
SAW Thuan Beng
Alumni, Research Associate, Mechanobiology Institute, National University of Singapore
mbistb@nus.edu.sg
Level 9 T-Lab
National University of Singapore
5A Engineering Drive 1
Singapore 117411
What is tensin?
What is tensin? Tensin is a cytoskeleton scaffolding protein that was named for its ability to form a bridge that maintains tension between the actin filaments and cell-matrix adhesion sites (reviewed in [1]). A [...]
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 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 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, [...]
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 [...]
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 [...]
Saw Thuan Beng
Alumni, Research Associate
Principal Investigator
Research Interests
Recent Publications
- Jiang X, Xu P, Feng F, Grenci G, and Saw TB. Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device. J Vis Exp 2025;(223). [PMID: 41052031]
- Wang Y, Wang Y, Zhu Y, Yu P, Zhou F, Zhang A, Gu Y, Jin R, Li J, Zheng F, Yu A, Ye D, Xu Y, Liu Y, Saw TB, Hu G, Lim CT, and Yu F. Angiomotin cleavage promotes leader formation and collective cell migration. Dev Cell 2024;. [PMID: 39389053]
- Delanoë-Ayari H, Hiraiwa T, Marcq P, Rieu J, and Saw TB. 2.5D Traction Force Microscopy: Imaging three-dimensional cell forces at interfaces and biological applications. Int J Biochem Cell Biol 2023;:106432. [PMID: 37290687]
- . https://www.ncbi.nlm.nih.gov/pubmed/36103541
- 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]
- 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. Investigating the nature of active forces in tissues reveals how contractile cells can form extensile monolayers. Nat Mater 2021;. [PMID: 33603188]
- Teo JL, Lim CT, Yap AS, and Saw TB. A Biologist's Guide to Traction Force Microscopy Using Polydimethylsiloxane Substrate for Two-Dimensional Cell Cultures. STAR Protoc 2020; 1(2):100098. [PMID: 33111126]
- Chen T, Saw TB, Mège R, and Ladoux B. Mechanical forces in cell monolayers. J. Cell. Sci. 2018; 131(24). [PMID: 30573527]
- Saw TB, Xi W, Ladoux B, and Lim CT. Biological Tissues as Active Nematic Liquid Crystals. Adv. Mater. Weinheim 2018;:e1802579. [PMID: 30156334]
- Saw TB, Doostmohammadi A, Nier V, Kocgozlu L, Thampi S, Toyama Y, Marcq P, Lim CT, Yeomans JM, and Ladoux B. Topological defects in epithelia govern cell death and extrusion. Nature 2017; 544(7649):212-216. [PMID: 28406198]

