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Raphaël Clément

@raphclement.bsky.social
223 followers 237 following 17 posts

Biophysics, developmental biology, morphogenesis @ IBDM & Centuri (CNRS / Aix-Marseille Université) raphaelclement.fr

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Reposted by Raphaël Clément
Isabelle Bonnet @ibonnetsu.bsky.social · 21/09/2026
Get lucky with your nematic analysis — DeftPunk is here! Open-source tool for orientation fields, topological defect detection (position, charge, orientation), and splay-bend anisotropy estimation. 🔬 @softmatter.rsc.org doi.org/10.1039/d6sm...
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Reposted by Raphaël Clément
Development @dev-journal.bsky.social · 04/09/2026
A developmental biologist's guide to mechanics Read this Primer from our special issue #DevSIextracellular by Jialing Cao, @raphclement.bsky.social, @pflenne.bsky.social and colleagues. journals.biologists.com/dev/article/...
Intracellular force-generating mechanisms drive tissue-scale mechanical behaviors. The central schematic provides an overview of the major cellular force-generating mechanisms in developing tissues and serves as the basis for the four surrounding panels, which illustrate how these mechanisms generate distinct tissue-scale mechanical behaviors. It includes actomyosin contractility, actin polymerization, cell–cell adhesion and ion transport through membrane channels. These processes generate and transmit forces within and between cells. (A) ATP-dependent ion transport establishes an osmotic pressure difference (ΔP), driving water influx into the lumen. Black radial arrows indicate the outward mechanical effect of the luminal pressure during lumen expansion. (B) Actin polymerization at the tissue edge generates protrusive forces that drive coordinated, directional collective cell migration. Here, leading edge refers to the advancing front of a moving cell group, featuring specialized lead
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FocalPlane @focalplane.bsky.social · 03/09/2026
We are excited to invite you to the second webinar in our cell migration series. In this webinar, we focus on new models for studying cell migration with talks from @ankita13jha.bsky.social, @raphclement.bsky.social & @katrinavelle.bsky.social. More info⤵️: focalplane.biologists.com/2026/09/03/f...
FocalPlane features... emergent models and quantitative analysis of cell migration
Thursday 17 September, 15:00-16:30 BST (UTC+1) 
Organised by Organised by Pablo J. Sáez and Valeria Venturini
FocalPlane logo
Picture of Ankita Jha (National Institutes of Health, USA)
Decoding bleb driven signaling in cancer disease progression
Picture of Raphaël Clément (L’Institut de Biologie du Développement de Marseille (IBDM), France)
Navigating without neurons or muscles: Locomotion in Trichoplax
Picture of Katrina Velle (University of Massachusetts Dartmouth, USA)
Naegleria amoebae seek confinement and crawl persistently through narrow spaces
#FocalPlaneFeatures
focalplane.biologists.com
Image of Naegleria.
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Raphaël Clément @raphclement.bsky.social · 27/08/2026
A developmental biologist's guide to mechanics, just out in Development! In which we learn about the three pillars of any mechanical model: forces, mechanical properties, and boundary conditions. @pflenne.bsky.social @alessandrochppr.bsky.social @caojialing1002.bsky.social @dev-journal.bsky.social
journals.biologists.com
A developmental biologist's guide to mechanics
Summary: A guide to mechanics in development: unlock how forces, material properties and geometry shape the forms of life.
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Joel Marthelot @joelmarthelot.bsky.social · 13/06/2026
Fresh off the press! Jeongeun and Yoël’s work on the lightning-fast actuation of the Venus flytrap. 🪴⚡ No muscles. No nerves. So what powers the trap? Cutting the trap suppresses its mechanical amplifier, the snap-through instability, and reveals the active motion. www.science.org/doi/10.1126/...
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CNRS Biologie @cnrsbiologie.bsky.social · 22/05/2026
#ResultatScientifique🔎| Comment coordonner ses mouvements sans cerveau ni muscles ? Trichoplax révèle des mécanismes inattendus qui éclairent l’évolution des premiers comportements animaux. ✍️Marvin Leria ▶️ buff.ly/eEMsBVE 📕 @currentbiology.bsky.social 🤝 @cnrs.fr @univ-amu.fr
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Raphaël Clément @raphclement.bsky.social · 22/05/2026
Our work on Trichoplax locomotion and mechanosensing capabilities is out now in @currentbiology.bsky.social. Congrats Marvin Leria & all co-authors! authors.elsevier.com/c/1n8Ig3QW8S...
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Raphaël Clément @raphclement.bsky.social · 29/04/2026
The division Physics and Life of the French Physical Society (SFP) organizes its fourth annual meeting in Lyon, July 9th & 10th! Join us and register here: phys-life-2026.sciencesconf.org Abstract submission deadline: May 30th
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Cédric Maurange @cedricmaurange.bsky.social · 28/01/2026
Tumours aren’t just a messy mix of cells—they’re highly organised and hierarchical societies! Just like in all societies, small chats between individuals can drive collective emergent behaviours - we reveal how these sustain tumour growth and cellular heterogeneity. 🧵👇
biorxiv.org
System-level regulation of hierarchical transitions in a tumour lineage
The fundamental principles defining how cell state transitions are regulated along a tumour lineage to determine its cellular composition remain unclear. Here, we investigate how such transitions are controlled in a reductionist hierarchical brain tumour model. Quantitative analysis of 3D transition maps revealed that the differentiation of cancer stem cells (CSCs) into transit amplifying progenitors (TAPs) depends on the identity of their immediate neighbours. This is embodied in a transition rule that quantitatively predicts the probability to differentiate as a function of the proportion of TAP neighbours. Integrated into 3D simulations of tumour growth, this rule spontaneously recapitulates spatial segregation of CSCs in clusters and their stable proportion. We further show in vivo that CSC clustering protects the CSC pool from depletion driven by TAPs. We identify an EGFR-mediated relay mechanism that propagates the CSC-to-TAP transition across CSC clusters. In CSCs, the LRIG1-like EGFR inhibitor Kekkon1 dampens this propagation, ensuring continuous replenishment of the CSC pool. Collectively, these findings show how local fate regulation drives emergent segregation which in turn constrains CSC differentiation dynamics. This provides a conceptual framework to understand and exploit the tumour’s intrinsic differentiation potential by manipulating the determinants of its system-level features. ### Competing Interest Statement The authors have declared no competing interest. Turing Centre for Living Systems (CENTURI) La Ligue Contre le Cancer, https://ror.org/00rkrv905, Equipe Labellisée LIGUE 2025 Fondation pour la Recherche Médicale, ANR-24-EXCI-0001, ANR-24-EXCI-0002, ANR-24-EXCI-0003, ANR-24-EXCI-0004, ANR-24-EXCI-0005 Agence Nationale de la Recherche under the France 2030 program, ANR-24-EXCI-0001, ANR-24-EXCI-0002, ANR-24-EXCI-0003, ANR-24-EXCI-0004, ANR-24-EXCI-0005 Centre South-ROCK, INCa-Cancer_18695
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Raphaël Clément @raphclement.bsky.social · 28/01/2026
Super happy to share the exciting work of Emma Legait, showing how neighbourhood composition determines cancer stem cell fate in hierarchical tumours. A great and long-standing collaboration with @cedricmaurange.bsky.social www.biorxiv.org/content/10.6...
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Christopher Thomas @ovarylab.bsky.social · 01/10/2025
Big welcome to our new PhD students @anitabichisecchi.bsky.social and @petramikec.bsky.social !! 🙌🏼💥🥚📸
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Paul Villoutreix @paulvilloutreix.bsky.social · 19/09/2025
Very happy to introduce jsPCA, a fast and interpretable computational framework for spatial transcriptomics that simultaneously identifies spatial domains and variable genes across multi-slice and multi-sample data.
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Raphaël Clément @raphclement.bsky.social · 27/08/2025
Mechanosensation and fast reorientation of ciliary structures: Marvin's work on the surprising locomotion capabilities of Trichoplax, an animal without neurons! www.biorxiv.org/content/10.1...
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IBDM, Institut de Biologie du Développement de Marseille @ibdm.bsky.social · 27/06/2025
🥇Sham Tlili has been awarded the CNRS 2025 Bronze Medal! She studies how physical forces shape living tissues by using mouse stem cell models known as gastruloids. A unique blend of physics & biology. 🔗 Read more: www.ibdm.univ-amu.fr/sham-tlili-w...
ibdm.univ-amu.fr
Sham Tlili, winner of the CNRS 2025 bronze medal - IBDM | Institut de Biologie du Développement de Marseille
A distinction that rewards a promising and already fruitful scientific career.
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Joel Marthelot @joelmarthelot.bsky.social · 06/05/2025
Déployer ses ailes : la première étape cruciale de l’insecte adulte 🪰🦋🐞 Un article grand public avec @simonhadjaje.bsky.social et édité par Elsa Couderc
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Christopher Thomas @ovarylab.bsky.social · 19/03/2025
🚨 PhD Opportunity! 🚨 Passionate about ovarian biology? This cutting-edge PhD project combines live-cell microscopy & biophysical modelling to explore the dynamic ovary! 🧬🔬 I'm happy to chat more—DM or email me to set up a Zoom call 📩 And please share! 🙌🏼 christopher.thomas@univ-amu.fr
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Paul Villoutreix @paulvilloutreix.bsky.social · 10/11/2024
Very happy to see our paper published! rdcu.be/dY48Q We developed a new spatial data analysis approach, "joint spatial PCA", to analyze the single cell morphometrics pattern in the early heart development. Our approach revealed the role of T-box genes in the second heart field. 1/n
rdcu.be
Single-cell morphometrics reveals T-box gene-dependent patterns of epithelial tension in the Second Heart field
Nature Communications - The embryonic heart tube undergoes elongation via the addition of progenitors from the second heart field, though how epithelial mechanics and genetics interact during this...
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Raphaël Clément @raphclement.bsky.social · 13/12/2024
How insects unfold their wings ! rdcu.be/d28vT
rdcu.be
Mechanics of Drosophila wing deployment
Nature Communications - Upon emerging from their pupal case, insects swiftly deploy their wings from a compact origami-like structure to a fully extended blade. Here, authors use a combination of...
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