Literature DB >> 17921219

Life and times of a cellular bleb.

Guillaume T Charras1, Margaret Coughlin, Timothy J Mitchison, L Mahadevan.   

Abstract

Blebs are spherical cellular protrusions that occur in many physiological situations. Two distinct phases make up the life of a bleb, each of which have their own biology and physics: expansion, which lasts approximately 30 s, and retraction, which lasts approximately 2 min. We investigate these phases using optical microscopy and simple theoretical concepts, seeking information on blebbing itself, and on cytomechanics in general. We show that bleb nucleation depends on pressure, membrane-cortex adhesion energy, and membrane tension, and test this experimentally. Bleb growth occurs through a combination of bulk flow of lipids and delamination from the cell cortex via the formation and propagation of tears. In extreme cases, this can give rise to a traveling wave around the cell periphery, known as "circus movement." When growth stalls, an actin cortex reforms under the bleb membrane, and retraction starts, driven by myosin-II. Using flicker spectroscopy, we find that retracting blebs are fivefold more rigid than expanding blebs, an increase entirely explained by the properties of the newly formed cortical actin mesh. Finally, using artificially nucleated blebs as pressure sensors, we show that cells rounded up in mitosis possess a substantial intracellular pressure.

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Year:  2007        PMID: 17921219      PMCID: PMC2242777          DOI: 10.1529/biophysj.107.113605

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  50 in total

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Authors: 
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5.  Actin-binding protein requirement for cortical stability and efficient locomotion.

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  171 in total

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9.  Blebbing confers resistance against cell lysis.

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10.  Physical basis of apparent pore dilation of ATP-activated P2X receptor channels.

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