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Updated: Sep 25, 2025

Assays for the Degradation of Misfolded Proteins in Cells
Published on: August 28, 2016
A polypeptide model for toxic aberrant proteins induced by aminoglycoside antibiotics
Mangala Tawde1, Abdelaziz Bior2, Michael Feiss3
1Department of Biological Sciences and Geology, Queensborough Community College, City University of New York, Bayside, New York, United States of America.
Abstract:
Aminoglycoside antibiotics interfere with the selection of cognate tRNAs during translation, resulting in the synthesis of aberrant proteins that are the ultimate cause of cell death. However, the toxic potential of aberrant proteins and how they avoid degradation by the cell's protein quality control (QC) machinery are not understood. Here we report that levels of the heat shock (HS) transcription factor σ32 increased sharply following exposure of Escherichia coli to the aminoglycoside kanamycin (Kan), suggesting that at least some of the aberrant proteins synthesized in these cells were recognized as substrates by DnaK, a molecular chaperone that regulates the HS response, the major protein QC pathway in bacteria. To further investigate aberrant protein toxic potential and interaction with cell QC factors, we studied an acutely toxic 48-residue polypeptide (ARF48) that is encoded by an alternate reading frame in a plant cDNA. As occurred in cells exposed to Kan, σ32 levels were strongly elevated following ARF48 expression, suggesting that ARF48 was recognized as a substrate by DnaK. Paradoxically, an internal 10-residue region that was tightly bound by DnaK in vitro also was required for the ARF48 toxic effect. Despite the increased levels of σ32, levels of several HS proteins were unchanged following ARF48 expression, suggesting that the HS response had been aborted. Nucleoids were condensed and cell permeability increased rapidly following ARF48 expression, together suggesting that ARF48 disrupts DNA-membrane interactions that could be required for efficient gene expression. Our results are consistent with earlier studies showing that aberrant proteins induced by aminoglycoside antibiotics disrupt cell membrane integrity. Insights into the mechanism for this effect could be gained by further study of the ARF48 model system.
Insights
Aminoglycoside antibiotics cause cell death by producing toxic aberrant proteins. This study reveals these proteins disrupt DNA-membrane interactions, potentially explaining their toxicity and evasion of cellular protein quality control.
Area of Science:
- Microbiology
- Molecular Biology
- Cell Biology
Background:
- Aminoglycoside antibiotics induce cell death via aberrant protein synthesis.
- The toxicity of aberrant proteins and their interaction with protein quality control (QC) remain unclear.
Purpose of the Study:
- To investigate the toxic potential of aberrant proteins.
- To understand how aberrant proteins interact with cellular protein QC machinery.
- To elucidate the mechanism of cell death induced by aberrant proteins.
Main Methods:
- Exposure of Escherichia coli to kanamycin (Kan) and expression of a toxic polypeptide (ARF48).
- Monitoring of heat shock (HS) transcription factor σ32 and HS protein levels.
- In vitro binding assays with DnaK chaperone.
- Analysis of nucleoid condensation and cell permeability.
Main Results:
- Aberrant protein synthesis, induced by Kan or ARF48, elevated σ32 levels, indicating recognition by DnaK.
- A specific region of ARF48, bound by DnaK, was essential for its toxicity.
- ARF48 expression led to nucleoid condensation and increased cell permeability, disrupting DNA-membrane interactions.
- The heat shock response appeared aborted despite elevated σ32.
Conclusions:
- Aberrant proteins can disrupt DNA-membrane interactions, contributing to toxicity.
- This disruption may explain how aberrant proteins evade degradation and cause cell death.
- The ARF48 model system offers insights into aminoglycoside-induced cell membrane integrity disruption.
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