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Ganesh, M.

Publications and source records attributed to Ganesh, M..

2 recordsLinked to original sources

Physical confinement selectively favours bacterial growth based on cell shape

How are bacterial communities altered by changes in their microenvironment? Evidence from homogeneous liquid or flat plate cultures implicates biochemical cues -- such as variation in nutrient composition 1,2, response to chemoattractants and toxins 3,4, and inter-species signalling 5,6 -- as the primary modes of bacterial interaction with their microenvironment. However, these systems fail to capture the effect of physical confinement on bacteria in their natural habitats. Bacterial niches like the pores of soil, mucus, and infected tissues are disordered microenvironments with material properties defined by their internal pore sizes and shear moduli7-11. Here, using three-dimensional matrices that match the viscoelastic properties of gut mucus, we test how altering the physical properties of their microenvironment influences bacterial growth under confinement. We find that low aspect-ratio bacteria form compact, spherical colonies under confinement while high aspect-ratio bacteria push their progenies further outwards to create elongated colonies with a higher surface area, enabling increased access to nutrients. As a result, the population level growth of high aspect-ratio bacteria is more robust to increased physical confinement compared to that of low aspect-ratio bacteria. Thus, our results capture experimental evidence showing that physical constraints can play a selective role in bacterial growth based on cell shape.

biophysics↗

Jammed microgel growth medium prepared by flash-solidification of agarose for 3D cell culture and 3D bioprinting

1. Introduction ABSTRACT 1. Introduction 2. Materials and methods 3. Results and discussion 4. Conclusion Author contributions Supplementary Information References Cells grown as monolayers on conventional two-dimensional (2D) culture plates are significantly different from their in vivo counterparts in many different ways [1]. In standard flat plate cultures, not only do they exhibit altered morphologies and dynamics [2-4], their gene expression and signal transduction profiles are dramatically altered [5]. Furthermore, cells in vivo are exposed to more complex mechanical cues and chemical fields due to their three-dimensional (3D) packing and access to systemic circulation [ ...

bioengineering↗