Oxidative protein damage negatively affects protein-protein interaction: The case of KRAS-cRAF

Marina Rudan Dimlić1, Sanda Raić1, Marko Močibob2

  • 1Mediterranean Institute for Life Sciences, Split, Croatia.

Insights

UV radiation causes oxidative stress, damaging proteins and disrupting crucial KRAS-RAF interactions in cellular signaling pathways. This damage, specifically protein carbonylation, impacts cell functions and may inform disease therapies.

Area of Science:

  • Molecular Biology
  • Cellular Signaling
  • Biochemistry

Background:

  • Protein-protein interactions (PPIs) are vital for cellular signal transmission.
  • The RAS-RAF-MEK-ERK pathway, initiated by receptor tyrosine kinase (RTK) activation, controls cell proliferation, differentiation, and survival.
  • The RAS-binding domain (RBD) in RAF is essential for relaying signals downstream of RAS.

Purpose of the Study:

  • To investigate the impact of UV-induced oxidative stress on the KRAS-RBD interaction.
  • To determine how varying UV doses affect KRAS-RBD binding.
  • To elucidate the molecular mechanisms underlying UV-induced disruption of this interaction.

Main Methods:

  • Split Intein-Mediated Protein Ligation (SIMPL) assay to assess KRAS-RBD interaction.
  • Oxime Blot to detect protein carbonylation.
  • Mass spectrometry (MS) to identify specific carbonylation sites on KRAS.

Main Results:

  • Higher UV doses disrupted the KRAS-RBD interaction.
  • UV-treated samples showed significant protein carbonylation, indicating oxidative damage.
  • MS analysis identified specific carbonylation modifications on the KRAS protein.

Conclusions:

  • Protein oxidation and carbonylation can disrupt critical protein-protein interactions, such as KRAS/c-RAF.
  • Oxidative stress, exemplified by UV irradiation, significantly impacts cellular signaling pathways.
  • Understanding these oxidative stress-induced molecular changes may lead to novel therapeutic strategies for diseases involving oxidative damage, including cancer.

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