ATP depletion of erythrocytes “cancels” the protective action of some amphiphilic substances under posthypertonic shock
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All-Ukrainian Conference on Molecular and Cell Biology with international participation; 2022 June 15-17; Institute of Molecular Biology and Genetics NAS of Ukraine, Kyiv, Ukraine, p.112.
Анотація
Aim. To study the protective action of trifluoperazine and sodium decyl sulfate under
posthypertonic shock of ATP-depleted erythrocytes.
Methods. Rabbit erythrocytes were depleted of ATP by incubation with
2-deoxyglucose (10 mmol/L) for 2 hours at 37°C. Posthypertonic shock (PHS) was
performed by transferring red blood cells from 2.0 to 0.15 mol/L NaCl at 0°C.
Trifluoperazine (TFP) (150 μmol/L) and sodium decyl sulfate (C10) (600 μmol/L) were
added to 0.15 mol/L NaCl. The level of posthypertonic hemolysis was estimated. Statistical
processing of the experimental results was performed using Statistica 6.0 software (StatSoft
Inc., USA).
Results. We found that the hemolysis rate of the control rabbit’s erythrocytes at 0°C
was 64 ± 6%, and that of ATP-depleted red blood cells – was 53±6%. TFP and C10 reduce
the level of posthypertonic hemolysis of control red blood cells by 55±6% and 66±7%
respectively. ATP depletion of erythrocytes does not affect the efficacy of C10, while TFP
loses its ability to protect rabbit erythrocytes under PHS. It is known that metabolic depletion
of erythrocytes leads to a strong association of the 4.1R-spectrin-actin complex by changing
the level of protein phosphorylation. This may be the cause in a certain decrease of
erythrocyte hemolysis rate under PHS since the mechanical resistance of the membrane is
increased. The protective effect of amphiphilic compounds under PHS is associated with their
ability to integrate into the lipid bilayer and increase the surface area of erythrocytes, which
allows cells to avoid damage when moving into the rehydration medium. The loss of the
ability of TFP to protect erythrocytes under PHS after ATP depletion of erythrocytes can be
explained by the peculiarities of its incorporation into the membrane. TFP is a cationic
amphiphilic compound. It is mainly distributed in the inner membrane monolayer enriched in
anionic lipids. During metabolic depletion of erythrocytes, the levels of some negatively
charged lipids in the inner monolayer are reduced, which may lead to a decrease in TFP
membrane binding. In contrast, C10 is distributed mainly in the outer monolayer, which
according to available data does not change at ATP-depletion of cells. Therefore, this
amphiphilic compound retains its protective properties under PHS.
Conclusions. Protective agents’ activity under stress conditions depends on the state of
the cells. Thus, during prolonged storage of erythrocytes, their energetic status can change
and they can be partially or fully depleted of ATP. This fact should be taken into account in
the selection of protective agents that can be used in the thawing of cells for protection
against PHS.
Опис
Shpakova NM, Yershova NA, Nipot OE, Shapkina OO, Orlova NV, Yershov SS. ATP depletion of erythrocytes “cancels” the protective action of some amphiphilic substances under posthypertonic shock. In: All-Ukrainian Conference on Molecular and Cell Biology with international participation; 2022 June 15-17; Institute of Molecular Biology and Genetics NAS of Ukraine, Kyiv, Ukraine. Kyiv:Institute of Molecular Biology and Genetics NAS of Ukraine, 2021; p.112.
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Бібліографічний опис
Shpakova NM, Yershova NA, Nipot OE, Shapkina OO, Orlova NV, Yershov SS. ATP depletion of erythrocytes “cancels” the protective action of some amphiphilic substances under posthypertonic shock. In: All-Ukrainian Conference on Molecular and Cell Biology with international participation; 2022 June 15-17; Institute of Molecular Biology and Genetics NAS of Ukraine, Kyiv, Ukraine. Kyiv:Institute of Molecular Biology and Genetics NAS of Ukraine, 2021; p.112.
