Literature DB >> 6471867

A theory of osmotic lysis of lipid vesicles.

M M Koslov, V S Markin.   

Abstract

Osmotic lysis of vesicles is shown to begin when the membrane expansion due to osmotic pressure exceeds its critical value, delta S, at which a membrane ruptures to form a pore. The dependence of delta S on the vesicle radius and respective osmotic pressures are obtained. It is found that osmotic pressure necessary for small (100 A) vesicles to rupture should exceed 30 atm, for large (10 000 A) vesicles it being as small as 10(-3) atm. In the case of large (greater than or approximately 1000 A) vesicles the value of relative expansion of the membrane at which its rupture occurs in a reasonable time only depends slightly on the vesicle radius. For instance, for 10 000 A vesicles it amounts to 3%. The tension of membrane rupture is about 8 dyn/cm for large vesicles. Membrane tension, although it decreases considerably as a result of rupture and pore formation, does not vanish completely. It supports the residual intravesicular pressure causing the efflux of vesicle (cell) contents. Simultaneously, osmotic influx of water through the membrane occurs that results in either complete rupture of the membrane with the efflux of the whole of the contents, or its gradual washout in either of two, quasi-steady or pulse-wise regimes. In the first case a pore is steadily open, whereas in the second case it alternately opens and closes, ejecting about 5% of internal solution each time. Lysis kinetics is analyzed. Pulse-wise regime of lysis is shown to be the most likely one.

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Year:  1984        PMID: 6471867     DOI: 10.1016/s0022-5193(84)80108-3

Source DB:  PubMed          Journal:  J Theor Biol        ISSN: 0022-5193            Impact factor:   2.691


  19 in total

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5.  Onsager's irreversible thermodynamics of the dynamics of transient pores in spherical lipid vesicles.

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6.  Pulsatile Lipid Vesicles under Osmotic Stress.

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7.  Experimental Estimation of Membrane Tension Induced by Osmotic Pressure.

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9.  Dynamic and reversible shape response of red blood cells in synthetic liquid crystals.

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10.  Cyclic Activity of an Osmotically Stressed Liposome in a Finite Hypotonic Environment.

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Journal:  Langmuir       Date:  2020-03-30       Impact factor: 3.882

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