Wu MinManagement2020-01-09T16:14:04+08:00

WU Min

Collaborator, Mechanobiology Institute, National University of Singapore

dbswum@nus.edu.sg
+65 6601 2310
CBIS Blk S1A, Level 2 Lee Wee Kheng Bldg
National University of Singapore
14 Science Drive 4
Singapore 117557

Laboratory website
Wu Lab Deconstructing the Endocytic Machinery

Research Program
The Cell-Matrix and Cell-Cell Mechanotransduction Group

Affiliations
Department of Biological Sciences, National University of Singapore

Wu Min

Collaborator

Research Areas

Endocytosis, Membrane traffic, Curvature, Actin cytoskeleton, Mechanotransduction

Research Interests

Dr Wu is interested in elucidating the principles underlying the organization and dynamics of the subcellular membrane compartments. Specifically her lab investigates how biological membranes are shaped through collective protein-lipid interactions and how geometry of the membrane compartment is coupled to cellular functions. The Wu Lab uses a combination of cell biological, biophysical and biochemical approaches to address these questions.

Biography

Dr Wu Min graduated from Peking University in China and received her bachelor degree in Chemistry. She did her graduate studies at Cornell University with Dr Barbara Baird, where she initiated the use of patterned lipid bilayers as antigen-presenting platforms and studied immune cell activation and signal transduction. During her post-doctoral research in the laboratory of Dr Pietro De Camilli at Yale School of Medicine, she focused on the molecular mechanisms of endocytosis. In 2011, she was awarded the NRF fellowship, joining CBIS/MBI in the fall.

Education

PhD Cornell University

Recent Publications

  1. Xiong D, Tong C, Fung SYS, McClellan S, Yang Y, Yong J, and Wu M. STIM1 and endoplasmic reticulum-plasma membrane contact sites oscillate independently of calcium-induced calcium release. Open Biol 2026; 16(3). [PMID: 41844235]
  2. Chua XL, Tong CS, Su M, Xǔ XJ, Xiao S, Wu X, and Wu M. Competition and synergy of Arp2/3 and formins in nucleating actin waves. Cell Rep 2024; 43(7):114423. [PMID: 38968072]
  3. Tong CS, Su M, Sun H, Chua XL, Xiong D, Guo S, Raj R, Ong NWP, Lee AG, Miao Y, and Wu M. Collective dynamics of actin and microtubule and its crosstalk mediated by FHDC1. Front Cell Dev Biol 2024; 11:1261117. [PMID: 38567385]
  4. Le Chua X, Tong CS, Xǔ XJ, Su M, Xiao S, Wu X, and Wu M. Competition and Synergy of Arp2/3 and Formins in Nucleating Actin Waves. bioRxiv 2023;. [PMID: 37745345]
  5. Su M, Zhuang Y, Miao X, Zeng Y, Gao W, Zhao W, and Wu M. Comparative Study of Curvature Sensing Mediated by F-BAR and an Intrinsically Disordered Region of FBP17. iScience 2020; 23(11):101712. [PMID: 33205024]
  6. Chen Y, Yong J, Martínez-Sánchez A, Yang Y, Wu Y, De Camilli P, Fernández-Busnadiego R, and Wu M. Dynamic instability of clathrin assembly provides proofreading control for endocytosis. J. Cell Biol. 2019;. [PMID: 31451612]
  7. . https://www.ncbi.nlm.nih.gov/pubmed/31390543
  8. Yong J, Chen Y, and Wu M. Real-Time Monitoring of Clathrin Assembly Kinetics in a Reconstituted System. Methods Mol. Biol. 2018; 1847:177-187. [PMID: 30129017]
  9. Yang Y, and Wu M. Rhythmicity and waves in the cortex of single cells. Philos. Trans. R. Soc. Lond., B, Biol. Sci. 2018; 373(1747). [PMID: 29632268]
  10. McPherson PS, and Wu M. Light, space, and time in cancer signaling. Mol. Biol. Cell 2018; 29(6):688. [PMID: 29535172]

Lab Members

Protein Localization

Nov 30th, 2023|Comments Off on Protein Localization

Protein LocalizationIn order for subcellular processes to be carried out within defined compartments or cellular regions, mechanisms must exist to ensure the required protein components are present at the sites and at an adequate concentration. [...]

Spatiotemporal control of DNA, RNA, protein and lipid synthesis

Nov 30th, 2023|Comments Off on Spatiotemporal control of DNA, RNA, protein and lipid synthesis

Spatiotemporal control of DNA, RNA, protein and lipid synthesisIn eukaryotes, synthesis of DNA, RNA, proteins and lipids is performed in a spatiotemporal manner. Each molecule is produced within specialized organelles or compartments with strict regulatory [...]

How do Focal Adhesions Sense the Physical Properties of the Matrix?

Nov 30th, 2023|Comments Off on How do Focal Adhesions Sense the Physical Properties of the Matrix?

How do Focal Adhesions Sense the Physical Properties of the Matrix?Based on the hypothetical protein switches, two models (1 and 2 below) have been put forth to describe the physical mechanism of focal adhesion mechanosensitivity [...]

The Cell

Nov 30th, 2023|Comments Off on The Cell

The CellCells are the basic units of life; small machines that facilitate and sustain every process within a living organism. Muscle cells contract to maintain a heartbeat and allow us to move, neurons form networks [...]

Actin Filaments

Nov 30th, 2023|Comments Off on Actin Filaments

What are actin filaments? Actin filaments (F-actin) are linear polymers of globular actin (G-actin) subunits and occur as microfilaments in the cytoskeleton and as thin filaments, which are part of the contractile apparatus, in [...]

How are actin filaments distributed in cells and tissues?

Nov 30th, 2023|Comments Off on How are actin filaments distributed in cells and tissues?

How are actin filaments distributed in cells and tissues? Actin filaments are widely distributed throughout cells, forming a range of cytoskeletal structures and contributing to an even broader range of processes. Some of the [...]

How do actin filaments act as a force-sensing conduit for both internal and external forces?

Nov 30th, 2023|Comments Off on How do actin filaments act as a force-sensing conduit for both internal and external forces?

How do actin filaments act as a force-sensing conduit for both internal and external forces? Internal forces The orientation of individual actin filaments in the cytoskeleton is a force-driven evolutionary process [1] that contributes [...]

How do actin filaments depolymerize?

Nov 30th, 2023|Comments Off on How do actin filaments depolymerize?

How do actin filaments depolymerize? Introduction to Actin Filament Depolymerization Whole cell motility and mechanosensing rely on the continual restructuring of the cytoskeleton, particularly within lamellipodia and filopodia; two dynamic structures that contribute to [...]

How does Arp2/3-mediate the nucleation of branched filaments?

Nov 30th, 2023|Comments Off on How does Arp2/3-mediate the nucleation of branched filaments?

How does Arp2/3-mediate the nucleation of branched filaments? The Arp2/3 complex is composed of 7 evolutionarily conserved subunits (Arp2, Arp3, ARPC1-C5) that are structurally similar to the barbed end of actin [1]. The complex [...]

How do actin filaments grow?

Nov 30th, 2023|Comments Off on How do actin filaments grow?

How do actin filaments grow? Actin Filaments (F-actin) grow from the polymerization of G-actin monomers Actin is a highly abundant (10-100 micromolar on average),~42 kDa structural protein found in all eukaryotic cells (except for [...]

What are the functions of actin filaments?

Nov 30th, 2023|Comments Off on What are the functions of actin filaments?

What are the functions of actin filaments? Several biological processes related to cell shape and movement depend on actin filaments (reviewed in [1]). Some keys functions are: To form the dynamic cytoskeleton, which gives [...]

What is actin nucleation?

Nov 30th, 2023|Comments Off on What is actin nucleation?

What is actin nucleation? The first step in actin polymerization is known as ‘nucleation’. This step sees the formation of an actin nucleus, which is essentially a complex of three actin monomers, from which [...]

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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