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Biology subjects

Hokmabad, B. V.

Publications and source records attributed to Hokmabad, B. V..

2 recordsLinked to original sources

Naegleria amoebae seek confinement and crawl persistently through narrow spaces

The "brain-eating amoeba" Naegleria fowleri dwells in ponds where it normally feeds on bacteria, but if it enters the brain it can cause a deadly infection. To establish infection, N. fowleri must migrate through different environments--along olfactory axons, through openings in the cribriform plate, and within brain tissue--yet how it does so remains unknown. As a model for N. fowleri migration within these environments, we examine how its non-pathogenic relative, Naegleria gruberi, navigates environments of distinct geometries. We show that Naegleria uses both actin-rich protrusions and membrane blebs to crawl across or between flat surfaces. We also explore how Naegleria interact with narrow channels and find that, unlike Dictyostelium amoebae that we show frequently disengage from channel interfaces, Naegleria amoebae probe channels until they enter. Once inside, Naegleria crawls quickly (>50 m/min) and unidirectionally over long distances (>1 mm) using only bleb-based motility. We also introduced Naegleria to granular hydrogel matrices that mimic pond sediments and found that cells readily enter and migrate through these three-dimensional matrices using both blebs and lamellar protrusions. Although cells in matrices showed lower persistence at short timescales, longer time scales correlate with increased persistence, suggesting Naegleria cells may retain memory of past orientation. We propose that pond life may select for three behaviors that prime Naegleria for pathogenesis: memory-guided motility that would facilitate exploration of sinus cavities, confinement-seeking ("claustrophilia") that would promote entry into narrow passages along olfactory axons, and persistent bleb-based migration that would allow rapid transit along axons to the brain.

cell biology↗

Spatial self-organization of confined bacterial suspensions

Lab studies of bacteria usually focus on cells in spatially-extended, nutrient-replete settings, such as in liquid cultures and on agar surfaces. By contrast, many biological and environmental settings--ranging from mucus in the body to ocean sediments and the soil beneath our feet--feature multicellular bacterial populations that are confined to tight spots where essential metabolic substrates (e.g., oxygen) are scarce. What influence does such confinement have on a bacterial population? Here, we address this question by studying suspensions of motile Escherichia coli confined to quasi two-dimensional (2D) droplets. We find that when the droplet size and cell concentration are both large enough, the initially-uniform suspension spatially self-organizes into a concentrated, immotile inner "core" that coexists with a more dilute, highly-motile surrounding "shell". By simultaneously measuring cell concentration, oxygen concentration, and motility-generated fluid flow, we show that this behavior arises from the interplay between oxygen transport through the droplet from its boundary, uptake by the cells, and corresponding changes in their motility in response to oxygen variations. Furthermore, we use theory and simulations to develop quantitative principles describing this interplay--establishing a bio-physical framework that unifies all our experimental observations. Our work thereby sheds new light on the rich collective behaviors that emerge for bacterial populations, and other forms of chemically-reactive living and active matter, in confined environments, and provides a way to predict and control these behaviors more broadly.

biophysics↗