TY - THES A1 - Stange, Maike T1 - A study on Coronin-A and Aip1 function in motility of Dictyostelium discoideum and on Aip1 interchangeability between Dictyostelium discoideum and Arabidopsis thaliana T1 - Studie über die Funktion von Coronin-A und Aip1 bei der Motilität von Dictyostelium discoideum und zur Aip1-Austauschbarkeit zwischen Dictyostelium discoideum und Arabidopsis thaliana N2 - Actin is one of the most highly conserved proteins in eukaryotes and distinct actin-related proteins with filament-forming properties are even found in prokaryotes. Due to these commonalities, actin-modulating proteins of many species share similar structural properties and proposed functions. The polymerization and depolymerization of actin are critical processes for a cell as they can contribute to shape changes to adapt to its environment and to move and distribute nutrients and cellular components within the cell. However, to what extent functions of actin-binding proteins are conserved between distantly related species, has only been addressed in a few cases. In this work, functions of Coronin-A (CorA) and Actin-interacting protein 1 (Aip1), two proteins involved in actin dynamics, were characterized. In addition, the interchangeability and function of Aip1 were investigated in two phylogenetically distant model organisms. The flowering plant Arabidopsis thaliana (encoding two homologs, AIP1-1 and AIP1-2) and in the amoeba Dictyostelium discoideum (encoding one homolog, DdAip1) were chosen because the functions of their actin cytoskeletons may differ in many aspects. Functional analyses between species were conducted for AIP1 homologs as flowering plants do not harbor a CorA gene. In the first part of the study, the effect of four different mutation methods on the function of Coronin-A protein and the resulting phenotype in D. discoideum was revealed in two genetic knockouts, one RNAi knockdown and a sudden loss-of-function mutant created by chemical-induced dislocation (CID). The advantages and disadvantages of the different mutation methods on the motility, appearance and development of the amoebae were investigated, and the results showed that not all observed properties were affected with the same intensity. Remarkably, a new combination of Selection-Linked Integration and CID could be established. In the second and third parts of the thesis, the exchange of Aip1 between plant and amoeba was carried out. For A. thaliana, the two homologs (AIP1-1 and AIP1-2) were analyzed for functionality as well as in D. discoideum. In the Aip1-deficient amoeba, rescue with AIP1-1 was more effective than with AIP1-2. The main results in the plant showed that in the aip1-2 mutant background, reintroduced AIP1-2 displayed the most efficient rescue and A. thaliana AIP1-1 rescued better than DdAip1. The choice of the tagging site was important for the function of Aip1 as steric hindrance is a problem. The DdAip1 was less effective when tagged at the C-terminus, while the plant AIP1s showed mixed results depending on the tag position. In conclusion, the foreign proteins partially rescued phenotypes of mutant plants and mutant amoebae, despite the organisms only being very distantly related in evolutionary terms. N2 - Actin ist eines der am stärksten konservierten Proteine in Eukaryoten und sogar Prokaryoten weisen Aktin-ähnliche Proteine mit filamentbildenden Eigenschaften auf. Aufgrund dieser Gemeinsamkeiten teilen Aktin-modulierte Proteine vieler Arten ähnliche strukturelle Eigenschaften und vermutlich auch Funktionen. Die Polymerisierung und Depolymerisation von Aktin sind kritische Prozesse für eine Zelle, da sie zu Zellformänderungen beitragen können, um sich an die Umgebung anzupassen und Nährstoffe sowie zelluläre Komponenten innerhalb der Zelle zu bewegen und zu verteilen. Inwieweit die Funktionen von Aktin-bindenden Proteinen zwischen entfernt verwandten Arten funktionell konserviert sind, wurde jedoch nur in wenigen Fällen untersucht. In dieser Arbeit wurden Funktionen von Coronin-A (CorA) und Actin-interagierendem Protein 1 (AIP1), zweier an der Aktindynamik beteiligter Proteine, charakterisiert. Darüber hinaus wurde die Austauschbarkeit und Funktion von AIP1 in zwei phylogenetisch entfernten Modellorganismen untersucht. Die Blütenpflanze Arabidopsis thaliana (kodiert für zwei Homologe: AIP1-1 und AIP1-2) und die Amöbe Dictyostelium discoideum (kodiert für ein Homolog: DdAip1) wurden ausgewählt, weil die Funktionen ihrer Aktin-Zytoskelette in mehreren Aspekten verschieden sein könnten. Funktionelle Analysen zwischen Arten wurden für AIP1-Homologe durchgeführt, da Blütenpflanzen kein CorA Gen tragen. Im ersten Teil der Arbeit wurde die Wirkung von vier verschiedenen Mutationsmethoden auf die Funktion des CorA-Proteins und des resultierenden Phänotyps in D. discoideum in zwei genetischen Knockouts, einem RNAi Knockdown und einem durch chemisch induzierte Delokalisierung (CID) erzeugten Mutanten geprüft. Die Vor- und Nachteile der Methoden zur Motilität, des Aussehens und der Entwicklung der Amöben wurden untersucht. Die Ergebnisse zeigten, dass nicht alle beobachteten Eigenschaften mit der gleichen Intensität beeinflusst wurden. Hierbei wurde eine neue Methodenkombination aus selektionsgebundener Integration und CID etabliert. Im zweiten und im dritten Teil der Arbeit wurde der Austausch von AIP1 zwischen Pflanze und Amöben durchgeführt. Die zwei A. thaliana-Homologe AIP1-1 und AIP1-2 wurden auf Funktionalität in D. discoideum geprüft. In Aip1-defizienten Amöben war die Rettung mit AIP1-1 effektiver als bei AIP1-2. Die Hauptergebnisse der Arbeit wiesen darauf hin, dass AIP1-2 im aip1.2-1 act7 Mutantenhintergrund die effizienteste Rettung zeigte, während A. thaliana AIP1-1 effizienter rettete als DdAip1. Die Auswahl der Tagging-Site war für die AIP1-Funktion bedeutend, da sterische Hinderung eine Rolle spielen könnte. DdAip1 war weniger effektiv, wenn es am C-Terminus fusioniert war, während die Proteinfusionen der A. thaliana AIP1s je nach Position der „tags“ unterschiedliche Ergebnisse zeigten. Zusammenfassend retteten die fremden Proteine teilweise Phänotypen von mutierten Pflanzen und mutierten Amöben, obwohl die Organismen evolutionär weit entfernt verwandt sind. KW - actin KW - cell motility KW - plant growth KW - selection-linked integration KW - chemically induced dislocation KW - interspecies interchange KW - Aktin KW - Zellmotilität KW - Pflanzenwachstum KW - Selection-Linked Integration KW - chemisch-induzierte Dislokation KW - Austausch zwischen zwei Spezies Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-628569 ER - TY - JOUR A1 - Schindler, Daniel A1 - Moldenhawer, Ted A1 - Stange, Maike A1 - Lepro, Valentino A1 - Beta, Carsten A1 - Holschneider, Matthias A1 - Huisinga, Wilhelm T1 - Analysis of protrusion dynamics in amoeboid cell motility by means of regularized contour flows JF - PLoS Computational Biology : a new community journal N2 - Amoeboid cell motility is essential for a wide range of biological processes including wound healing, embryonic morphogenesis, and cancer metastasis. It relies on complex dynamical patterns of cell shape changes that pose long-standing challenges to mathematical modeling and raise a need for automated and reproducible approaches to extract quantitative morphological features from image sequences. Here, we introduce a theoretical framework and a computational method for obtaining smooth representations of the spatiotemporal contour dynamics from stacks of segmented microscopy images. Based on a Gaussian process regression we propose a one-parameter family of regularized contour flows that allows us to continuously track reference points (virtual markers) between successive cell contours. We use this approach to define a coordinate system on the moving cell boundary and to represent different local geometric quantities in this frame of reference. In particular, we introduce the local marker dispersion as a measure to identify localized membrane expansions and provide a fully automated way to extract the properties of such expansions, including their area and growth time. The methods are available as an open-source software package called AmoePy, a Python-based toolbox for analyzing amoeboid cell motility (based on time-lapse microscopy data), including a graphical user interface and detailed documentation. Due to the mathematical rigor of our framework, we envision it to be of use for the development of novel cell motility models. We mainly use experimental data of the social amoeba Dictyostelium discoideum to illustrate and validate our approach.
Author summary Amoeboid motion is a crawling-like cell migration that plays an important key role in multiple biological processes such as wound healing and cancer metastasis. This type of cell motility results from expanding and simultaneously contracting parts of the cell membrane. From fluorescence images, we obtain a sequence of points, representing the cell membrane, for each time step. By using regression analysis on these sequences, we derive smooth representations, so-called contours, of the membrane. Since the number of measurements is discrete and often limited, the question is raised of how to link consecutive contours with each other. In this work, we present a novel mathematical framework in which these links are described by regularized flows allowing a certain degree of concentration or stretching of neighboring reference points on the same contour. This stretching rate, the so-called local dispersion, is used to identify expansions and contractions of the cell membrane providing a fully automated way of extracting properties of these cell shape changes. We applied our methods to time-lapse microscopy data of the social amoeba Dictyostelium discoideum. Y1 - 2021 U6 - https://doi.org/10.1371/journal.pcbi.1009268 SN - 1553-734X SN - 1553-7358 VL - 17 IS - 8 PB - PLoS CY - San Fransisco ER - TY - GEN A1 - Alonso, Sergio A1 - Stange, Maike A1 - Beta, Carsten T1 - Modeling random crawling, membrane deformation and intracellular polarity of motile amoeboid cells T2 - Postprints der Universität Potsdam : Mathematisch Naturwissenschaftliche Reihe N2 - Amoeboid movement is one of the most widespread forms of cell motility that plays a key role in numerous biological contexts. While many aspects of this process are well investigated, the large cell-to-cell variability in the motile characteristics of an otherwise uniform population remains an open question that was largely ignored by previous models. In this article, we present a mathematical model of amoeboid motility that combines noisy bistable kinetics with a dynamic phase field for the cell shape. To capture cell-to-cell variability, we introduce a single parameter for tuning the balance between polarity formation and intracellular noise. We compare numerical simulations of our model to experiments with the social amoeba Dictyostelium discoideum. Despite the simple structure of our model, we found close agreement with the experimental results for the center-of-mass motion as well as for the evolution of the cell shape and the overall intracellular patterns. We thus conjecture that the building blocks of our model capture essential features of amoeboid motility and may serve as a starting point for more detailed descriptions of cell motion in chemical gradients and confined environments. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 1014 KW - signaling system KW - eukaryotic chemotaxis KW - Dictyostelium cells KW - actin cytoskeleton KW - excitable networks KW - PIP3 waves KW - migration KW - dynamics KW - oscillations KW - transduction Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-459745 SN - 1866-8372 IS - 1014 ER - TY - JOUR A1 - Stange, Maike A1 - Hintsche, Marius A1 - Sachse, Kirsten A1 - Gerhardt, Matthias A1 - Valleriani, Angelo A1 - Beta, Carsten T1 - Analyzing the spatial positioning of nuclei in polynuclear giant cells JF - Journal of Physics D: Applied Physics N2 - How cells establish and maintain a well-defined size is a fundamental question of cell biology. Here we investigated to what extent the microtubule cytoskeleton can set a predefined cell size, independent of an enclosing cell membrane. We used electropulse-induced cell fusion to form giant multinuclear cells of the social amoeba Dictyostelium discoideum. Based on dual-color confocal imaging of cells that expressed fluorescent markers for the cell nucleus and the microtubules, we determined the subcellular distributions of nuclei and centrosomes in the giant cells. Our two- and three-dimensional imaging results showed that the positions of nuclei in giant cells do not fall onto a regular lattice. However, a comparison with model predictions for random positioning showed that the subcellular arrangement of nuclei maintains a low but still detectable degree of ordering. This can be explained by the steric requirements of the microtubule cytoskeleton, as confirmed by the effect of a microtubule degrading drug. KW - Dictyostelium KW - cell nucleus KW - positioning KW - imaging KW - spatial poisson distribution Y1 - 2017 U6 - https://doi.org/10.1088/1361-6463/aa8da0 SN - 0022-3727 SN - 1361-6463 VL - 50 IS - 46 PB - IOP Publ. Ltd. CY - Bristol ER -