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Updated: May 28, 2026

Characterizing Single-Molecule Conformational Changes Under Shear Flow with Fluorescence Microscopy
Published on: January 25, 2020
Shear-induced changes in membrane fluidity during culture of a fragile dinoflagellate microalga
J J Gallardo-Rodríguez1, F García-Camacho, A Sánchez-Mirón
1Dept. of Chemical Engineering, University of Almería, 04120 Almería, Spain. jgr285@ual.es
Abstract:
The commonly used shear protective agent Pluronic F68 (PF68) was toxic to the marine dinoflagellate microalga Protoceratium reticulatum, but had a shear-protective effect on it at concentrations of ≤ 0.5 g L(-1) . Supplementation of P. reticulatum cultures with PF68 actually increased the fluidity of the cell membrane; therefore, the shear protective effect of PF68 could not be ascribed to reduced membrane fluidity, an explanation that has been commonly used in relation to its shear protective effect on animal cells. Data are reported on the membrane fluidity of P. reticulatum and its response to the presence of PF68 under sublethal and lethal turbulence regimens. The membrane fluidity was found to depend strongly on the level of lipoperoxides in the cells produced under lethal agitation.
Insights
Pluronic F68 (PF68) protects marine microalgae Protoceratium reticulatum from shear stress by increasing membrane fluidity, not decreasing it. This challenges previous assumptions about PF68
Area of Science:
- Marine biology
- Biochemistry
- Cellular physiology
Background:
- Pluronic F68 (PF68) is a common shear-protective agent.
- Its protective mechanism in animal cells is often attributed to reduced membrane fluidity.
- The effect of PF68 on microalgal cell membranes under shear stress is less understood.
Purpose of the Study:
- To investigate the shear-protective effect of PF68 on the marine dinoflagellate microalga Protoceratium reticulatum.
- To determine the impact of PF68 on P. reticulatum cell membrane fluidity under varying turbulence levels.
- To elucidate the mechanism behind PF68's shear protection in microalgae.
Main Methods:
- Culturing Protoceratium reticulatum under different Pluronic F68 concentrations.
- Subjecting cultures to sublethal and lethal turbulence regimens.
- Measuring cell membrane fluidity and lipoperoxide levels.
Main Results:
- Pluronic F68 exhibited a shear-protective effect on P. reticulatum at concentrations up to 0.5 g L(-1).
- PF68 supplementation increased, rather than decreased, the fluidity of P. reticulatum cell membranes.
- Membrane fluidity was significantly influenced by lipoperoxide levels generated under lethal agitation.
Conclusions:
- The shear-protective mechanism of PF68 in P. reticulatum differs from that observed in animal cells.
- Increased membrane fluidity, not reduced fluidity, is associated with PF68's protective effect in this microalga.
- Lipoperoxide accumulation under shear stress plays a critical role in regulating microalgal membrane fluidity.
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