteria-eating nematodes bite in order to break the bacterial cell wall? Check out our new paper, led by Jason Casar & collab with Jen Dionne, using pressure sensing beads that change color upon compression (bluetorial coming soon) rdcu.be/d5n7v
rdcu.be
Upconverting microgauges reveal intraluminal force dynamics in vivo
Nature - Nanoparticle-based ‘microgauges’ are developed for in vivo force sensing and deployed in C. elegans to investigate how mechanical force correlates with electrical signalling in...
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James Lightfoot @jameslightfoot.bsky.social · 12/12/2024
Institute Christmas party shenanigans 🪱🥳
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Reposted by James Lightfoot
Carlos Giovanni Silva-García @giosg.bsky.social · 11/12/2024
Are you planning to perform single-copy insertions in C. elegans??? Check out our first lab paper!! 🥳 Our *Universal SKI System* uses just one plasmid that can be inserted into any chromosome! Easy peasy! #Celegans #CRISPR #worms #research #science #techniques www.biorxiv.org/content/10.1...
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Reposted by James Lightfoot
bioRxivpreprint @biorxivpreprint.bsky.social · 05/12/2024
CGC1, a new reference genome for Caenorhabditis elegans www.biorxiv.org/content/10.1101/202…
biorxiv.org
CGC1, a new reference genome for Caenorhabditis elegans https://www.biorxiv.org/content/10.1101/2024.12.04.626850v1
The original 100.3 Mb reference genome for Caenorhabditis elegans, generated from the wild-type labo
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Reposted by James Lightfoot
bioRxiv Evolutionary Biology @biorxiv-evobio.bsky.social · 26/11/2024
Molecular patterns of evolutionary changes throughout the whole nervous system of multiple nematode species www.biorxiv.org/content/10.1101/202…
biorxiv.org
Molecular patterns of evolutionary changes throughout the whole nervous system of multiple nematode species https://www.biorxiv.org/content/10.1101/2024.11.23.624988v1
One avenue to better understand brain evolution is to map molecular patterns of evolutionary changes
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Reposted by James Lightfoot
Gavin Woodruff @weirdworms.bsky.social · 29/11/2024
Evolutionary plasticity in nematode Hox gene complements and genomic loci arrangement www.nature.com/articles/s41...
nature.com
Evolutionary plasticity in nematode Hox gene complements and genomic loci arrangement - Scientific Reports
Scientific Reports - Evolutionary plasticity in nematode Hox gene complements and genomic loci arrangement
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James Lightfoot @jameslightfoot.bsky.social · 27/11/2024
Another fantastic Pristionchus paper, this time from the Yoshida and Sommer labs highlighting the rapid sex chromosome evolution in these nematodes. This includes the evolution of five distinct karyotypes across the Pristionchus genus. www.nature.com/articles/s41...
nature.com
Rapid chromosome evolution and acquisition of thermosensitive stochastic sex determination in nematode androdioecious hermaphrodites - Nature Communications
Sexual systems evolve frequently in nematodes. Through large-scale genomic analyses, Yoshida et al. find rapid chromosome evolution, sex chromosome turnover and acquisition of stochastic sex determina...
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Reposted by James Lightfoot
Piali Sengupta @senguptalab.bsky.social · 26/11/2024
🧪 Lab's latest!! Work by PD (and now PI) Alison Philbrook. C. elegans sensory neurons have gorgeous #cilia. We’ve always thought that a) no cilia = no sensory responses, & b) no IFT = no cilia. Punchline is we thought wrong. Read paper for more! #neuroscience journals.plos.org/plosbiology/...
journals.plos.org
Cilia structure and intraflagellar transport differentially regulate sensory response dynamics within and between C. elegans chemosensory neurons
The relative contributions of intraflagellar transport (IFT) and cilia structure to sensory neuron responses remains unclear. This study reveals unexpected complexity in the contribution of IFT and ci...
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James Lightfoot @jameslightfoot.bsky.social · 25/11/2024
While Pristionchus pacificus is our main species of interest, there are many amazing Pristionchus out there. Thanks to work from Matthias Herrmann, two more species have been discovered in South Korea bringing the number of Pristionchus to 50 including 8 hermaphrodites! sciendo.com/article/10.2...
sciendo.com
Description of two new Pristionchus species from South Korea
Based on molecular markers, mating experiments, morphological observations and ecological data, two Pristionchus species...
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James Lightfoot @jameslightfoot.bsky.social · 24/11/2024
Thank you very much for the invite and to everyone who came to listen to my talk @biozentrum.bsky.social! I thoroughly enjoyed hearing about the amazing science taking place and the opportunity to meet so many enthusiastic scientists. Special thanks for the invite from Susan Mango! 🪱
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James Lightfoot @jameslightfoot.bsky.social · 24/11/2024
Thank you very much, it was a pleasure to visit and get to talk science and bitey worms with everyone!
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MwahahahahahadScientist @mads100tist.bsky.social · 22/11/2024
Vvvvvvvvvvery excited to have James Lightfoot @jameslightfoot.bsky.social today at the @biozentrum.bsky.social. Predation, worms, evolution, explosions, the whole shebang
A picture of a lecture room full of people. There's a projected slide with a worm on it, and James is standing in front of it
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James Lightfoot @jameslightfoot.bsky.social · 18/11/2024
Great Pristionchus pacificus paper by the Okumura lab. They investigate its light avoidance behaviour and show some key differences compared to how this functions and has evolved compared to C. elegans! journals.plos.org/plosgenetics...
journals.plos.org
cGMP-dependent pathway and a GPCR kinase are required for photoresponse in the nematode Pristionchus pacificus
Author summary Nematodes are a highly diverse group of animals found in a wide variety of habitats and sensory systems. In particular, light-induced behavior has been found to differ among species. Th...
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