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June 1, 1985Circulation Research97 citationsOpen Access

Direct observation of the "oxygen paradox" in single rat ventricular myocytes.

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MSMichael D. SternACAichi ChienMCM. C. Capogrossi

Key Result

Reoxygenation of rat ventricular myocytes after >20 minutes of anoxia-induced rigor consistently resulted in hypercontracture, whereas reoxygenation after <10 minutes of rigor allowed functional recovery.

Key Points

  • This study investigates the effects of anoxia and reoxygenation on the morphology and function of isolated rat ventricular myocytes.
  • Phase contrast microscopy was used to observe morphological changes in single rat ventricular myocytes during anoxia and subsequent reoxygenation.
  • Cell shortening and recovery were measured, focusing on the timing of rigor onset and reoxygenation.
  • Cells reoxygenated before rigor recovery showed normal morphology and function.
  • Cells reoxygenated after more than 20 minutes in rigor exhibited hypercontracture, indicating impaired recovery.
  • Duration of rigor state was critical, with less than 10 minutes leading to recovery, but over 20 minutes caused detrimental hypercontracture.

Structured PICO

P
Population
Isolated rat ventricular myocytes subjected to anoxia and reoxygenation to observe morphological changes.
I
Intervention
Anoxia followed by reoxygenation
C
Comparator
Different durations of rigor state prior to reoxygenation (<10 minutes vs >20 minutes)
O
Outcome
Morphological changes and functional recovery (hypercontracture vs recovery of stimulated twitches)surrogate

In isolated rat ventricular myocytes, the occurrence of hypercontracture upon reoxygenation depends on the duration of the rigor state rather than the total duration of hypoxia.

Abstract

By phase contrast microscopy with video length tracking, we followed the sequence of morphological changes in individual isolated rat ventricular myocytes during anoxia followed by reoxygenation. Cells appeared normal during early anoxia. After a duration of anoxia T1, which varied from 17-47 minutes in different cells, each cell abruptly contracted an average of 33% in length to an inert rectangular form presumed to be a rigor state. Cells which were reoxygenated before the onset of rigor showed normal morphology and an unchanged extent of shortening on field stimulation, compared to control. Cells that were reoxygenated after a time in the rigor state, T2, either partially recovered to a shortened rectangular form capable of stimulated twitches or rounded up rapidly to a disordered hypercontracture form. The distribution of T1 was the same for cells which recovered and which hypercontracted. In contrast, the outcome of reoxygenation depended markedly on T2: all cells that were reoxygenated after less than 10 minutes of rigor recovered function, whereas all cells that spent more than 20 minutes in rigor hypercontracted when reoxygenated. The hypercontracture appears to be the cellular analog of the "oxygen paradox" in whole hearts. Its occurrence is reliably related to duration of rigor state but not to duration of hypoxia, because of marked cellular variability in the time of onset of rigor.

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Cite This Study

Stern et al. (1985) studied Anoxia and reoxygenation (cellular model of oxygen paradox). Anoxia followed by reoxygenation vs. Control (cells reoxygenated before rigor onset) was evaluated on Morphological changes (recovery vs hypercontracture) upon reoxygenation. Reoxygenation of rat ventricular myocytes after >20 minutes of anoxia-induced rigor consistently resulted in hypercontracture, whereas reoxygenation after <10 minutes of rigor allowed functional recovery.

synapsesocial.com/papers/6a6380e33eb69703d1b71da6https://doi.org/10.1161/01.res.56.6.899
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