AI Article Synopsis

  • Cultured neuroblastoma cells show a significant boost in antioxidative ability when transitioning from rapidly dividing to nondividing, neurite-presenting states.
  • The neurite-bearing cells exhibit a strong resistance to lipid peroxidation and their supernatant can inhibit peroxidation in other biological membranes, indicating two distinct phenomena at play.
  • A new assay has quantified the increase in antioxidant levels, revealing that the enhanced resistance to lipid peroxidation correlates with a threefold rise in antioxidant activity within the neutral lipid fraction of these cells.

Article Abstract

Cultured mouse neuroblastoma cells exhibit a striking increase in antioxidative capacity during the transition from logarithmically dividing cells to nondividing, neurite-bearing cells. Two physically separable phenomena are involved: (a) the membrane pellet of neurite-bearing cells is highly resistant to lipid peroxidation, and (b) the postmicrosomal supernatant of these cells inhibits peroxidation in rat liver mitochondria and other biological membranes. A precise, single-phase assay has been developed for assessing antioxidant levels in lipid extracts. By means of this assay, the increase in membrane resistance to lipid peroxidation has been correlated with a threefold increase in the antioxidant activity of the neuroblastoma neutral lipid fraction. This finding implies that generations of a neutral lipid antioxidant (or antioxidants) is involved in the profound increase in antioxidative capacity which occurs in differentiating neuroblastoma cells.

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Source
http://dx.doi.org/10.1007/BF02533706DOI Listing

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