Inhibition of Ribosome Assembly and Ribosome Translation Has Distinctly Different Effects on Abundance and Paralogue

Md Shamsuzzaman1, Nusrat Rahman1, Brian Gregory1

  • 1Department of Biological Sciences, University of Maryland-Baltimore County, Baltimore, Maryland, USA.

Msystems
|January 18, 2023
PubMed

Insights

Ribosomopathies arise from mutations in ribosomal proteins (r-proteins). This study reveals that how protein synthesis is reduced, either by inhibiting ribosome formation or function, differentially impacts the ribosomal protein transcriptome, offering new insights into these diseases.

Area of Science:

  • Molecular Biology
  • Cellular Biology
  • Genetics

Background:

  • Mutations in ribosomal proteins (r-proteins) and assembly factors cause ribosomopathies, a group of congenital diseases.
  • Despite reduced protein synthesis capacity, these mutations lead to diverse disease phenotypes, suggesting mechanisms beyond simple synthesis deficiency.

Purpose of the Study:

  • To investigate the global transcriptome response in Saccharomyces cerevisiae to two distinct methods of reducing protein synthesis: abolishing ribosome assembly and inhibiting ribosomal function.
  • To understand how the specific mechanism of protein synthesis obstruction influences the transcriptome, particularly ribosomal protein gene expression.

Main Methods:

  • Utilized Saccharomyces cerevisiae as a model organism.
  • Analyzed global transcriptome changes in response to two distinct protein synthesis reduction strategies.
  • Compared mRNA abundance of ribosomal proteins, ribosome assembly factors, and translation factors under different stress conditions.

Main Results:

  • Ribosomal protein mRNA abundance increased when ribosome formation was abolished but decreased when ribosomal function was inhibited.
  • The ratio of specific paralogous ribosomal protein mRNAs changed differently depending on the stress type, suggesting a role in stress response.
  • Transcripts for ribosome assembly and translation factors remained largely unaffected, while other non-translation-related genes showed differential expression patterns.

Conclusions:

  • The mechanism of protein synthesis reduction significantly impacts the ribosomal protein transcriptome, with opposite effects observed for ribosome formation versus function inhibition.
  • The differential response of specific ribosomal protein paralogs suggests a nuanced role in cellular stress beyond overall protein synthesis capacity.
  • Understanding the process of protein synthesis reduction is crucial for comprehending ribosomopathies and cellular stress responses.

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