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Couttenier, E.

Publications and source records attributed to Couttenier, E..

2 recordsLinked to original sources

Snooping helices: The elastic path finding algorithm of growing hyphae

How living organisms utilize physical mechanisms to sense their environments and make informed decisions is an open question at the interface of biology and physics. In filamentous organisms like fungal hyphae, the decisions are taken by their growing tip cells and later imprinted onto the rest of the multi-cellular filament. Here we report on the growth and pathfinding of hyphae from the opportunistic fungal pathogen Candida albicans, whose ability to cross intestinal epithelial layers is associated to severe systemic infections in humans. It has been sporadically reported that C. albicanss hyphae display helical growth inside or on top of agar gels, helicity turning in the latter case into two-dimensional oscillatory shapes. We provide an extended description of oscillatory C. albicans hyphal growth modalities, revealed under various physical confinements thanks to the use of dedicated microfluidic devices and quantitative time-lapse imaging-based analysis. These include sudden sliding events accompanied by curvature switching of the tip portion, resulting in a final oscillatory morphology of the entire filament, and stable curved tips moving against vertical microfluidic channels walls. These behaviors are unified under the formalism of growing squeezed helices, in which the final hyphal curved shapes result from an elastic energy minimization of a spatially confined helical portion at the tip followed by a continuous solidification front. Ultimately, the combination of our experimental results and theoretical framework provide an insight into the penetration strategy of C. albicans hyphae, which is essential for the virulence of this fungal microorganism. Significance StatementProprioception is the integrated sense of self-movement and body position in complex organisms. Here we describe a novel, mechanical form of proprioception driving directional choice making in tip-growing helical organisms. We show that C. albicans hyphae utilize their built-in helicity as an environment-scanning mechanism to explore their surrounding and find target surfaces for invasion. When confined to surfaces, hyphae continue producing in-plane oscillatory shapes that promote further invasive behavior. C. albicans inherent mechanical instabilities regulate the switching of growth direction and their abrupt directional decisions can be understood as elastic bifurcations of squeezed, confined helices.

biophysics↗

Bending stiffness of Candida albicans hyphae reflects adaptive behavior of the fungal cell wall

The cell wall is a key component of fungi. It constitutes a stiff shell which counteracts internal cell turgor pressure. Its mechanical properties thus contribute to define cell morphology. Measurements of the elastic moduli of the fungal cell wall have been carried out in many species including Candida albicans, a major human opportunistic pathogen. They mainly relied on atomic force microscopy, and mostly considered the yeast form. We developed a parallelized pressure-actuated microfluidic device to measure the bending stiffness of hyphae. We found that the cell wall stiffness lies in the MPa range. We the used three different ways to disrupt cell wall physiology: inhibition of beta-glucan synthesis, a key component of the inner cell wall; application of an hyperosmotic shock triggering a sudden decrease of the hyphal diameter; deletion of two genes encoding GPI-modified cell wall proteins resulting in reduced cell wall thickness. The bending stiffness values were affected to different extents by these environmental stresses or genetic modifications. Overall, our results support the elastic nature of the cell wall and its ability to remodel at the scale of the entire hypha over minutes.

biophysics↗