
GV SHIVASHANKAR
Principal Investigator, Mechanobiology Institute, IFOM-NUS Chair Professor, National University of Singapore
shiva.gvs@gmail.com
+65 6516 2712 ext 62712
Level 10 T-Lab
National University of Singapore
5A Engineering Drive 1
Singapore 117411
Affiliations
Head, IFOM-NUS Joint Research Laboratory, National University of Singapore
Spark-In-Science Program
Spark-in-Science is a non-profit initiative aimed at igniting scientific temper in high school and pre-university students.
In the News
- Today Online: Study to detect cancer before symptoms develop shows promise
- Straits Times: NUS research: Squeezing mature cells to become stem cells
- Channel News Asia: Becoming Human, Episode 2: Unnatural Genius
The Shivashankar Lab is hiring multiple PhD and Postdoctoral positions starting in Jan 2020. Learn more.
DECIPHERing the Role of Cell-Matrix Interactions in Ageing Heart Health
Researchers from the Soft Nano-Biomaterials Lab at MBI developed a material system to enable precise investigation into how individual ECM properties affect cultured heart cells.
Seeking Postdoctoral Research Fellow in the research group of Dr. Tsuyoshi Hirashima at the Mechanobiology Institute, NUS
We are seeking to recruit a Postdoctoral Research Fellow in the research group of Dr. Tsuyoshi Hirashima at the Mechanobiology Institute, NUS.
How Dying Cells Signal Growth: Mechanical Forces Drive Targeted Cell Proliferation after Apoptosis
Researchers from the Toyama Lab at MBI reveal how mechanical factors control apoptosis and cell replacement.
GV Shivashankar
Principal Investigator (2011-2019)
Research Areas
Nuclear mechanics, 3D chromosome organization, genome regulation, disease diagnostics
Nuclear Mechanogenomics & Cancer Diagnostics Laboratory
Shivashankar’s lab pursues research in understanding the role of cell mechanics on nuclear mechanotransduction and genome regulation.
Extra-cellular micro-environmental signals are transduced to the nucleus to regulate diverse biological processes including cellular differentiation, development and homeostasis; but the underlying mechanisms are still unclear. In this context, how such micro-environmental signals alter nuclear mechanical architecture and how it integrates with the 3D organization of chromosomes and transcription networks are rather unexplored. Using a multidisciplinary approach combining high resolution optical imaging, quantitative single-cell biology, machine learning and functional genomics, our laboratory investigates the principles underlying the coupling between nuclear mechanics and genome regulation. Our recent and ongoing work provides modular links between cellular geometry and nuclear mechanics and its impact on transcription dependent 3D organization of chromosomes and reprogramming. Such modular links define the normal state of cells and are altered during diseases. Hence our studies also have profound impact on developing single-cell nuclear biomechanical markers for early disease diagnosis and therapeutic intervention.
Biography
Shivashankar is a principal investigator at the Mechanobiology Institute, National University of Singapore. His laboratory is focused on understanding the role of cell mechanics on nuclear mechanotransduction and genome regulation in living cells using a multi-disciplinary approach. He carried out his PhD research at the Rockefeller University (1994-1999) and Postdoctoral research at NEC Research Institute, Princeton USA (1999-2000). He started his laboratory at the National Center for Biological Sciences, TIFR- Bangalore, India (2000-2009) before relocating to a tenured faculty position at the National University of Singapore in 2009. He was the Deputy Director of the Mechanobiology Institute (2011-2019). More recently he also heads a joint research laboratory with the FIRC Institute of Molecular Oncology (IFOM), Milan, Italy and was appointed as an IFOM-NUS Chair Professor in 2014. His scientific awards include the Birla Science Prize (2006), the Swarnajayanthi Fellowship (2007), and he was elected to the Indian Academy of Sciences (2010) and to the EMBO membership (2019). He will be relocating to a tenured Full Professorship at ETH Zurich jointly with the Paul Scherrer Institute, Switzerland, to start the Laboratory of Mechano-Genomics in January 2020.
Education
PhD The Rockefeller University, USA
Funding
Mechanobiology Institute, Ministry of Education Tier-3 Co-Investigator Grant & IFOM-MBI Joint Research Laboratory, Singapore.
Recent Publications
- Mitra A, Cutiongco MFA, Burla R, Zeng Y, Na Q, Kong M, Vinod B, Nai MH, Hübner B, Ludwig A, Lim CT, Shivashankar GV, Saggio I, and Zhao W. Acute chromatin decompaction stiffens the nucleus as revealed by nanopillar-induced nuclear deformation in cells. Proc Natl Acad Sci U S A 2025; 122(19):e2416659122. [PMID: 40343993]
- Das R, Sakaue T, Shivashankar GV, Prost J, and Hiraiwa T. Chromatin Remodeling Due to Transient-Link-and-Pass Activity Enhances Subnuclear Dynamics. Phys Rev Lett 2024; 132(5):058401. [PMID: 38364140]
- Jiang K, Lim SB, Xiao J, Jokhun DS, Shang M, Song X, Zhang P, Liang L, Low BC, Shivashankar GV, and Lim CT. Deleterious Mechanical Deformation Selects Mechanoresilient Cancer Cells with Enhanced Proliferation and Chemoresistance. Adv Sci (Weinh) 2023;:e2201663. [PMID: 37218524]
- Das R, Sakaue T, Shivashankar GV, Prost J, and Hiraiwa T. How enzymatic activity is involved in chromatin organization. Elife 2022; 11. [PMID: 36472500]
- Yuan L, Roy B, Ratna P, Uhler C, and Shivashankar GV. Lateral confined growth of cells activates Lef1 dependent pathways to regulate cell-state transitions. Sci Rep 2022; 12(1):17318. [PMID: 36243826]
- Venkatachalapathy S, Sreekumar D, Ratna P, and Shivashankar GV. Actomyosin contractility as a mechanical checkpoint for cell state transitions. Sci Rep 2022; 12(1):16063. [PMID: 36163393]
- Venkatachalapathy S, Jokhun DS, Andhari M, and Shivashankar GV. Single cell imaging-based chromatin biomarkers for tumor progression. Sci Rep 2021; 11(1):23041. [PMID: 34845273]
- Ghanbarzadeh Nodehi S, Shivashankar GV, Prost J, and Mohammad-Rafiee F. The characteristics of nuclear membrane fluctuations in stem cells. J R Soc Interface 2021; 18(176):20201010. [PMID: 33715401]
- Yang KD, Belyaeva A, Venkatachalapathy S, Damodaran K, Katcoff A, Radhakrishnan A, Shivashankar GV, and Uhler C. Multi-domain translation between single-cell imaging and sequencing data using autoencoders. Nat Commun 2021; 12(1):31. [PMID: 33397893]
- Lee Y, and Shivashankar GV. Analysis of transcriptional modules during human fibroblast ageing. Sci Rep 2020; 10(1):19086. [PMID: 33154459]
Lab Members
Fimbrin
Fimbrin Fimbrin (aka plastin homologue, accumentin) is an actin binding protein that was originally identified in microvilli [1][2]. This schematic diagram illustrates the molecular organization of fimbrin as depicted in this resource, and [...]
I-BAR and Other Proteins/Factors
I-BAR and Other Proteins/Factors Proteins containing I-BAR (inverted Bin/amphiphysin/Rvs i.e. IRSp53 Missing-in-metastasis homology Domain or IMD) cooperate with various components of actin filament assembly, to promote filopodia protrusion, via several mechanisms including the stimulation [...]
What is capping protein?
What is capping protein? Capping protein is involved in actin filament assembly and disassembly Capping proteins control access to the free barbed ends of actin filaments and is therefore a major factor affecting actin [...]
How are intermediate filaments assembled?
How are intermediate filaments assembled? The soluble subunit for creating intermediate filaments is a tetramer. The tetramer is created from monomers in a stepwise fashion (as reviewed in [1]). First, two monomers associate via [...]
What are microtubules?
What are microtubules? Microtubules are hollow cylinders [1] that are approximately 25nm in diameter [2] and vary in length from 200 nm to 25 μm. They are formed by the lateral association of between [...]
How does the tubulin complex assemble?
How does the tubulin complex assemble? Microtubules are made up of repeating units of α/β- tubulin heterodimers, which are assembled on a γ-tubulin ring complex (a complex of γ-tubulin and other protein components), during [...]
How is microtubule assembly/disassembly regulated?
How is microtubule assembly/disassembly regulated? GTP hydrolysis has been shown to be a key regulator of microtubule polymerization dynamics. Although the exact mechanisms are poorly understood, two opposing models have been proposed to describe [...]
What is microtubule dynamic instability?
What is microtubule dynamic instability? In most cell types, thirteen protofilaments associate laterally to form a microtubule. In a few cases microtubules contain more or fewer protofilaments [1]. Numerous interactions between the subunits give [...]
What is the role of microtubules in mechanotransduction?
What is the role of microtubules in mechanotransduction? Microtubules exist in all cells, however their influence in the mechanotransduction of mechanical stimuli has been described at length in cardiac striated muscle [1]. Mechanical stimuli [...]
What are Contractile Fibers?
What are Contractile Fibers? Certain myosin isoforms (i.e. myosin II) form bipolar assemblies via the extended coiled-coil domains in the heavy chains (see also “thick filaments”). Actin “thin filaments” with opposite polarity associate with [...]
What is Actomyosin?
What is Actomyosin? Actomyosin refers to the actin-myosin complex that forms within the cytoskeleton. Actomyosin is inherently contractile, with the myosin motor protein able to pull on actin filaments. This property gives rise to [...]
How is actomoysin contractility regulated?
How does the contractome protein network regulate actomyosin contractility? Non-muscle myosin II isoforms have a similar structure and function to their muscle equivalents. However, their interaction with actin serves to generate cellular forces rather [...]


