Utilization of osmoprotective compounds by hybridoma cells exposed to hyperosmotic stress

K Oyaas1, T E Ellingsen, N Dyrset

  • 1SINTEF Applied Chemistry, N-7034 Trondheim, Norway.

Insights

Certain amino acids and methylated derivatives like glycine betaine effectively protect hybridoma cells from osmotic stress. These osmoprotective compounds accumulate within cells, with more methylated forms showing greater efficacy.

Area of Science:

  • Cell Biology
  • Biochemistry
  • Molecular Biology

Background:

  • Hybridoma cell lines are crucial for antibody production.
  • Cellular growth and viability are sensitive to changes in medium osmolality.
  • Osmoprotective compounds can mitigate stress responses in cultured cells.

Purpose of the Study:

  • To identify effective osmoprotective compounds for mouse hybridoma cell line 6H11.
  • To investigate the dose-dependent effects of hyperosmotic stress on cell growth.
  • To characterize the uptake and efficacy of various osmoprotectants.

Main Methods:

  • Exposure of hybridoma cells to increasing medium osmolality using KCl, NaCl, or sucrose.
  • Addition of various compounds (amino acids, betaines) to assess osmoprotective effects on cell growth.
  • Measurement of intracellular compound accumulation and uptake kinetics.
  • Analysis of dose-response relationships for osmoprotectants.

Main Results:

  • Cell growth decreased significantly with increasing osmolality, with zero growth at approx. 435 mOsmol/kg (KCl) or 510 mOsmol/kg (NaCl, sucrose).
  • Glycine betaine, sarcosine, proline, glycine, asparagine, and dimethylglycine demonstrated moderate to strong osmoprotective effects, particularly under NaCl and sucrose stress.
  • Osmoprotectants accumulated intracellularly, reaching approx. 0.15 M in NaCl-stressed cells, with maximal protective effects observed at 5-30 mM concentrations (65 mM for dimethylglycine).
  • More methylated compounds (glycine betaine, sarcosine, dimethylglycine) were more effective protectants.
  • Glycine betaine uptake increased linearly with osmolality and followed Michaelis-Menten kinetics, with Vmax increasing at higher osmolalities.
  • Hybridoma cells could not utilize choline or glycine betaine aldehyde, suggesting incomplete metabolic pathways.

Conclusions:

  • Glycine betaine, sarcosine, and dimethylglycine are potent osmoprotectants for hybridoma cells.
  • The efficacy of osmoprotectants correlates with their degree of methylation.
  • Medium osmolality influences the maximal transport rate of glycine betaine, but not its affinity.
  • Hybridoma cells possess specific uptake mechanisms for effective osmoprotectants like glycine betaine and glycine.

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