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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.
Abstract:
Large-conductance, voltage- and calcium-activated potassium (BK) channels are crucial regulators of cellular excitability, influenced by various signaling molecules, including heme. The BK channel contains a heme-sensitive motif located at the sequence 612CKACH616, which is a conserved heme regulatory motif (HRM) found in the cytochrome c protein family. This motif is situated within a linker region of approximately 120 residues that connect the RCK1 and RCK2 domains, and it also includes terminal α-helices similar to those found in cytochrome c family proteins. However, much of this region has yet to be structurally defined. We conducted a sequence alignment of the BK linker region with mitochondrial cytochrome c and cytochrome c domains from various hemoproteins to better understand this functionally significant region. In addition to the HRM motif, we discovered that important structural and functional elements of cytochrome c proteins are conserved in the BK RCK1-RCK2 linker. Firstly, the part of the BK region that is resolved in available atomic structures shows similarities in secondary structural elements with cytochrome c domain proteins. Secondly, the Met80 residue in cytochrome c domains, which acts as the second axial ligand to the heme iron, aligns with the BK channel. Beyond its role in electron shuttling, cytochrome c domains exhibit various catalytic properties, including peroxidase activity-specifically, the oxidation of suitable substrates using peroxides. Our findings reveal that the linker region endows human BK channels with peroxidase activity, showing an apparent H2O2 affinity approximately 40-fold greater than that of mitochondrial cytochrome c under baseline conditions. This peroxidase activity was reduced when substitutions were made at 612CKACH616 and other relevant sites. These results indicate that the BK channel possesses a novel module similar to the cytochrome c domains of hemoproteins, which may give rise to unique physiological functions for these widespread ion channels.
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