Benoit LadouxManagement2019-01-09T09:55:32+08:00
Benoit LADOUX

Benoit LADOUX

Visiting Faculty, Mechanobiology Institute, National University of Singapore, Research Director, Université Paris Diderot & Centre National de la Recherche Scientifique (CNRS)

benoit.ladoux@ijm.fr

Laboratory website
Cell Adhesion and Mechanics Lab

Research Program
Mechanotransduction in Tissues Group

Affiliations
Research Director, Université Paris Diderot & Centre National de la Recherche Scientifique (CNRS)

Liu Fan

Senior Research Fellow, Grenci Group

By Wen Ying Lois Faith|Jan 30th, 2024|Categories: Alumni|Comments Off on Liu Fan

Benoit Ladoux

Visiting Faculty

Research Areas

Epithelial cell migration; microfabrication for cell mechanics; influence of the mechanical environments on cell functions; mechanotransduction

Research Interests

Our research aims at understanding how living organisms interact with their environment. In particular, we are studying the cooperation between adhesion, biomechanical and biochemical signaling for the adaptation of living organisms to changes in their environment. To probe these questions, our laboratory has developed a repertoire of micro- and nano-fabrication tools to control and measure the chemical and mechanical environment of cells. Our research programme thus focuses on the integration of novel microfabricated devices for the quantitative imaging of living organisms.

Biography

With a background in Physics, Prof Ladoux started his career at Curie Institute working on single molecule biophysics. He worked on two main problems combining statistical physics, microfabrication and molecular biology: 1) chromatin condensation in real time; 2) fluctuations of a single polymer under shear flows. After a post-doc on cell mechanics, he used his knowledge in biophysics and microfabrication to start a new subject on mechanical studies of cell migration and adhesion at the University Paris Diderot. He developed microsystems to characterise the mechanical interactions of cells with their migration support. He is currently working on rigidity sensing, collective cell migration and tissue homeostasis.

Recent Publications

  1. Shiratsuchi N, Fujita Y, Simon de Beco , Daubech C, Ladoux B, Grata A, Levayer R, Magny E, O'Brien LE, Priya R, Mitchell SJ, Rosenblatt J, Rupprecht J, Stockmann L, Sedzinski J, Roquin L, Suzanne M, Toyama Y, Matekcic M, Trepat X, Vinzens S, Wickström SA, Lwin AKO, and Yap AS. Meeting report - CellExIt#1, the first international symposium on cell extrusion. J Cell Sci 2026; 139(14). [PMID: 42504880]
  2. Balasubramaniam L, Monfared S, Ardaševa A, Rosse C, Schoenit A, Dang T, Maric C, Hautefeuille M, Kocgozlu L, Chilupuri R, Dubey S, Marangoni E, L Doss B, Chavrier P, Mège R, Doostmohammadi A, and Ladoux B. Dynamic forces shape the survival fate of eliminated cells. Nat Phys 2025;. [PMID: 40636322]
  3. Kawaue T, Yow I, Pan Y, Le AP, Lou Y, Loberas M, Shagirov M, Teng X, Prost J, Hiraiwa T, Ladoux B, and Toyama Y. Inhomogeneous mechanotransduction defines the spatial pattern of apoptosis-induced compensatory proliferation. Dev Cell 2023;. [PMID: 36800994]
  4. Sonam S, Balasubramaniam L, Lin S, Ivan YMY, Jaumà IP, Jebane C, Karnat M, Toyama Y, Marcq P, Prost J, Mège R, Rupprecht J, and Ladoux B. Mechanical stress driven by rigidity sensing governs epithelial stability. Nat Phys 2022; 19:132-141. [PMID: 36686215]
  5. Rose N, Estrada Chavez B, Sonam S, Nguyen T, Grenci G, Bigot A, Muchir A, Ladoux B, Cadot B, Le Grand F, and Trichet L. Bioengineering a miniaturized in vitro 3D myotube contraction monitoring chip to model muscular dystrophies. Biomaterials 2022; 293:121935. [PMID: 36584444]
  6. . https://www.ncbi.nlm.nih.gov/pubmed/36103541
  7. Yang Y, Nguyen E, Sankara Narayana GHN, Heuzé M, Fu C, Yu H, Mège R, Ladoux B, and Sheetz MP. Local contractions regulate E-cadherin rigidity sensing. Sci Adv 2022; 8(4):eabk0387. [PMID: 35089785]
  8. . https://www.ncbi.nlm.nih.gov/pubmed/33850145
  9. Latorre E, Kale S, Casares L, Gómez-González M, Uroz M, Valon L, Nair RV, Garreta E, Montserrat N, Del Campo A, Ladoux B, Arroyo M, and Trepat X. Addendum: Active superelasticity in three-dimensional epithelia of controlled shape. Nature 2021;. [PMID: 33846613]
  10. Balasubramaniam L, Doostmohammadi A, Saw TB, Narayana GHNS, Mueller R, Dang T, Thomas M, Gupta S, Sonam S, Yap AS, Toyama Y, Mège R, Yeomans JM, and Ladoux B. Author Correction: Investigating the nature of active forces in tissues reveals how contractile cells can form extensile monolayers. Nat Mater 2021;. [PMID: 33750921]

Lab Members

How does integrin clustering affect integrin signalling?

Nov 30th, 2023|Comments Off on How does integrin clustering affect integrin signalling?

How does integrin clustering affect integrin signaling? Localization of Integrin The concentration of β subunits is generally high while that of α subunit is the factor limiting the amount of heterodimers that localize on [...]

How is integrin activated?

Nov 30th, 2023|Comments Off on How is integrin activated?

How is integrin activated? Integrin activation is an important mechanism through which cells regulate integrin function by manipulating the ligand affinity of integrins spatially and temporally. Structural and functional studies suggest that integrins can [...]

What ligands bind to integrin?

Nov 30th, 2023|Comments Off on What ligands bind to integrin?

What ligands bind to integrin? Integrin-Ligand specificity Humans have at least 18 α subtypes and 8 β subtypes which together generate 24 known binding pairs for the integrins heterodimer (reviewed in [1][2]). The α [...]

What is integrin extension?

Nov 30th, 2023|Comments Off on What is integrin extension?

What is integrin extension? Integrin extension Upon alteration in the transmembrane and their proximal domains, the bent headpiece extends in less than 1 second [1] with intermediate affinity for ligands. Two models- “switchblade” and [...]

What are guidance cues?

Nov 30th, 2023|Comments Off on What are guidance cues?

What are guidance cues? During neural development, highly motile structures on the developing neurites, called growth cones, are guided by signals from the extracellular environment. Guidance cues come in many different forms, from diffusible [...]

How do neurotrophins, collapsin, and ephrins, serve as guidance cues?

Nov 30th, 2023|Comments Off on How do neurotrophins, collapsin, and ephrins, serve as guidance cues?

How do neurotrophins, collapsin, and ephrins, serve as guidance cues? Neurotrophins Stimulating filopodia formation A secreted guidance cue which stimulates filopodia formation in growth cones. Two examples of secreted neurotrophins, brain-derived neurotrophic factor (BDNF) [...]

What is the Hippo-YAP/TAZ tumor-suppressor pathway?

Nov 30th, 2023|Comments Off on What is the Hippo-YAP/TAZ tumor-suppressor pathway?

What is the Hippo-YAP/TAZ tumor-suppressor pathway? Mechanical cues control Hippo-YAP/TAZ tumor-suppressor pathway The Hippo signaling pathway is a complex network of proteins that controls organ size via regulation of cellular proliferation, survival and differentiation. [...]

What is the Canonical Wnt Receptor Signaling Pathway?

Nov 30th, 2023|Comments Off on What is the Canonical Wnt Receptor Signaling Pathway?

What is the Canonical Wnt Receptor Signaling Pathway? The canonical Wnt receptor signaling pathway is a series of molecular events that are initiated by the binding of Wnt proteins to the frizzled family of [...]

How is SRF signaling activated?

Nov 30th, 2023|Comments Off on How is SRF signaling activated?

How is SRF signaling activated? Myocardin, MAL (or MRTF-A) and MRTF-B are the best-studied examples of MRTFs. In the cytoplasm, MRTFs exist in a stable complex with monomeric G-actin via RPEL domains, which exist [...]

What is the NF-κB pathway?

Nov 30th, 2023|Comments Off on What is the NF-κB pathway?

What is the NF-κB pathway? NF-κB (nuclear factor kappa light chain enhancer of activated B cells) is a family of highly conserved transcription factors that regulate many important cellular behaviours, in particular, inflammatory responses, [...]

Which biochemical pathways are regulated by mechanical signals?

Nov 30th, 2023|Comments Off on Which biochemical pathways are regulated by mechanical signals?

Which biochemical pathways are regulated by mechanical signals? Biochemical Mechanotransduction Cells are capable of relaying mechanical stimuli from their physical environment all the way down to the nucleus through electrochemical, biochemical or mechanical pathways. [...]

What is Serum Response Factor?

Nov 30th, 2023|Comments Off on What is Serum Response Factor?

What is Serum Response Factor? Serum response factor (SRF) is a transcription factor that plays a key role in the transduction of mechanical signals from cytoplasmic actin and the extracellular environment, to the cell [...]

About the National University of Singapore

About NUSA leading global university centred in Asia, NUS is Singapore's flagship university, offering a global approach to education and research with a focus on Asian perspectives and expertise.

About the Mechanobiology Institute, National University of Singapore

About MBIOne of four Research Centres of Excellence at NUS, MBI is working to identify, measure and describe how the forces for motility and morphogenesis are expressed at the molecular, cellular and tissue level.
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