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Nienaltowski, P.

Publications and source records attributed to Nienaltowski, P..

2 recordsLinked to original sources

Trypanosomes Modulation of Motility from Swimming to Threading Propulsion in Confined Environments

Trypanosoma brucei (T. brucei) is a protozoan parasite that lives extracellularly in the body fluids of its hosts. In mammals, these environments include the vascular system and the interstitial spaces of various organs, such as the skin and adipose tissue. How the parasite disseminates within the host remains largely unresolved. It is clear however, that parasite motility plays a central role. The unicellular, eukaryotic flagellate is a versatile microswimmer, like bacteria or sperm cells, albeit structurally far more complex than these classical model systems. In addition to possessing a flagellum attached alongside a strongly polarised cell body, the parasite is capable of swimming both forwards and backwards. The trypanosome must be capable of navigating effectively even under extreme physical and mechanical constraints. It can do so in the mammalian host with only one main morphotype. This means that the cell is mechanically adapted to motion in diverse challenging microenvironments. To address how, we study the parasites in different viscoelastic regimes up to conditions mimicking tissue confinement. Next to quantitative high speed video microscopy, we employ digital holography microscopy, yielding three-dimensional subcellular resolution. We detail the mechanical reaction of the flexible cell body with its uniquely attached flagellum to increasing confinement and show how the trypanosomes are able to maintain their motile capabilities to spread in dense tissue.

microbiology↗

Precise 3D Tracking of Highly Non-planar Eukaryotic Flagellar Beating Patterns using Digital Holographic Microscopy

Precise tracking of the rapid and complex three-dimensional movement of eukaryotic flagella is important for understanding their roles in cellular motility, sensory functions, and resource acquisition. Yet, achieving accurate 3D kinematic reconstruction of flagellar beating patterns, particularly highly non-planar ones, remains challenging. Here we present holoV3C, a method based on Digital Holographic Microscopy (DHM) that allows precise, label-free 3D tracking of highly non-planar eukaryotic flagella with high temporal resolution. This algorithm leverages phase anomaly detection to provide a combination of high temporal and axial resolution, with 0.25 m for beating mouse sperm flagella and down to 53 nm for polystyrene particles, across large sampling volumes in a computationally efficient manner. Algorithmic validation is performed by tracking mouse sperm flagella over time, capturing approximately 600 points along a single flagellum to achieve high axial resolution. Furthermore, we apply holoV3C to reconstruct the highly non-planar beating dynamics of the 200-nm-diameter flagellum of the protist Reclinomonas americana with a temporal resolution of 200 frames per second. By enabling 3D tracking of non-planar eukaryotic flagella, holoV3C can yield important insights to advance our understanding of flagellar dynamics, opening new avenues in the study of microorganism motility and its ecological roles.

biophysics↗