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1.
Curr Biol ; 34(4): R137-R140, 2024 Feb 26.
Artigo em Inglês | MEDLINE | ID: mdl-38412821

RESUMO

Single cells are capable of remarkably sophisticated, sometimes animal-like, behaviors. New work demonstrates bioelectric control of motility through the differential regulation of appendage movements in a unicellular organism that walks across surfaces using leg-like bundles of cilia.


Assuntos
Cílios , Neurônios , Animais , Cílios/fisiologia , Movimento , Fenômenos Eletrofisiológicos , Movimento Celular
2.
Phys Rev Lett ; 131(16): 168401, 2023 Oct 20.
Artigo em Inglês | MEDLINE | ID: mdl-37925718

RESUMO

The recent discovery of the striking sheetlike multicellular choanoflagellate species Choanoeca flexa that dynamically interconverts between two hemispherical forms of opposite orientation raises fundamental questions in cell and evolutionary biology, as choanoflagellates are the closest living relatives of animals. It similarly motivates questions in fluid and solid mechanics concerning the differential swimming speeds in the two states and the mechanism of curvature inversion triggered by changes in the geometry of microvilli emanating from each cell. Here we develop fluid dynamical and mechanical models to address these observations and show that they capture the main features of the swimming, feeding, and inversion of C. flexa colonies, which can be viewed as active, shape-shifting polymerized membranes.


Assuntos
Coanoflagelados , Animais , Coanoflagelados/metabolismo , Natação , Evolução Biológica
3.
Integr Comp Biol ; 63(6): 1405-1421, 2023 Dec 29.
Artigo em Inglês | MEDLINE | ID: mdl-37496203

RESUMO

Cells are the fundamental unit of biological organization. Although it may be easy to think of them as little more than the simple building blocks of complex organisms such as animals, single cells are capable of behaviors of remarkable apparent sophistication. This is abundantly clear when considering the diversity of form and function among the microbial eukaryotes, the protists. How might we navigate this diversity in the search for general principles of cellular behavior? Here, we review cases in which the intensive study of protists from the perspective of cellular biophysics has driven insight into broad biological questions of morphogenesis, navigation and motility, and decision making. We argue that applying such approaches to questions of evolutionary cell biology presents rich, emerging opportunities. Integrating and expanding biophysical studies across protist diversity, exploiting the unique characteristics of each organism, will enrich our understanding of general underlying principles.


Assuntos
Evolução Biológica , Eucariotos , Animais
4.
Curr Biol ; 32(17): 3745-3757.e7, 2022 09 12.
Artigo em Inglês | MEDLINE | ID: mdl-35963241

RESUMO

Cells are complex biochemical systems whose behaviors emerge from interactions among myriad molecular components. Computation is often invoked as a general framework for navigating this cellular complexity. However, it is unclear how cells might embody computational processes such that the theories of computation, including finite-state machine models, could be productively applied. Here, we demonstrate finite-state-machine-like processing embodied in cells using the walking behavior of Euplotes eurystomus, a ciliate that walks across surfaces using fourteen motile appendages (cirri). We found that cellular walking entails regulated transitions among a discrete set of gait states. The set of observed transitions decomposes into a small group of high-probability, temporally irreversible transitions and a large group of low-probability, time-symmetric transitions, thus revealing stereotypy in the sequential patterns of state transitions. Simulations and experiments suggest that the sequential logic of the gait is functionally important. Taken together, these findings implicate a finite-state-machine-like process. Cirri are connected by microtubule bundles (fibers), and we found that the dynamics of cirri involved in different state transitions are associated with the structure of the fiber system. Perturbative experiments revealed that the fibers mediate gait coordination, suggesting a mechanical basis of gait control.


Assuntos
Citoesqueleto , Microtúbulos , Algoritmos , Marcha , Caminhada
5.
Nat Phys ; 17(8): 920-925, 2021.
Artigo em Inglês | MEDLINE | ID: mdl-34777551

RESUMO

Oocytes are large cells that develop into an embryo upon fertilization1. As interconnected germ cells mature into oocytes, some of them grow-typically at the expense of others that undergo cell death2-4. We present evidence that in the nematode Caenorhabditis elegans, this cell-fate decision is mechanical and related to tissue hydraulics. An analysis of germ cell volumes and material fluxes identifies a hydraulic instability that amplifies volume differences and causes some germ cells to grow and others to shrink, a phenomenon that is related to the two-balloon instability5. Shrinking germ cells are extruded and they die, as we demonstrate by artificially reducing germ cell volumes via thermoviscous pumping6. Our work reveals a hydraulic symmetry-breaking transition central to the decision between life and death in the nematode germline.

6.
Proc Natl Acad Sci U S A ; 117(3): 1303-1311, 2020 01 21.
Artigo em Inglês | MEDLINE | ID: mdl-31896587

RESUMO

Inspired by the patterns of multicellularity in choanoflagellates, the closest living relatives of animals, we quantify the biophysical processes underlying the morphogenesis of rosette colonies in the choanoflagellate Salpingoeca rosetta We find that rosettes reproducibly transition from an early stage of 2-dimensional (2D) growth to a later stage of 3D growth, despite the underlying variability of the cell lineages. Our perturbative experiments demonstrate the fundamental importance of a basally secreted extracellular matrix (ECM) for rosette morphogenesis and show that the interaction of the ECM with cells in the colony physically constrains the packing of proliferating cells and, thus, controls colony shape. Simulations of a biophysically inspired model that accounts for the size and shape of the individual cells, the fraction of ECM, and its stiffness relative to that of the cells suffices to explain our observations and yields a morphospace consistent with observations across a range of multicellular choanoflagellate colonies. Overall, our biophysical perspective on rosette development complements previous genetic perspectives and, thus, helps illuminate the interplay between cell biology and physics in regulating morphogenesis.


Assuntos
Coanoflagelados/crescimento & desenvolvimento , Morfogênese , Fenômenos Biomecânicos , Divisão Celular , Coanoflagelados/citologia , Coanoflagelados/metabolismo , Matriz Extracelular/metabolismo , Modelos Teóricos
7.
Science ; 366(6463): 326-334, 2019 10 18.
Artigo em Inglês | MEDLINE | ID: mdl-31624206

RESUMO

Collective cell contractions that generate global tissue deformations are a signature feature of animal movement and morphogenesis. However, the origin of collective contractility in animals remains unclear. While surveying the Caribbean island of Curaçao for choanoflagellates, the closest living relatives of animals, we isolated a previously undescribed species (here named Choanoeca flexa sp. nov.) that forms multicellular cup-shaped colonies. The colonies rapidly invert their curvature in response to changing light levels, which they detect through a rhodopsin-cyclic guanosine monophosphate pathway. Inversion requires actomyosin-mediated apical contractility and allows alternation between feeding and swimming behavior. C. flexa thus rapidly converts sensory inputs directly into multicellular contractions. These findings may inform reconstructions of hypothesized animal ancestors that existed before the evolution of specialized sensory and contractile cells.


Assuntos
Coanoflagelados/fisiologia , Luz , Actomiosina/metabolismo , Animais , Evolução Biológica , Coanoflagelados/citologia , GMP Cíclico/metabolismo , Microvilosidades/fisiologia , Movimento , Diester Fosfórico Hidrolases/metabolismo , Proteínas de Protozoários/metabolismo , Rodopsinas Sensoriais/metabolismo
8.
PLoS Biol ; 17(4): e3000226, 2019 04.
Artigo em Inglês | MEDLINE | ID: mdl-30978201

RESUMO

Although collar cells are conserved across animals and their closest relatives, the choanoflagellates, little is known about their ancestry, their subcellular architecture, or how they differentiate. The choanoflagellate Salpingoeca rosetta expresses genes necessary for animal development and can alternate between unicellular and multicellular states, making it a powerful model for investigating the origin of animal multicellularity and mechanisms underlying cell differentiation. To compare the subcellular architecture of solitary collar cells in S. rosetta with that of multicellular 'rosette' colonies and collar cells in sponges, we reconstructed entire cells in 3D through transmission electron microscopy on serial ultrathin sections. Structural analysis of our 3D reconstructions revealed important differences between single and colonial choanoflagellate cells, with colonial cells exhibiting a more amoeboid morphology consistent with higher levels of macropinocytotic activity. Comparison of multiple reconstructed rosette colonies highlighted the variable nature of cell sizes, cell-cell contact networks, and colony arrangement. Importantly, we uncovered the presence of elongated cells in some rosette colonies that likely represent a distinct and differentiated cell type, pointing toward spatial cell differentiation. Intercellular bridges within choanoflagellate colonies displayed a variety of morphologies and connected some but not all neighbouring cells. Reconstruction of sponge choanocytes revealed ultrastructural commonalities but also differences in major organelle composition in comparison to choanoflagellates. Together, our comparative reconstructions uncover the architecture of cell differentiation in choanoflagellates and sponge choanocytes and constitute an important step in reconstructing the cell biology of the last common ancestor of animals.


Assuntos
Coanoflagelados/fisiologia , Morfogênese/fisiologia , Poríferos/fisiologia , Animais , Diferenciação Celular/genética , Coanoflagelados/genética , Coanoflagelados/metabolismo , Microscopia Eletrônica de Transmissão , Filogenia , Poríferos/genética
9.
Mol Biol Cell ; 25(13): 2084-93, 2014 Jul 01.
Artigo em Inglês | MEDLINE | ID: mdl-24807904

RESUMO

Vesicular secretion (exocytosis) involves the release and then compensatory recycling of vesicle components through endocytosis. This fundamental cellular process is controlled by the coordinated assembly and interactions of dozens of proteins at the plasma membrane. Understanding the molecular composition of individual exocytic and endocytic structures and their organization across the plasma membrane is critical to understanding the behavior and regulation of these two cellular processes. Here we develop a high-resolution and high-throughput fluorescence imaging-based approach for the unbiased mapping of 78 proteins at single exocytic vesicles and endocytic structures in neuroendocrine PC12 cells. This analysis uses two-color single-frame images to provide a systems-level map of the steady-state distributions of proteins at individual exocytic and endocytic structures in the cell. Along with this quantitative map, we find that both calcium-regulated exocytic vesicles (dense core vesicles) and endocytic structures (clathrin-coated structures) and the proteins associated with these structures exhibit a random spatial distribution in unstimulated neuroendocrine PC12 cells. This approach is broadly applicable for quantitatively mapping the molecular composition and spatial organization of discrete cellular processes with central molecular hubs.


Assuntos
Endocitose , Exocitose , Animais , Proteínas de Fluorescência Verde/metabolismo , Microscopia de Fluorescência , Células PC12 , Transporte Proteico , Ratos , Proteínas Recombinantes de Fusão/metabolismo
10.
Nat Commun ; 3: 1154, 2012.
Artigo em Inglês | MEDLINE | ID: mdl-23093191

RESUMO

The molecular mechanism responsible for capturing, sorting and retrieving vesicle membrane proteins following triggered exocytosis is not understood. Here we image the post-fusion release and then capture of a vesicle membrane protein, the vesicular acetylcholine transporter, from single vesicles in living neuroendocrine cells. We combine these measurements with super-resolution interferometric photo-activation localization microscopy and electron microscopy, and modelling to map the nanometer-scale topography and architecture of the structures responsible for the transporter's capture following exocytosis. We show that after exocytosis, the transporter rapidly diffuses into the plasma membrane, but most travels only a short distance before it is locally captured over a dense network of membrane-resident clathrin-coated structures. We propose that the extreme density of these structures acts as a short-range diffusion trap. They quickly sequester diffusing vesicle material and limit its spread across the membrane. This system could provide a means for clathrin-mediated endocytosis to quickly recycle vesicle proteins in highly excitable cells.


Assuntos
Fusão de Membrana/fisiologia , Proteínas de Membrana/fisiologia , Proteínas Vesiculares de Transporte de Acetilcolina/fisiologia , Animais , Membrana Celular/fisiologia , Membrana Celular/ultraestrutura , Clatrina/fisiologia , Clatrina/ultraestrutura , Endocitose/fisiologia , Exocitose/fisiologia , Proteínas de Membrana/ultraestrutura , Microscopia Eletrônica , Microscopia de Interferência/métodos , Células PC12/fisiologia , Ratos , Vesículas Sinápticas/fisiologia , Vesículas Sinápticas/ultraestrutura , Proteínas Vesiculares de Transporte de Acetilcolina/ultraestrutura
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