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Updated: Aug 13, 2026

Toeprinting Analysis of Translation Initiation Complex Formation on Mammalian mRNAs
Published on: May 10, 2018
Inhibition of mammalian translation initiation by volatile anesthetics
Laura K Palmer1, Sharon L Rannels, Scot R Kimball
1Dept. of Cellular and Molecular Physiology, The Pennsylvania State University College of Medicine, 500 University Dr., Hershey, PA 17033, USA.
Abstract:
Volatile anesthetics are essential for modern medical practice, but sites and mechanisms of action for any of their numerous cellular effects remain largely unknown. Previous studies with yeast showed that volatile anesthetics induce nutrient-dependent inhibition of growth through mechanisms involving inhibition of mRNA translation. Studies herein show that the volatile anesthetic halothane inhibits protein synthesis in perfused rat liver at doses ranging from 2 to 6%. A marked disaggregation of polysomes occurs, indicating that inhibition of translation initiation plays a key role. Dose- and time-dependent alterations that decrease the function of a variety of translation initiation processes are observed. At 6% halothane, a rapid and persistent increase in phosphorylation of the alpha-subunit of eukaryotic translation initiation factor (eIF)2 occurs. This is accompanied by inhibition of activity of the guanine nucleotide exchange factor eIF2B that is responsible for GDP-GTP exchange on eIF2. At lower doses, neither eIF2alpha phosphorylation nor eIF2B activity is altered. After extended exposure to 6% halothane, alterations in two separate responses regulated by the target of rapamycin pathway occur: 1) redistribution of eIF4E from its translation-stimulatory association with eIF4G to its translation-inactive complex with eIF4E-binding protein-1; and 2) decreased phosphorylation of ribosomal protein S6 (rpS6) with a corresponding decrease in active forms of a kinase that phosphorylates rpS6 (p70(S6K1)). Changes in the association of eIF4E and eIF4G are observed only after extended exposure to low anesthetic doses. Thus dose- and time-dependent alterations in multiple processes permit liver cells to adapt translation to variable degrees and duration of stress imposed by anesthetic exposure.
Insights
Volatile anesthetics like halothane inhibit protein synthesis in rat liver by disrupting translation initiation. This occurs through dose- and time-dependent effects on key factors, impacting cellular adaptation to anesthetic stress.
Area of Science:
- Anesthesiology
- Molecular Biology
- Cellular Physiology
Background:
- Volatile anesthetics are crucial in medicine, but their cellular mechanisms are poorly understood.
- Previous research in yeast linked volatile anesthetics to nutrient-dependent growth inhibition via mRNA translation interference.
Purpose of the Study:
- To investigate the effects of the volatile anesthetic halothane on protein synthesis in a perfused rat liver model.
- To elucidate the specific mechanisms and pathways involved in halothane-induced translation inhibition.
Main Methods:
- Perfused rat liver exposed to varying doses (2-6%) of halothane.
- Analysis of polysome disaggregation to assess translation initiation.
- Measurement of eukaryotic translation initiation factor 2 (eIF2) alpha-subunit phosphorylation and guanine nucleotide exchange factor eIF2B activity.
- Assessment of target of rapamycin (TOR) pathway components, including eIF4E, eIF4G, eIF4E-binding protein-1, ribosomal protein S6 (rpS6), and p70S6K1.
Main Results:
- Halothane inhibited protein synthesis in a dose-dependent manner (2-6%), causing polysome disaggregation and implicating translation initiation.
- At 6% halothane, rapid eIF2 alpha-subunit phosphorylation and eIF2B activity inhibition occurred.
- Extended exposure to 6% halothane led to eIF4E redistribution and decreased rpS6 phosphorylation via the TOR pathway.
Conclusions:
- Halothane inhibits protein synthesis initiation in rat liver cells through dose- and time-dependent mechanisms.
- The anesthetic affects multiple translation regulatory pathways, including eIF2 and TOR signaling.
- These alterations allow liver cells to adapt to the stress of anesthetic exposure.
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