Cytochrome C-like Domain Within the Human BK Channel

Taleh Yusifov1, Fidan Qudretova1, Aysel Aliyeva1

  • 1Institute of Biophysics, Ministry of Science and Education of the Republic of Azerbaijan, Z. Khalilov Street, 117, Baku AZ1141, Azerbaijan.

Insights

Large-conductance potassium (BK) channels possess a novel cytochrome c-like module. This heme-sensitive region confers peroxidase activity, enhancing cellular excitability regulation.

Area of Science:

  • Molecular Biology
  • Biophysics
  • Biochemistry

Background:

  • Large-conductance, voltage- and calcium-activated potassium (BK) channels regulate cellular excitability.
  • Heme is a signaling molecule that influences BK channel function via a heme-sensitive motif (612CKACH616).
  • This motif is conserved in cytochrome c proteins but the BK channel's linker region remains structurally undefined.

Purpose of the Study:

  • To investigate structural and functional similarities between the BK channel's RCK1-RCK2 linker and cytochrome c domains.
  • To determine if the BK channel's linker region possesses catalytic properties similar to cytochrome c.

Main Methods:

  • Sequence alignment of the BK channel linker region with various cytochrome c and hemoprotein domains.
  • Analysis of conserved secondary structural elements and heme-binding residues.
  • Assay of peroxidase activity in the BK channel linker region and its mutants.

Main Results:

  • Sequence alignment revealed conserved structural and functional elements of cytochrome c in the BK channel linker.
  • The BK channel linker region exhibits peroxidase activity with a high affinity for H2O2, exceeding that of mitochondrial cytochrome c.
  • Mutations at the 612CKACH616 motif reduced this peroxidase activity.

Conclusions:

  • The BK channel contains a novel module homologous to cytochrome c domains, conferring peroxidase activity.
  • This intrinsic peroxidase activity may contribute to unique physiological functions of BK channels.
  • The heme-sensitive motif (612CKACH616) is critical for the linker's peroxidase function.

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