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Theoretical physicists working at a blackboard collaboration pod in the Beecroft building.
Credit: Jack Hobhouse

Alexander Mietke

Associate Professor of Theoretical Soft Matter and Biophysics

Research theme

  • Biological physics

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • Condensed Matter Theory
Telephone: 01865 273956
Rudolf Peierls Centre for Theoretical Physics, room 70.26
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  • About
  • Team
  • Publications

Scaling behaviour and control of nuclear wrinkling

Nature Physics Springer Nature 19:12 (2023) 1927-1935

Authors:

Jonathan A Jackson, Nicolas Romeo, Alexander Mietke, Keaton J Burns, Jan F Totz, Adam C Martin, Jörn Dunkel, Jasmin Imran Alsous
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Rheology of Suspensions of Flat Elastic Particles

Physical Review Letters American Physical Society (APS) 131:19 (2023) 194002

Authors:

Jens Eggers, Tanniemola B Liverpool, Alexander Mietke
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Learning hydrodynamic equations for active matter from particle simulations and experiments

Proceedings of the National Academy of Sciences of the United States of America Proceedings of the National Academy of Sciences 120:7 (2023) e2206994120

Authors:

Rohit Supekar, Boya Song, Alasdair Hastewell, Gary PT Choi, Alexander Mietke, Jörn Dunkel
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Polarized branched Actin modulates cortical mechanics to produce unequal-size daughters during asymmetric division

Nature Cell Biology Nature Research 25:2 (2023) 235-245

Authors:

Alicia Daeden, Alexander Mietke, Emmanuel Derivery, Carole Seum, Frank Jülicher, Marcos Gonzalez-Gaitan

Abstract:

AbstractThe control of cell shape during cytokinesis requires a precise regulation of mechanical properties of the cell cortex. Only few studies have addressed the mechanisms underlying the robust production of unequal-sized daughters during asymmetric cell division. Here we report that unequal daughter-cell sizes resulting from asymmetric sensory organ precursor divisions in Drosophila are controlled by the relative amount of cortical branched Actin between the two cell poles. We demonstrate this by mistargeting the machinery for branched Actin dynamics using nanobodies and optogenetics. We can thereby engineer the cell shape with temporal precision and thus the daughter-cell size at different stages of cytokinesis. Most strikingly, inverting cortical Actin asymmetry causes an inversion of daughter-cell sizes. Our findings uncover the physical mechanism by which the sensory organ precursor mother cell controls relative daughter-cell size: polarized cortical Actin modulates the cortical bending rigidity to set the cell surface curvature, stabilize the division and ultimately lead to unequal daughter-cell size.
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Odd dynamics of living chiral crystals

Nature Springer Nature 607:7918 (2022) 287-293

Authors:

Tzer Han Tan, Alexander Mietke, Junang Li, Yuchao Chen, Hugh Higinbotham, Peter J Foster, Shreyas Gokhale, Jörn Dunkel, Nikta Fakhri
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