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Neta Felsenthal

@netafelsenthal.bsky.social
648 followers 510 following 44 posts

PostDoc @ Vignjevic lab, Institut Curie~ Matrix - cells - basement membrane interactions ~ intestine biology ~ Tissue development & homeostasis 🔬 Hiker, baker, lithops gardner 🌵 a mom

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Reposted by Neta Felsenthal
epithelial mechanics fan club @epimechfc.bsky.social · 27/09/2026
Can mathematics explain how biological patterns are formed? Alan Turing thought so. Join me, @benswedlund.bsky.social, as we explore his reaction-diffusion theory and how it transformed our understanding of pattern formation and self-organisation.
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c0nc0rdance @c0nc0rdance.bsky.social · 27/09/2026
Nature photographer 'pendra100legs' does these amazing macro shots of tiny bugs. This one is delightful (I'll link below to the full thing). It's a globular springtail in genus Sminthurides. These insect-relatives can launch themselves 60 times their height in 1.6 MILLISECONDS. *Voomp*. Gone.
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Kate Cavanaugh @katecavanaugh.bsky.social · 10/09/2026
Absolutely ecstatic to share that WE GOT THE COVER!!! 🥹🎉 Seeing this on NCB's cover feels surreal. So much time, science, and teamwork went into this project, and I couldn’t be more excited to see it celebrated like this. A very, very happy day for this really really old and grown embryo 🐭🧫💥
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Floris BOSVELD @florisbosveld.bsky.social · 11/09/2026
Join us for the symposium Morphogenesis: Where Form Takes Shape Oct. 27-28 Institute Curie Paris Free attendance, but registration is required. Short talks and posters will be selected from submitted abstracts. Abstract submission deadline: Oct. 10, 2026.
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Conor Sugden @conorjsugden.bsky.social · 14/01/2026
New publication from the Hamill Lab! Laminin N-terminus α31 regulates corneal epithelial cell adhesion and migration through modifying the organization and proteolytic processing of laminin 332 journals.plos.org/plosone/arti... If you are interested in basement membranes, this is for you...
journals.plos.org
Laminin N-terminus α31 regulates corneal epithelial cell adhesion and migration through modifying the organization and proteolytic processing of laminin 332
Laminin N-terminus α31 (LaNt α31) is a netrin-like protein generated by alternative splicing of the laminin α3 gene. While previously shown to regulate vascular permeability in vivo, its role in epith...
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Janet Iwasa @jiwasa.bsky.social · 09/09/2026
Interested in molecular animation? Give ProteinBlender a try! It's free and open source. animation-lab.github.io/ProteinBlend... The latest tools include a DNA builder (shown in the tutorial video below). We'd love to hear what you think! We have short tutorials that cover all the features!
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FocalPlane @focalplane.bsky.social · 07/09/2026
🔬🔦In our Imaging spotlight, @inesfournon.bsky.social & team highlight their work on epithelial cell extrusion. Check it out to learn more about their experimental pipeline: from keeping the sea anemones alive during imaging to their bespoke image analysis. focalplane.biologists.com/2026/09/07/i...
focalplane.biologists.com
Imaging spotlight: Live imaging reveals epithelial cell extrusion in a sea anemone - FocalPlane
Imaging spotlight: Live imaging reveals epithelial cell extrusion in a sea anemone - News
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Nature @nature.com · 04/09/2026
Ada Yonath obituary: Crystallographer who overcame ‘impossible’ challenge of mapping the ribosome go.nature.com/4xIUyVW
go.nature.com
Ada Yonath obituary: Crystallographer who overcame ‘impossible’ challenge of mapping the ribosome
Nobel laureate persisted despite widespread derision and revolutionized structural biology by protecting fragile crystals.
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Nature Portfolio @natureportfolio.nature.com · 05/09/2026
A small study reported in Scientific Reports suggests a hormone therapy combining estriol and progesterone may help reduce menopause-related “brain fog.” After 12 months, the participants reported better concentration, memory, processing speed, and problem-solving. 🧪
go.nature.com
Targeting hormone treatment for the brain in menopause - Scientific Reports
Estrogens are neuroprotective, and menopause may contribute to neurodegeneration. Estriol preferentially binds estrogen receptor beta (ERβ) in brain to induce neuroprotection. Previously, oral estriol improved cognitive processing speed and reduced cerebral cortex atrophy at treatment month twelve in women with multiple sclerosis (MS). Here, treatment with a blisterpack designed for healthy menopausal women which contains estriol and progesterone (Pearlpak) was assessed for its effect on cognitive domain-specific symptoms in a case series of twenty menopausal women (mean age 53.5 years). At treatment month twelve, there were significant improvements in self-reported brain fog, concentration, working memory, processing speed, verbal memory, and problem solving. A preclinical model explored mechanisms. Midlife female mice (age 12-13 months), previously ovariectomized either at 2 months or at 11 months of age, exhibited cognitive deficits on Morris Water Maze, with glial activation and synaptic loss on dorsal hippocampal pathology. Astrocytes had increased levels of Enolase 1 (ENO1), a key protein in glucose utilization. Increased ENO1 correlated with worse cognitive performance. Deletion of ERβ in astrocytes in gonadally intact midlife females recapitulated deleterious effects of ovariectomy. Conversely, treatment of midlife female mice with estriol from age 11 months to age 12 months reduced ENO1 expression in hippocampal astrocytes, reduced glial activation and synaptic loss, and improved cognitive performance. This preliminary study suggests that Pearlpak treatment for cognitive symptoms of menopause warrants further investigation given the safe use of these hormones in Europe and Asia for decades to reduce other menopausal symptoms.
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Science Magazine @science.org · 01/09/2026
Unlike the embryos of other vertebrates, early snake embryos coil as they get longer, typically forming clockwise spirals. A new study offers an explanation for why embryonic snakes go through these contortions—and why they tend to curve in one direction. Learn more: scim.ag/4ygkAQk
Snake embryos often coil in one direction. Now, we may know why
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Naba Lab UIC @nabalabuic.bsky.social · 31/08/2026
1/5 📣 Hot off the press: Two papers, one story on the mechanisms of ECM assembly now out in @jcellsci.bsky.social! I am delighted to share two companion studies from our lab exploring the mechanisms of SNED1 fibrillar assembly into the #ECM and how SNED1 shapes ECM architecture and cell phenotype.
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Luca @lucagalletti.bsky.social · 30/08/2026
“Think dating is hard? Try being a male grebe. She's not easy to impress. She makes a move - he must match it instantly. A head shake, a turn. Every beat in sync. The tighter their rhythm, the better his chances. Then comes the gift: a clump of soggy weeds.” 💕 IG: @legable_grace
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Zebrafish Rock! @zebrafishrock.bsky.social · 30/08/2026
Development of a #zebrafish embryo, which has been immobilized with snake venom. Credit to @swinburnelab.bsky.social. #ZebrafishZunday
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Neta Felsenthal @netafelsenthal.bsky.social · 30/08/2026
Somehow, there can never be too many options to segment stuff. Wonder how it'll do with poor quality nuclei 🤔
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MwahahahahahadScientist @mads100tist.bsky.social · 29/08/2026
The GitHub repo is here: github.com/yu-labvt/FOC... The website is here: www.quiclab.org.cn/focus-3d. (The website has a link at the bottom (Try FOCUS-3D Online) where you can drag and drop one of your images and take it for a spin)
FOCUS‑3D: Robust, generalizable volumetric cell segmentation for three‑dimensional fluorescence microscopy

And all the authors' names
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MwahahahahahadScientist @mads100tist.bsky.social · 16/03/2026
It's out! Happy to present ITEC, a semi supervised algorithm with an extremely low error rate that can track cells in files of any size (think Terabytes!). We used it in many organisms, including zebrafish, to study how organs form and linked it to gene expression www.biorxiv.org/content/10.6... +🧪
biorxiv.org
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Cells & Development @cellsdev.bsky.social · 28/08/2026
A very intriguing story by Joao F. Botelho et al shows that in bird, the digit formation (their ✋) is not only governed by apoptosis but also due to changes in the rate of growth extension and cell division between the interdigital zone and the digital zone. So cool! #devbio doi.org/10.1016/j.cd...
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Alex Eve @amjeve.uk · 21/08/2026
Two weeks left to share your post for the Node's community of #devbio and stem cell biologists and a chance to win £200.
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I AM DAD @iamdad.bsky.social · 28/07/2026
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Ricardo Henriques @henriqueslab.bsky.social · 21/07/2026
🚀🔬 Can cell shape, signal and movement tell us about a cell's future? #DeepLearning studies now predict cell fate from #microscopy. Together w Rita, @mariodelr.bsky.social, @inesmcunha.bsky.social, @juliettegriffie.bsky.social + @guijacquemet.bsky.social👇 www.preprints.org/manuscript/202607.1414/v1
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Michal Dibus @midibu.bsky.social · 10/07/2026
1/5 🎉 Finally, the results of my main postdoctoral project are out in @natcomms.nature.com! Adhesion-derived condensates control component availability to regulate adhesion dynamics bit.ly/4y9E8Xr Also excited to see the paper highlighted in Nat Comms Editors’ Highlights 🥳 bit.ly/44n4O9i
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Journal of Cell Biology @jcb.org · 07/07/2026
Glover, Wilkinson, @ianofbristol.bsky.social et al. show that cells subject to mitochondrial protein import failure induce Intercellular Mitochondrial Transfer via tunnelling nanotubes. rupress.org/jcb/article/... #Organelles #Biochemistry #Mitochondria
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bioRxivpreprint @biorxivpreprint.bsky.social · 01/07/2026
Tracking claim changes from preprint to publication across 72,644 biomedical studies using large language models www.biorxiv.org/content/10.64898/20…
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bioRxivpreprint @biorxivpreprint.bsky.social · 01/07/2026
Headbutting goats self-inflict traumatic brain injury www.biorxiv.org/content/10.64898/20…
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Christophe 🔬 Leterrier @christlet.bsky.social · 01/07/2026
"Over the same period (2018-2025), biomedical papers that were never posted as preprints were retracted at roughly twice the rate of those that were."
biorxiv.org
Tracking claim changes from preprint to publication across 72,644 biomedical studies using large language models
Preprints now disseminate a large share of biomedical research before peer review. Because they have not yet passed peer review, some scientists regard preprint claims as unverified or potentially unr...
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allen institute @alleninstitute.org · 26/06/2026
New in @natmethods.nature.com: a new human stem cell model of EMT lets us watch cells transition in both 2D and 3D and shows human stem cells can undergo the transition differently depending on how they are grown. 🔗 doi.org/10.1038/s41592-026-03096-9
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Mark Peifer (He, him) @peiferlabunc.bsky.social · 18/06/2026
The array of organs in the animal body differ dramatically in their architecture, but cell-cell adhesion mediated by cadherins is a common principle. Our lab usually focuses on epithelia but cadherins are also active in migrating mesenchymal cells like these migrating testis myoblasts 1/n 🧪
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Neta Felsenthal @netafelsenthal.bsky.social · 12/06/2026
Brilliant
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Reposted by Neta Felsenthal
bioRxivpreprint @biorxivpreprint.bsky.social · 02/06/2026
Interleukin-11 promotes the colonic epithelial organoid regeneration from mechanical disruption www.biorxiv.org/content/10.64898/20…
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Michalis Gounis @gounismichalis.bsky.social · 09/06/2025
1/ Beyond thrilled to see my #PhD work now published in @jcb.org A short thread (🧵) for #metastasis #metabolism #ExtracellularVesicles (EVs) aficionados
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Kevin Chalut @kevinchalut.bsky.social · 17/02/2026
Excited to share this new work from Ana Raffaelli, in collaboration with Ewa Paluch's lab and involving several of my colleagues at Cyclana Bio. In this paper, we show that basement membrane mechanics instructs developmental signalling and fate patterning. www.biorxiv.org/content/10.6...
biorxiv.org
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SCIENMAG @scienmag.bsky.social · 30/09/2025
BCL-2, Laminin Reveal Hirschsprung Disease Mechanisms In a groundbreaking study set to redefine our understanding of Hirschsprung disease (HSCR) and its devastating complication, Hirschsprung-Associated Enterocolitis (HAEC), researchers have moved beyond the classical explanation centered on…
scienmag.com
BCL-2, Laminin Reveal Hirschsprung Disease Mechanisms
In a groundbreaking study set to redefine our understanding of Hirschsprung disease (HSCR) and its devastating complication, Hirschsprung-Associated Enterocolitis (HAEC), researchers have moved beyond the classical explanation centered on aganglionosis to identify crucial molecular signatures involving BCL-2 and Laminin. This innovative work opens new avenues for therapeutic intervention and diagnostic precision in a complex pediatric condition that has long challenged clinicians and scientists alike.
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Oded Rechavi @odedrechavi.bsky.social · 05/05/2026
Important announcement!!! 💫 Would you have a tooth pulled if it helped your chances to get an important grant funded? Absurd question, but the funding situation is so bad, that I bet some of you actually considered it for a second… keep your teeth! we created something that might help! 👇 (1/16)
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clementhelsens.bsky.social @clementhelsens.bsky.social · 11/04/2026
We tracked a zebrafish tail tip for 30h of light-sheet imaging. It didn’t exist at t=0. LiLiTTool: CoTracker3 + object detection → real-time microscope steering. 3D, multi-ROI, open source. www.biorxiv.org/content/10.6... #bioimaging #lightsheet thanks @jytinevez.bsky.social
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Neta Felsenthal @netafelsenthal.bsky.social · 27/03/2026
🤩
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Nicola Rennie @nrennie.bsky.social · 27/03/2026
🎉 ggauto is now on CRAN 🎉 An #RStats package that selects better chart types, and provides more accessible styling for #ggplot2 plots 📊 Blog post explaining why I made it and how it works: nrennie.rbind.io/blog/introdu... #DataViz
nrennie.rbind.io
Introducing ggauto: automating better charts – Nicola Rennie
The ggauto package is an opinionated ggplot2 extension package that aims to help people make better charts by default. This blog post explains why it exists and how it works.
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Nature Materials @natmater.nature.com · 25/03/2026
Mechanisms of active wetting and fluidification in epithelial cell collectives go.nature.com/3Pxjq1E
go.nature.com
Mechanisms of active wetting and fluidification in epithelial cell collectives - Nature Materials
Active wetting and fluidification of breast cancer epithelia are shown to be controlled by IRSp53 and Afadin, cell adhesion proteins that regulate multicellular viscosity and tensile state during tumo...
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Erin Weisbart @erinweisbart.bsky.social · 27/03/2026
Are you interested in the Cell Painting Assay but have some questions? We've curated a whole bunch of resources into a comprehensive and friendly "Cell Painting for Biologists" guide ciminilab.github.io/GuideToCellP...
ciminilab.github.io
Guide to Cell Painting for Biologists
Overview of resources for biologists interested in Cell Painting. Covers introduction, application, modification, image analysis, profile generation, biology exploration, and more!
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Cells & Development @cellsdev.bsky.social · 27/03/2026
Some say development is guided by forces. While the role of chemistry in dev bio is undeniable, growing evidence has pointed out the significant contribution of physics too. Chowdhury et al discuss how forces shape normal and cancer stem cells and the clinical applications. doi.org/10.1016/j.cd...
Fig. 1. Force impact on embryogenesis and organogenesis. Compelling evidence from published reports demonstrates that fate and differentiation of embryonic stem cells and adult stem cells depend on forces (shear and/or normal stress), substrate elasticity/viscoelasticity, and substrate topography. The observation from cell culture studies that mesenchymal stem cells undergo neurogenesis on soft substrates is consistent with the finding that a stiffness gradient is responsible for axons to change their turning direction caudally towards soft tissues in the developing Xenopus embryonic brain in vivo. Stem-cell based models are useful in understanding role of forces in the development of embryos, which are inaccessible in vivo for mammalian embryos. Blastoid formation via iPSCs is enhanced by 3D culture and substrate mechanics and may depend on endogenous forces (endo-force). Maturation of cardiomyocytes from iPSC differentiation is promoted by mechanical stretching. iPSC, induced pluripotent stem cells. Force is used here generically to represent any type of mechanical loading (force, torque, tensile or compressive stress, shear stress, torque per volume or specific torque) (exogenously or endogenously).Fig. 2. A mechanobiology model of tumor cell self-renewal and metastasis. Matrix metalloproteinases (MMPs) from the primary tumor site soften the extracellular matrix (ECM) of the tumor microenvironment and break tumor cell dormancy, leading to tumor cell invasion. Stiff (>800 Pa) differentiated tumor cells and soft (<300 Pa) undifferentiated tumor stem cells such as tumor-repopulating cells (Lv et al., 2020) enter blood vessels (intravasation), arrest at narrow vessels, and exit blood vessels (extravasation) to metastasize to distance sites and form micrometastasis. In some cases, soft tumor stem cells proliferate and self-renew within a soft matrix (e.g., bone marrow, brain, lung, and liver) to establish metastatic colonization and grow into macroscopic metastases, or survive and enter dormancy within the stiff matrix, whereas stiff differentiated tumor cells die in the soft or stiff matrix of a different tissue (denoted by an X). In some other cases, when the matrix of tumor microenvironment of metastatic sites becomes inflamed and then softened, soft dormant tumor stem cells will exit dormancy, self-renew, and grow into clinically-detectable macroscopic metastases. Note that this simple model illustrates an element of the Virchow's postulate and highlights softness-based mechanoregulation of cancer progression, which is also regulated by other physical and soluble factors and cells such as tumor-associated fibroblasts and immune cells.Fig. 3. Cell softness regulates cytotoxic T cell killing of tumor cells. Cytotoxic T cells enter tumor parenchyma, where the T cells use T cell receptor (TCR) to recognize MHC (major histocompatibility complex)-tumor antigenic peptide complex and form the synapse. The activated T cells then release perforin and granzymes to the synapse space where perforin forms pores on the plasma membrane of target tumor cells and allows the entry of granzymes into the cytoplasm, activating caspases 3 and 7 and leading to tumor cell apoptosis. However, drilling pores by perforin is not only a chemical but also a mechanical process. Cell stiffness (>600 Pa) is required for the pore formation by perforin and cell softness impairs perforin pore formation. Thus, soft (<300 Pa) tumor stem cells such as tumor-repopulating cells use their softness to evade T cell cytolysis by impeding perforin pore formation. On the other hand, activated T cells might be very soft, avoiding autolysis. In addition, it is possible that TCR-MHC binding may be equal in the molecular number but the interacting force may be weaker between the soft tumor cell and the immune cell than between the stiff tumor cell and the immune cell; as a result, the released granzyme and perforin from the immune cell may be less, contributing to less killing of the soft tumor cell. Stiff target cells are engulfed more avidly than soft target cells by macrophages, suggesting that this model may be applied to other immune cells.
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Neta Felsenthal @netafelsenthal.bsky.social · 27/03/2026
Looks amazing and needed 🤩
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Hao Yin @haoyin.bsky.social · 14/03/2026
Optical clearing & time-lapse fluorescent imaging of Live mouse Brain (up to 800 μm of depth)🤯 An acute olfactory bulb slice(P11) loaded with GCaMP6f (Ca2+ sensor) was imaged with #2PM at a depth of 150 μm during clearing with SeeDB-Live👹 #NatMethods 2026 www.nature.com/articles/s41...
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Ben Doughty @doughty-ben.bsky.social · 10/03/2026
ECM swelling pressure driving morphogenesis. Tumours can also accumulate high HA and cause pressure, I wonder how general this mechanism is across tissues. pubmed.ncbi.nlm.nih.gov/34942099/
pubmed.ncbi.nlm.nih.gov
Extracellular hyaluronate pressure shaped by cellular tethers drives tissue morphogenesis - PubMed
How tissues acquire complex shapes is a fundamental question in biology and regenerative medicine. Zebrafish semicircular canals form from invaginations in the otic epithelium (buds) that extend and fuse to form the hubs of each canal. We find that conventional actomyosin-driven behaviors are not re …
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epithelial mechanics fan club @epimechfc.bsky.social · 01/03/2026
We had covered the history of traction force microscopy (TFM) earlier: bsky.app/profile/epim... But what about applying TFM into more physiologically relevant systems, such as those in 3D? I am @barrasa-fano.bsky.social and I'll be your guide through this thread on #3DTractionForceMicroscopy.
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Nicoletta Petridou @nicolettapetridou.bsky.social · 19/02/2026
We summarised the many roles of material phase transitions in development (and they are not just mechanical 🤔)
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Prof Chris Jackson @seismatters.bsky.social · 11/02/2026
😂
One on left is a black dog and above it the words “Reality”. Below it is “I chased a squirrel” 

One the right is a black dog and above it says “LinkedIn”. Below it says, 

Proud to announce that I effectively executed a rapid-response squirrel displacement strategy to mitigate potential yard intrusions.

Humbled by the unwavering support of my family and local stakeholders.

This experience reinforced the importance of vigilance, ownership, and continuous improvement.

Looking forward to scaling this impact in future engagements.
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epithelial mechanics fan club @epimechfc.bsky.social · 08/02/2026
Hello epithelial mechanics fans!! I’m Juanma @juanmagararc.bsky.social 👋 I work on cell mechanics (see celldynamicslab.com) and use Flipper-TR FLIM to probe membrane biophysics in cells. Join me on this tour about Flipper: what it measures, strengths, advice, cool case studies, and cute drawings!
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Roux Lab, Geneva @rouxlab.bsky.social · 20/01/2026
@marineluciano.bsky.social recreates intestinal Villi geometry by growing epithelial cells on wavy rolling substrates. Unexpected intrication of curvature effects is observed. Thanks to all! @caterinatomba.bsky.social @sgabriele.bsky.social @sciencesunige.bsky.social www.biorxiv.org/content/10.6...
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FocalPlane @focalplane.bsky.social · 19/01/2026
Following on from her beautiful featured image post on FocalPlane, Christina Daly @christinaadaly.bsky.social shares her top tips for imaging cytonemes. @labogden.bsky.social. focalplane.biologists.com/2026/01/19/c...
focalplane.biologists.com
Cytoneme Imaging Tips and Tricks - FocalPlane
Cytoneme Imaging Tips and Tricks - How to
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Denis Wirtz @deniswirtz.bsky.social · 19/01/2026
Dimensionality of cell migration. Cells can move along 1D tracks, in 2D sheets, confined between a hard surface and fluid (2.5D), and within a 3D tissue. Pick the optimal cell migration assay for your application using our review paper here: www.nature.com/articles/s41...
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epithelial mechanics fan club @epimechfc.bsky.social · 18/01/2026
How can structures at the vertex of 3 cells have effects at the tissue level? Join me, @laura-rustarazo.bsky.social, to explore how tricellular junctions (TCJs) act as local tension sensors and regulators of global tissue organization. 🧵⤵️ doi.org/10.1126/scie...
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