4.7 Article

Chemotherapy agents reduce protein synthesis and ribosomal capacity in myotubes independent of oxidative stress

期刊

AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY
卷 321, 期 6, 页码 C1000-C1009

出版社

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/ajpcell.00116.2021

关键词

chemotherapy; muscle wasting; oxidative stress; protein synthesis; ribosomal RNA

资金

  1. National Institutes of Health [AR073385]
  2. Pennsylvania State University
  3. Huck Institutes of the Life Sciences

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Oxidative stress impairs protein synthesis by compromising ribosomal quantity and quality, while CAs negatively impact protein synthesis and ribosomal capacity by reducing rDNA transcription to a certain extent in a ROS-independent manner.
Chemotherapeutic agents (CAs) are first-One antineoplastic treatments against a wide variety of cancers. Despite their effectiveness in halting tumor progression, side effects associated with CAs promote muscle loss by incompletely understood mechanisms. To address this problem, we first identified how oxidative stress impairs protein synthesis in C2C12 myotubes. Transient elevations in reactive oxygen species (ROS) resulted in protein synthesis deficits and reduced ribosomal (r)RNA levels. Oxidative stress did not reduce rRNA gene (rDNA) transcription, but it caused an increase in rRNA and protein oxidation. To determine whether CAs affect protein synthesis independent of oxidative stress, we exposed myotubes to Paclitaxel (PTX), Doxorubicin (DXR), or Marizomib (Mzb) at doses that did result in elevated ROS levels (sub-ROS). Exposure to CAs reduced protein synthesis and rRNA levels, but unlike oxidative stress, sub-ROS exposures impaired rDNA transcription. These results indicate that although oxidative stress disrupts protein synthesis by compromising ribosomal quantity and quality, CAs at sub-ROS doses compromise protein synthesis and ribosomal capacity, at least in part, by reducing rDNA transcription. Therefore, CAs negatively impact protein synthesis by causing oxidative stress in addition to directly reducing the ribosomal capacity of myotubes in a ROS-independent manner.

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