- Research Article
53
- 10.1016/j.ceb.2021.01.007
Nuclear fragility, blaming the blebs
- Mar 01, 2021
- Current Opinion in Cell Biology
- Nishit Srivastava + 6 more +6
Publications from 2021 to 2026
Showing 10 of 19 papers
Nuclear fragility, blaming the blebs
Faculty Opinions recommendation of Nonlinear low-force elasticity of single-stranded DNA molecules.
Cell growth, division, and death in cohesive tissues: A thermodynamic approach.
Cell growth, division, and death are defining features of biological tissues that contribute to morphogenesis. In hydrodynamic descriptions of cohesive tissues, their occurrence implies a nonzero rate of variation of cell density. We show how linear nonequilibrium thermodynamics allows us to express this rate as a combination of relevant thermodynamic forces: chemical potential, velocity divergence, and activity. We illustrate the resulting effects of the nonconservation of cell density on simple examples inspired by recent experiments on cell monolayers, considering first the velocity of a spreading front, and second an instability leading to mechanical waves.
Read moreCharacterization of CHMP Polymers at the Mesoscale
PO-0767: Does fluid collection have an impact on radiotherapy outcomes after excision of soft tissue sarcoma?
How Synergy of Actin Assembly-Disassembly and Myosin Motors Drives Cell Shape Changes
A narrow window of cortical tension guides asymmetric spindle positioning in the mouse oocyte.
Cell mechanics control the outcome of cell division. In mitosis, external forces applied on a stiff cortex direct spindle orientation and morphogenesis. During oocyte meiosis on the contrary, spindle positioning depends on cortex softening. How changes in cortical organization induce cortex softening has not yet been addressed. Furthermore, the range of tension that allows spindle migration remains unknown. Here, using artificial manipulation of mouse oocyte cortex as well as theoretical modelling, we show that cortical tension has to be tightly regulated to allow off-center spindle positioning: a too low or too high cortical tension both lead to unsuccessful spindle migration. We demonstrate that the decrease in cortical tension required for spindle positioning is fine-tuned by a branched F-actin network that triggers the delocalization of myosin-II from the cortex, which sheds new light on the interplay between actin network architecture and cortex tension.
Read moreMulticellular aggregates: a model system for tissue rheology
Morphogenetic processes involve cell flows. The mechanical response of a tissue to active forces is linked to its effective viscosity. In order to decouple this mechanical response from the complex genetic changes occurring in a developing organism, we perform rheometry experiments on multicellular aggregates, which are good models for tissues. We observe a cell softening behavior when submitting to stresses. As our technique is very sensitive, we were able to get access to the measurement of a yield point above which a creep regime is observed obtained for strains above 12%. To explain our rheological curves we propose a model for the cytoskeleton that we represent as a dynamic network of parallel springs, which will break under stress and reattach at null strain. Such a simple model is able to reproduce most of the important behavior of cells under strain. We highlight here the importance of considering cells as complex fluids whose properties will vary with time according to the history of applied stress.
Read moreLipid Cosorting Mediated by Shiga Toxin Induced Tubulation
To maintain cell membrane homeostasis, lipids must be dynamically redistributed during the formation of transport intermediates, but the mechanisms driving lipid sorting are not yet fully understood. Lowering sphingolipid concentration can reduce the bending energy of a membrane, and this effect could account for sphingolipid depletion along the retrograde pathway. However, sphingolipids and cholesterol are enriched along the anterograde pathway, implying that other lipid sorting mechanisms, such as protein-mediated sorting, can dominate. To characterize the influence of protein binding on the lipid composition of highly curved membranes, we studied the interactions of the B-subunit of Shiga toxin (STxB) with giant unilamellar vesicles containing its glycosphingolipid receptor [globotriaosylceramide (Gb3)]. STxB binding induced the formation of tubular membrane invaginations, and fluorescence microscopy images of these highly curved membranes were consistent with co-enrichment of Gb3 and sphingolipids. In agreement with theory, sorting was stronger for membrane compositions close to demixing. These results strongly support the hypothesis that proteins can indirectly mediate the sorting of lipids into highly curved transport intermediates via interactions between lipids and the membrane receptor of the protein.
Read morepH‐Switchable Helicity of DNA‐Templated Assemblies
Coming together: Oligothymine is used as a template to self-assemble complementary nonchiral naphthalene guests. Depending on the protonated state of the guest, left- or right-handed DNA-templated self-assemblies are formed (see picture). The templated assembly processes were studied in detail with temperature-dependent circular dichroism and UV/Vis spectroscopy. © 2009 Wiley-VCH Verlag.
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