Two independent activities define Ccm1p as a moonlighting protein in Saccharomyces cerevisiae

J Ignacio Moreno1, Babu Patlolla, Kerry R Belton

  • 1Department of Biological Sciences, Alcorn State University, Alcorn State, MS 39096-7500, U.S.A. jmoreno@alcorn.edu

Bioscience Reports
|August 7, 2012
PubMed

Insights

Ccm1p, a mitochondrial protein in yeast, independently supports both bI4 maturase activity and 15S rRNA levels. Its role in bI4 maturase is more critical than maintaining 15S rRNA steady-state levels.

Area of Science:

  • Mitochondrial biology
  • Gene expression regulation
  • Molecular genetics

Background:

  • Ccm1p is a nuclear-encoded protein localized to Saccharomyces cerevisiae mitochondria.
  • It's known to be essential for removing specific introns (bI4 and aI4) from pre-mRNAs and maintaining 15S rRNA levels.
  • The maturase for bI4 is mitochondrially synthesized, raising questions about Ccm1p's precise role.

Purpose of the Study:

  • To elucidate whether Ccm1p supports bI4 maturase activity indirectly via 15S rRNA levels or directly.
  • To investigate the independence of Ccm1p's dual functions: bI4 intron removal and 15S rRNA maintenance.
  • To determine the relative dependence of these functions on Ccm1p levels.

Main Methods:

  • Analysis of Ccm1p deletion mutants.
  • Utilizing sudden mitochondrial deprivation of Ccm1p (SMDC) for short-term effect studies.
  • Introducing mutations in Ccm1p's pentatricopeptide repeat (PPR) motifs.

Main Results:

  • Ccm1p's support for bI4 maturase activity is independent of mitochondrial translation machinery functionality.
  • Both Ccm1p functions (bI4 maturase support and 15S rRNA maintenance) are separate, establishing Ccm1p as a moonlighting protein.
  • bI4 maturase activity showed a higher dependence on Ccm1p levels compared to 15S rRNA maintenance.

Conclusions:

  • Ccm1p acts as a moonlighting protein with distinct, independent roles in mitochondrial gene expression.
  • The SMDC method offers a novel approach for studying immediate effects in mitochondrial mutants.
  • Further research can leverage SMDC for investigating mitoribosome assembly and RNA stability.

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