Linda J KenneyManagement2020-02-03T15:31:05+08:00
Linda J Kenney

Seeking Postdoctoral Research Fellow in the Vascular Mechano-medicine Lab of Dr. Shailaja Seetharaman at the Mechanobiology Institute, NUS

We are seeking to recruit a Postdoctoral Research Fellow in the research group of Dr. Shailaja Seetharaman at the Mechanobiology Institute and Department of Physiology at the Yong Loo Lin School of Medicine, NUS.

By Wen Ying Lois Faith|Sep 23rd, 2025|Categories: Job Archives|Comments Off on Seeking Postdoctoral Research Fellow in the Vascular Mechano-medicine Lab of Dr. Shailaja Seetharaman at the Mechanobiology Institute, NUS

Linda J Kenney

Alumni

Research Areas

Signal transduction in bacteria; Bacterial Pathogenesis; Mechanotransduction and osmotic signaling in E. coli; Mechanisms of anti-silencing of virulence genes in Salmonella

Research Interests

Our laboratory is interested in signal transduction and the regulation of gene expression in prokaryotes. In particular, we are studying the two-component regulatory system EnvZ/OmpR that regulates the expression of outer membrane proteins as well as many other genes. Our present work focuses on how OmpR activates genes required for systemic infection (located on Salmonella pathogenicity island 2) in Salmonella enterica.

The Kenney Lab’s research was recently featured in an article exploring the bacterial molecular switch between virulence or dormancy, Salmonella Lifestyle Choices. Members of her lab have discovered that the bacterial protein SsrB is the molecular switch for determining whether Salmonella infections become acute and virulent, or remain in a dormant carrier state.

The study is published in eLife (Desai et al., The horizontally-acquired response regulator SsrB drives a Salmonella lifestyle switch by relieving biofilm silencing, February 2, 2016, eLife 2016; 5: e10747, doi: 10.7554/eLife.10747). Read full article.

Biography

Dr Kenney is a Professor of Microbiology at the University of Illinois-Chicago. Her laboratory studies two-component systems in bacteria that control gene expression at a single cell and nanometer level.

Professor Linda J Kenney and Professor Michael Sheetz interviewed by the Washington Post at the April 2017 March for Science.

Education

PhD University of Pennsylvania

Recent Publications

  1. Fernandez M, Yamanaka Y, Zangoui P, White MA, and Kenney LJ. The sulfur assimilation pathway mitigates redox stress from acidic pH in Salmonella Typhi H58. mBio 2025;:e0046725. [PMID: 40422406]
  2. Shetty D, and Kenney LJ. A pH-sensitive switch activates virulence in Salmonella. Elife 2023; 12. [PMID: 37706506]
  3. Oh D, Liu X, Sheetz MP, and Kenney LJ. Small, Dynamic Clusters of Tir-Intimin Seed Actin Polymerization. Small 2023;:e2302580. [PMID: 37649226]
  4. Mon KKZ, Si Z, Chan-Park MB, and Kenney LJ. Polyimidazolium Protects against an Invasive Clinical Isolate of Salmonella Typhimurium. Antimicrob Agents Chemother 2022;:e0059722. [PMID: 36094258]
  5. Jacob H, Geng H, Shetty D, Halow N, Kenney LJ, and Nakano MM. Distinct Interaction Mechanism of RNAP and ResD and Distal Subsites for Transcription Activation of Nitrite Reductase in Bacillus subtilisψ. J Bacteriol 2021;:JB0043221. [PMID: 34898263]
  6. Singh MK, Zangoui P, Yamanaka Y, and Kenney LJ. Genetic code expansion enables visualization of Salmonella type three secretion system components and secreted effectors. Elife 2021; 10. [PMID: 34061032]
  7. Kenney LJ, and Anand GS. EnvZ/OmpR Two-Component Signaling: An Archetype System That Can Function Noncanonically. EcoSal Plus 2020; 9(1). [PMID: 32003321]
  8. Desai SK, and Kenney LJ. Switching Lifestyles Is an in vivo Adaptive Strategy of Bacterial Pathogens. Front Cell Infect Microbiol 2019; 9:421. [PMID: 31921700]
  9. Desai SK, Padmanabhan A, Harshe S, Zaidel-Bar R, and Kenney LJ. Salmonella biofilms program innate immunity for persistence in Caenorhabditis elegans. Proc. Natl. Acad. Sci. U.S.A. 2019;. [PMID: 31160462]
  10. Ottemann KM, and Kenney LJ. Editorial overview: Host-pathogen interactions: bacteria. Curr. Opin. Microbiol. 2019; 47:iii-v. [PMID: 31138403]

Lab Members

What are intermediate filaments?

Nov 30th, 2023|Comments Off on What are intermediate filaments?

What are intermediate filaments? Intermediate filaments are a primary component of the cytoskeleton, although they are not found in all eukaryotes, and are absent in fungi and plants [1]. These filaments, which extend throughout [...]

How are intermediate filaments assembled?

Nov 30th, 2023|Comments Off on 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?

Nov 30th, 2023|Comments Off on 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?

Nov 30th, 2023|Comments Off on 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?

Nov 30th, 2023|Comments Off on 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?

Nov 30th, 2023|Comments Off on 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?

Nov 30th, 2023|Comments Off on 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?

Nov 30th, 2023|Comments Off on 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 [...]

How is actomoysin contractility regulated?

Nov 30th, 2023|Comments Off on 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 [...]

What are Blebs?

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

What are Blebs? Blebs are blister-like protrusions that occur at the cell surface (reviewed in [1]). Blebs form, and function, in a series of defined steps. They typically grow to a length of around [...]

What is Actomyosin?

Nov 30th, 2023|Comments Off on 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 do filopodia move dynamically?

Nov 30th, 2023|Comments Off on How do filopodia move dynamically?

What causes filopodia retraction and collapse? Binding of filopodia to certain ligands or substratum may hinder filament assembly, thereby leading to changes that promote retraction, collapse or growth cone turning [1][2]. For example, substrate [...]

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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