Mutations in the RAM network confer resistance to the thiol oxidant 4,4'-dipyridyl disulfide

H Reynaldo López-Mirabal1, Jakob R Winther, Michael Thorsen

  • 1Carlsberg Laboratory, Gamle Carlsberg Vej 10, 2500 Copenhagen Valby, Denmark.

Insights

Mutants resistant to thiol oxidants reveal new cellular defense mechanisms. Impaired RAM signaling and chitinase Cts1p production enhance resistance to oxidative and cytoskeletal stress.

Area of Science:

  • Cellular Biology
  • Biochemistry
  • Genetics

Background:

  • Thiol oxidants impact cellular functions, making resistance mechanisms crucial.
  • Understanding resistance to thiol-specific oxidants can identify key cellular targets and pathways.

Purpose of the Study:

  • To identify genes and mechanisms conferring resistance to the thiol oxidant dipyridyl disulfide (DPS).
  • To investigate the role of the RAM signaling network and chitinase Cts1p in cellular oxidative stress response.

Main Methods:

  • Screening for mutants resistant to dipyridyl disulfide (DPS).
  • Analyzing the function of RAM signaling network protein Tao3/Pag1p.
  • Investigating the role of chitinase Cts1p (CTS1) in DPS resistance.
  • Assessing resistance to other stressors like latrunculin and benomyl.

Main Results:

  • A mutant (tao3-516) impaired in Tao3/Pag1p showed DPS resistance, linked to deficient Cts1p production.
  • Deletion of RAM genes or CTS1 also conferred DPS resistance.
  • Mutants exhibited altered responses to cytoskeletal inhibitors (latrunculin, benomyl).
  • Deltacts1 mutants showed broad resistance to multiple oxidants, linking cell wall function to oxidative stress resistance.

Conclusions:

  • The RAM network and Cts1p are involved in cellular defense against thiol oxidants.
  • Cell wall function, regulated by Cts1p, plays a role in oxidative stress resistance.
  • These findings suggest common targets for various oxidants and cytoskeletal stressors.

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