
Gianluca GRENCI
Research Assistant Professor, Department of Biomedical Engineering, National University of Singapore
Facility Manager, Nano and Microfabrication Core
mbigg@nus.edu.sg
Level 10 T-Lab
National University of Singapore
5A Engineering Drive 1
Singapore 117411
Hannah Abilaguyo YUSON
PhD Student, Class of August 2025, Holle Group
Diya NARANG
PhD Student, Class of August 2025, Michelot Group
QUAN Cheng
PhD Student, Class of August 2025, Li Group
CHEAM Mei Shan
PhD Student, Class of August 2025, Toyama Group
Thanks to Christiani Amorim at UC Louvain, for the kind invitation
Looking forward to new collaborations in the future!
Congratulations to Wee Juin Shin for being selected to present his work at the Amgen Scholars Asia Symposium!
Our Amgen scholar, Wee Juin Shin, has been selected to present his work on ‘the Influence of substrate curvature on theca cell nematic flow’, at the Amgen Scholar Asia Symposium in Kyoto!
Gianluca Grenci
Research Assistant Professor, Facility Manager
Research Interests
Microfluidics, Micro-optical systems for live cell imaging
Our laboratory is primarily interested in the application of micro/nano fabrication technology to biological science. We exploit standard and advanced micro-fabrication tools in order to design and produce systems and devices for cell culturing and imaging. Examples of such devices are: topographically and/or chemically micro-textured environments, microfluidic devices, micro-optical systems and more.
We are also interested in developing microfluidic devices for FTIR spectromicroscopy of living cells. FTIR is an imaging technique that is intrinsically label-free and requires minimal sample preparation; when coupled with microscopy and high brilliance IR sources it allows the acquisition of chemical maps at a resolution which is diffraction limited. Absorption of IR photons induces very low or no damage at all, therefore it is in principle possible to observe for prolonged time the behaviour of living cells. Our research activity is intended to develope microfludic platforms suitable for FTIR (key parameters are optical transparency and low IR absorption) while keeping cells alive and healthy; a beneficial feature provided by micro-fabrication approach is the possibility to control of the chemical environment at the micro-scale.
Research Areas
Micro/nano engineering, microfluidic, FTIR
Biography
Dr Gianluca Grenci joined MBI in 2012 as a research fellow and head of the Micro Fabrication Core facility. Previously he was employed at the LILIT micro/nano fabrication group (IOM-CNR, Trieste, IT) for a total of 6 years, during which he was mainly involved in the design and fabrication of microfluidic devices for synchrotron-light related spectroscopic techniques, such as SAXS and FTIR. He thus developed extensive practical knowledge on all the major lithographic technologies (UV and EB lithography, wet/dry etching, soft-lithography, thin films deposition), plus some less usual and/or more advanced technique, such as X-ray Lithography and LIGA.
He did his PhD in the field of applied superconductivity, in a project aimed to develop a current cryo-comparator (CCC) using high critical temperature superconductors of the cuprate family (YBCO) in the form of a thick film deposited onto a large area, complex shaped silver substrate.
Education
PhD Polytechnic of Torino, DISPEA
Recent Publications
- Zhang Z, Canela A, Kurisu J, Zou P, Kawaue T, Nakazawa N, Takeda N, Saeki M, Utsunomiya M, Bilgic M, Ishidate F, Grenci G, Furuta T, Kishi Y, Sasanuma H, and Kengaku M. Confined migration induces non-lethal DNA damage in developing neurons. Nature 2026;. [PMID: 42310452]
- Gandin A, Torresan V, Panciera T, Grenci G, Vanni G, Citron A, Marchionni M, Battilana G, Pelosin M, Busetto R, Piccolo S, and Brusatin G. Flexible high-resolution ECM micropatterning. Nat Protoc 2026;. [PMID: 42129485]
- Dunsing-Eichenauer V, Hummert J, Chardès C, Schönau T, Guignard L, Galland R, Grenci G, Tillmann M, Koberling F, Nock C, Sibarita J, Viasnoff V, Antolovic IM, Erdmann R, and Lenne P. Fast volumetric fluorescence lifetime imaging of multicellular systems using single-objective light-sheet microscopy. Commun Biol 2025;. [PMID: 41315677]
- 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]
- Cabillic M, Forriere H, Bettarel L, Butler C, Neuhaus A, Idrissi I, Sambrano-Lopez ME, Rossbroich J, Müller L, Ries J, Grenci G, Viasnoff V, Levet F, Sibarita J, and Galland R. In-depth single molecule localization microscopy using adaptive optics and single objective light-sheet microscopy. Nat Commun 2025; 16(1):8362. [PMID: 40993142]
- Mu B, Rutkowski DM, Grenci G, Vavylonis D, and Zhang D. Ca2+-dependent vesicular and non-vesicular lipid transfer controls hypoosmotic plasma membrane expansion. BMC Biol 2025; 23(1):207. [PMID: 40629316]
- Ong HT, Karatas E, Poquillon T, Grenci G, Furlan A, Dilasser F, Mohamad Raffi SB, Blanc D, Drimaracci E, Mikec D, Galisot G, Johnson BA, Liu AZ, Thiel C, Ullrich O, , Racine V, and Beghin A. Digitalized organoids: integrated pipeline for high-speed 3D analysis of organoid structures using multilevel segmentation and cellular topology. Nat Methods 2025;. [PMID: 40369245]
- Arora A, Rizvi MS, Grenci G, Dilasser F, Fu C, Ganguly M, Vaishnavi S, Paramsivam K, Budnar S, Noordstra I, Yap AS, and Viasnoff V. Viscous dissipation in the rupture of cell-cell contacts. Nat Mater 2025;. [PMID: 40355570]
- Nakazawa N, Grenci G, Kameo Y, Takeda N, Sawada T, Kurisu J, Zhang Z, Toma K, Adachi T, Nonomura K, and Kengaku M. PIEZO1-dependent mode switch of neuronal migration in heterogeneous microenvironments in the developing brain. Cell Rep 2025; 44(3):115405. [PMID: 40053456]
- Suryana M, Produit T, Yang H, Birarda G, Shanmugar JV, Krivitsky L, Paterova A, and Grenci G. Infrared imaging with visible light in microfluidic devices: the water absorption barrier. Analyst 2024;. [PMID: 39692693]
Selected Publications
- Mona Suryana, Jegan V. Shanmugarajah, Sivakumar M. Maniam, Gianluca Grenci. Soft Lithographic Procedure for Producing Plastic Microfluidic Devices with View-ports Transparent to Visible and Infrared Light
- Mohammed Ashraf, Sree V. Sundararajan, Gianluca Grenci. Low-power, low-pressure reactive-ion etching process for silicon etching with vertical and smooth walls for mechanobiology application
Lab Members
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. [...]
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 [...]
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 [...]
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?
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?
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 [...]
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 [...]
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?
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 is the role of cortactin in actin polymerization?
What is the role of cortactin in actin polymerization? Cortactin is a class II nucleation promoting factor (NPF) that binds to actin filaments and influences their stability. Cortactin specifically stabilizes Arp2/3-mediated branch points along [...]
What is the role of formin in actin polymerization?
What is the role of formin in actin polymerization? Formins promote the elongation of pre-existing filaments by removing barbed end capping proteins and forming a sleeve around the actin subunits. Formins are also capable [...]
What factors influence actin filament length and treadmilling?
What factors influence actin filament length and treadmilling? Several factors influence actin filament length and treadmilling. ATP binding on G-actin and free ATP-G-actin concentration ATP-binding on actin subunits modulates the dynamics of filament assembly, [...]
Former Lab Members
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. [...]
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 [...]
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 [...]
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?
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?
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 [...]
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 [...]
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?
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 is the role of cortactin in actin polymerization?
What is the role of cortactin in actin polymerization? Cortactin is a class II nucleation promoting factor (NPF) that binds to actin filaments and influences their stability. Cortactin specifically stabilizes Arp2/3-mediated branch points along [...]
What is the role of formin in actin polymerization?
What is the role of formin in actin polymerization? Formins promote the elongation of pre-existing filaments by removing barbed end capping proteins and forming a sleeve around the actin subunits. Formins are also capable [...]
What factors influence actin filament length and treadmilling?
What factors influence actin filament length and treadmilling? Several factors influence actin filament length and treadmilling. ATP binding on G-actin and free ATP-G-actin concentration ATP-binding on actin subunits modulates the dynamics of filament assembly, [...]


