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Christian Puller

@christianpuller.bsky.social
503 followers 254 following 55 posts

Neuroscientist at Max Planck Institute for Neurobiology of Behavior. Interested in vision, retina research, and gravel/road cycling.

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Christian Puller @christianpuller.bsky.social · 03/12/2025
Congrats!
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Juan Angueyra @juanonyme.bsky.social · 02/12/2025
you should all check out @john-m-ball.bsky.social latest paper (www.pnas.org/doi/10.1073/...) : in the Zenodo files there is an interactive pdf that let's anyone look at the 3D EM reconstructions.
pnas.org
PNAS
Proceedings of the National Academy of Sciences (PNAS), a peer reviewed journal of the National Academy of Sciences (NAS) - an authoritative source of high-impact, original research that broadly spans...
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Christian Puller @christianpuller.bsky.social · 08/07/2025
Awesome work by @gregdfield.bsky.social et al. www.biorxiv.org/content/10.1... Projection Targeting with Phototagging to Study the Structure and Function of Retinal Ganglion Cells | bioRxiv
biorxiv.org
Projection Targeting with Phototagging to Study the Structure and Function of Retinal Ganglion Cells
Visual information from the retina is sent to diverse targets throughout the brain by different retinal ganglion cells (RGCs). Much of our knowledge about the different RGC types and how they are routed to these brain targets is based on mice, largely due to the extensive library of genetically modified mouse lines. To alleviate the need for using genetically modified animal models for studying retinal projections, we developed a high-throughput approach called projection targeting with phototagging that combines retrograde viral labeling, optogenetic identification, functional characterization using multi-electrode arrays, and morphological analysis. This method enables the simultaneous investigation of projections, physiology, and structure-function relationships across dozens to hundreds of cells in a single experiment. We validated this method in rats by targeting RGCs projecting to the superior colliculus, revealing multiple functionally defined cell types that align with prior studies in mice. By integrating established techniques into a scalable workflow, this framework enables comparative investigations of visual circuits across species, expanding beyond genetically tractable models. Motivation Visual information from the retina is distributed to diverse targets throughout the brain. Much of our knowledge about how visual information is processed and routed to these brain targets is based on mice because of the large library of genetically modified mouse lines. For most other species, such libraries are not available. Therefore, we were motivated to develop an approach for characterizing diverse retinal projections into the brain that can be applied to other species. We aimed to achieve projection targeting with retrograde viral vectors, followed by identification of circuit-specific retinal ganglion cells (RGCs) with optogenetics, functional characterization with multi-electrode array (MEA) recordings, and morphological description with in situ and confocal microscopy. The resulting high-throughput approach permits functional and morphological investigation of dozens to hundreds of cells in individual experiments. By replacing the need for genetically modified animals with a suite of standard techniques, this approach should improve cross-species comparisons of the initial stages of visual processing. Summary Understanding the structure-function relationships across neurons is challenging, particularly when circuits are composed of dozens of distinct cell types. We refined an approach, called projection targeting with phototagging, that allows simultaneous elucidation of the projections, morphology, and visual response properties of diverse RGC types in the mammalian retina. The approach combines retrograde virally mediated phototagging of RGCs, microscopy, and large-scale MEA measurements. Importantly, the approach does not rely on transgenic animals and thus is generalizable across species. We validated this approach in rats by targeting retinal projections to the superior colliculus (SC). We showed that multiple RGC types project to the SC and that these results in rats align well with prior findings from transgenic mouse studies. ![Figure][1]</img> Highlights ### Competing Interest Statement K.R. Is a coauthor on a patent for AAV2retro (Application No. 62/350,361 filed June 15, 2016, and U.S. Application No. 62/404,585 filed October 5, 2016). * AAV : adeno-associated virus cMRF : central mesencephalic reticular formation CRF : contrast response functions DpG : deep gray layer of the superior colliculus DpWh : deep white layer of the superior colliculus EI : electrical image GCL : ganglion cell layer IC : inferior colliculus INL : inner nuclear layer InG : intermediate gray layer of the superior colliculus IPL : Inner Plexiform Layer InWh : intermediate white layer of the superior colliculus ISI : inter-spike interval distribution MEA : multi-electrode array MGN : medial geniculate nucleus of the thalamus OT : nucleus of the optic tract Op : optic nerve layer of the superior colliculus OSI : orientation-selective index PAG : periaqueductal gray PC : posterior commissure POD : post-operative day PT : pretectum ReaChR : red-shifted channelrhodopsin RF : receptive field RGC : retinal ganglion cell SRF : spatial receptive field SuG : superficial gray layer of the superior colliculus TRF : temporal receptive field Zo : zonal layer of the superior colliculus Duke Institute for Brain Sciences (DIBS) Incubator Award NIH R01 EY034004 K99 EY032119 NIH P30 EY005722 Core Grant for Vision Research at Duke University NIH P30 EY000331 for Vision Research and an Unrestricted Grant from Research to Prevent Blindness at UCLA [1]: pending:yes
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Anna Vlasits @annaintegrated.bsky.social · 02/07/2025
Exciting news: ⭐I'm thrilled to receive a grant from the Brain Research Foundation! tinyurl.com/2p9ku4sd ⭐"Atypical retinal ganglion cell function in a mouse model of Fragile X syndrome" was published! tinyurl.com/htk3ekce ⭐my review on retinal receptive fields was published! tinyurl.com/48b9xbs2
media.tenor.com
a picture of a woman with the words this is exciting below her
ALT: a picture of a woman with the words this is exciting below her
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Marla Feller @mfeller.bsky.social · 16/05/2025
This is a fantastic up-to-date summary of modern questions in retinal circuits, clearly presented and with great figures!. Required reading for anyone interested in the amazing computational capabilities of neural circuits. Congrats and a big thank-you to the authors.
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Katrin Franke @katrinfranke.bsky.social · 15/05/2025
65 years after Lettvin’s bug detector neurons in the frog retina, we revisit how the retina drives behavior—from reflexes to prey capture to brain-state modulation New review with @annaintegrated.bsky.social & @serenariccitelli.bsky.social in Annual Review of Vision Science 👇 tinyurl.com/ymp3vs4d
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RoordaLab @roordalab.bsky.social · 13/05/2025
Happy Birthday Gerald Westheimer. 101 years on May 13 and still publishing papers! #livinglegend of #visionscience. @ucberkeleyofficial.bsky.social
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Christian Puller @christianpuller.bsky.social · 13/05/2025
Putting this on top of my reading list: Task-specific regional circuit adaptations in distinct mouse retinal ganglion cells | Science Advances www.science.org/doi/10.1126/...
science.org
Task-specific regional circuit adaptations in distinct mouse retinal ganglion cells
The mouse retina shows regional adaptations in signal processing that enhance their ability to detect prey during hunting.
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Kevin Wright @kevinmawright.bsky.social · 09/05/2025
With all the chaos and destruction of academic research going on in the US right now, it feels a little weird to post this. But.... New preprint from the lab is now live: www.biorxiv.org/content/10.1... 1/n
biorxiv.org
PTEN regulates starburst amacrine cell dendrite morphology during development
Neurons are subject to extensive developmental regulation to ensure precise subtype-specific morphologies that are intimately tied to their function. Starburst amacrine cells (SACs) in the mammalian r...
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Pranav Seth @thebuddhabird93.bsky.social · 19/03/2025
I am delighted to present to all my latest research paper titled " #AAV-mediated transduction of #songbird #retina" which has been published in the journal " #Frontiers in #Physiology", in its special issue "Rising Stars in Avian Physiology: 2024". #birds #AAV www.frontiersin.org/journals/phy...
frontiersin.org
Frontiers | AAV-mediated transduction of songbird retina
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Christian Puller @christianpuller.bsky.social · 13/03/2025
Thanks! 🙂
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Christian Puller @christianpuller.bsky.social · 13/03/2025
Thank you, Soile 😊
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Christian Puller @christianpuller.bsky.social · 01/03/2025
Thank you 🙂
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Christian Puller @christianpuller.bsky.social · 28/02/2025
x/4 😉 and thank you cycling 🚴
Gravelbike leaning against a tree
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Christian Puller @christianpuller.bsky.social · 28/02/2025
4/4 Many thanks to everyone involved ❤️
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Christian Puller @christianpuller.bsky.social · 28/02/2025
3/ Fantastic work by Sabrina Duda that beautifully illustrates how cell types of the early visual system are distributed according to their functional role and to meet the demands of the visual environment.
Density distributions of retinal ganglion cells across complete mouse retinas
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Christian Puller @christianpuller.bsky.social · 28/02/2025
2/ Dendrites of 🐭 displaced retinal ganglion cells complete the mosaics of their regular counterparts.
Dendritic trees of regular and displaced retinal ganglion cells and how the align to form a mosaic
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Christian Puller @christianpuller.bsky.social · 28/02/2025
1/ There it is! 😊 Published today in Scientific Reports: www.nature.com/articles/s41...
nature.com
Spatial distribution and functional integration of displaced retinal ganglion cells - Scientific Reports
Scientific Reports - Spatial distribution and functional integration of displaced retinal ganglion cells
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Max Planck Campus Tübingen @maxplanckcampus.bsky.social · 09/01/2025
Apply for your participation in the Systems Vision Science Summer School and Symposium 2025: summerschool.lizhaoping.org/application/ Application deadline is March 31, 2025. Experimental vision researchers, vision theorists, engineers and computer scientists should not miss this unique event!
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richkramerlab.bsky.social @richkramerlab.bsky.social · 05/12/2024
More complete announcement to come, but heads-up about a new summer course on Visual Neuroscience at the MBL, Woods Hole! Hands-on training in imaging, EM, bioinformatics, electrophysiology, visual behavior. From octopus to mouse, from retina to brain! Aug. 1-16, 2025 www.mbl.edu/education/ad...
mbl.edu
Visual Neuroscience | Marine Biological Laboratory
Experience hands-on training in modern visual neuroscience techniques in the new Visual Neuroscience course. Join us for a life-changing experience learning the visual system - and return home with te...
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Tom Baden @neurofishh.bsky.social · 11/12/2024
Volume 1 of the "Early Vision" pack is now full-up so I started populating Volume II go.bsky.app/5z7mP26 Addition requests, as before, please fill this google form: forms.gle/4ZdNjejitMQu...
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Seth Blackshaw @sethblackshaw.bsky.social · 11/12/2024
I'm a bit puzzled why the retina never makes it into these big consensus think pieces. Last I checked, it was just as much a part of the CNS as the brain and spinal cord, and also where a lot of the early single-cell work along these lines was first done.
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Marla Feller @mfeller.bsky.social · 10/12/2024
New preprint! A wonderful collaboration of our @FellerMarla lab with Matthew Po, and @shekharlab. Here, we dive into the impact of spontaneous activity on the transcriptome of retinal ganglion cells (RGCs), the sole output neurons of the retina. www.biorxiv.org/content/10.1...
biorxiv.org
Transcriptomic changes in retinal ganglion cell types associated with the disruption of cholinergic retinal waves
In the early stages of retinal development, a form of correlated activity known as retinal waves causes periodic depolarizations of immature retinal ganglion cells (RGCs). Retinal waves are crucial fo...
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RoordaLab @roordalab.bsky.social · 05/12/2024
To think that this entire optical system is devoted to looking at a single photoreceptor cell today. In the lower left of this image you'll see the bite-bar where I 'lock in'.
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Christian Puller @christianpuller.bsky.social · 06/12/2024
😅👏
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Andrew Payne @andrewcpayne.bsky.social · 03/12/2024
🧪 E11 Bio is excited to share a major step towards brain mapping at 100x lower cost, making whole-brain connectomics at human & mouse scale feasible (🧠→🔬→💻). Critical for curing brain disorders, building human-like AI systems, and even simulating human brains. Read more: e11.bio/news/roadmap
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Christian Puller @christianpuller.bsky.social · 30/11/2024
“Weird axonless” is totally true though 😄
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Christian Puller @christianpuller.bsky.social · 30/11/2024
Among the 40ish types of amacrine cells, this AIS-like segment has been found only on few of them. The vGluT3 amacrine cell type hasn’t been reported to have it…
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Christian Puller @christianpuller.bsky.social · 29/11/2024
vGluT3-positive amacrine cells. An interneuron that inhibits via glycine OR excites via ribbon-release of glutamate!? What more can you ask for? 😄
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Christian Puller @christianpuller.bsky.social · 29/11/2024
Congrats 🙌
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Christian Puller @christianpuller.bsky.social · 29/11/2024
Thanks for the effort ❤️
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Tom Baden @neurofishh.bsky.social · 29/11/2024
Early vision Neuroscience community, Vol 1 We are talking eyes, retinas, and some of the more ancestral bits of visual brains. No species restrictions. List is close to full, will start building Vol 2 before too long Addition requests, please see link in the below thread go.bsky.app/BotZr1g
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Christian Puller @christianpuller.bsky.social · 27/11/2024
Congrats! 👏
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Dimos Karamanlis @dimokaramanlis.qoto.org.ap.brid.gy · 24/11/2024
The latest piece of my PhD work is now published! Check it out at www.nature.com/articles/s41586-024-… We explain how correlated responses in the retinal output may arise when nonlinear receptive fields are stimulated with natural scenes. We think […] [Original post on qoto.org]
Summary of visual responses of marmoset retinal ganglion cells stimulated with natural visual scenes with gaze trajectories recorded in actual marmosets.
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Tim Gollisch @timgollisch.bsky.social · 27/11/2024
How natural stimuli lead to highly correlated ganglion cell activity in primate (marmoset) and mouse retina. Now out in @natureportfolio.bsky.social. And, I guess, great opportunity for a first post on this site. #FirstSkeet Very brief summary in this thread. 1/ www.nature.com/articles/s41...
nature.com
Nonlinear receptive fields evoke redundant retinal coding of natural scenes - Nature
Species-specific gaze shifts with natural stimuli drive correlated spiking in retinal ganglion cells.
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Katja Reinhard @katjareinhard.bsky.social · 25/11/2024
Please get in touch with me if you're interested in making viruses and participating in other lab tasks and experiments! Let's chat to see if we fit before the official ad goes out next month. We're a friendly, young neuroscience lab at SISSA in Italy www.reinhardlab.org
reinhardlab.org
Reinhard Lab
12/2024 Çınar Furkan Ilhan joins the lab! Çınar is joining the lab as a new PhD candidate - welcome! He will be busy with courses in the next few weeks while finding out which project he'd like to wo...
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David Ho @davidho.bsky.social · 24/11/2024
A person on a bicycle is by far the most energy-efficient among animals and machines per distance traveled relative to body weight. The bicycle is magic. www.jstor.org/stable/24923...
A graph titled "Cost of Transport" showing the relationship between body weight (in kilograms) and energy consumption for distance traveled (calories per gram per kilometer) for various animals and machines. It highlights that a person on a bicycle ranks first in efficiency.
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Chiara Fornetto @chiarafornetto.bsky.social · 20/11/2024
Excited to share my new #preprint with @neurofishh.bsky.social and @teuler.bsky.social If you want to know more about cones and behaviour 🐟... 👇🏻 www.biorxiv.org/content/10.1...
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Christian Puller @christianpuller.bsky.social · 15/11/2024
Yes. Electrical coupling is regulated by ambient light levels and circadian rhythm. We kept everything constant for reproducible comparisons across retinal regions. Please check out the „Limitations of the study“ paragraph after the discussion 😉
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Christian Puller @christianpuller.bsky.social · 15/11/2024
That’s one way to interpret this. Keep in mind that the focus of our study (a class of inhibitory interneurons) is just one piece of the puzzle. Others have shown how structure and function of different excitatory cell classes are distinctly organized across the retina, contributing to visual acuity
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Christian Puller @christianpuller.bsky.social · 15/11/2024
How awesome, thank you! ❤️ Let me know if there’s major criticism coming up. Happy to come by and defend it 😂
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Christian Puller @christianpuller.bsky.social · 15/11/2024
Thank you, Brittany!
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Christian Puller @christianpuller.bsky.social · 15/11/2024
Thanks, Thomas! Good to see you here on this platform 🙂
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Christian Puller @christianpuller.bsky.social · 15/11/2024
Thank you, Miranda!
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Christian Puller @christianpuller.bsky.social · 14/11/2024
Interested in interneurons? Retina? Electrical coupling? Check out my first senior author paper which just went online www.cell.com/iscience/ful... (Find a short summary a little bit further down my timeline)
cell.com
The first interneuron of the mouse visual system is tailored to the natural environment through morphology and electrical coupling
Biological sciences; Neuroscience; Cellular neuroscience; Sensory neuroscience
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Ed Boyden @eboyden3.bsky.social · 10/11/2024
Just published: "Multiplexed expansion revealing for imaging multiprotein nanostructures in healthy and diseased brain", led by Jinyoung Kang and Margaret Schroeder! multiExR enables antibody staining of >20 proteins in a sample w/registration error down to 25 nm. www.nature.com/articles/s41...
nature.com
Multiplexed expansion revealing for imaging multiprotein nanostructures in healthy and diseased brain - Nature Communications
Mapping the nature of multiprotein nanostructures in cellular contexts remains challenging. Here, Kang and Schroeder et al. report multiplexed expansion revealing, a technique which expands proteins a...
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Thomas Euler @teuler.bsky.social · 08/11/2024
Our paper on the role of amacrine cells in retinal color processing is out in Cell Reports. Work by two very talented students - Marili Korympidou & Sarah Strauss - great collaboration with @annaintegrated.bsky.social, Katrin Franke & @celltypist.bsky.social at U Tübingen doi.org/10.1016/j.ce...
cell.com
GABAergic amacrine cells balance biased chromatic information in the mouse retina
Mouse photoreceptors establish a dorsal-ventral chromatic gradient that is attenuated at the retinal output. Korympidou et al. explore how dendrites of inhibitory amacrine cells in the mouse retina re...
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Webvision @webvision.bsky.social · 09/11/2024
The Webvision account will be permanently migrating all posting, promoting, and reposting activity regarding vision science to BlueSky. We are no longer posting content on the platform formerly known as Twitter.
webvision.bsky.social
Webvision (@webvision.bsky.social)
At the back of your eyes. https://webvision.med.utah.edu
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BWJones @bwjones.bsky.social · 19/10/2024
Here’s your Vision Scientists Starter pack for Bsky. Lemme know who I’ve missed. go.bsky.app/3EWSGiv
Vision scientists starter pack.
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Christian Puller @christianpuller.bsky.social · 11/07/2024
Thank you for the portrait 😊 I very much enjoyed our chat at the conference.
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