Literature DB >> 32428404

The Human Cytochrome c Domain-Swapped Dimer Facilitates Tight Regulation of Intrinsic Apoptosis.

Harmen B B Steele1,2, Margaret M Elmer-Dixon1,2, James T Rogan1, J B Alexander Ross1,2, Bruce E Bowler1,2.   

Abstract

Oxidation of cardiolipin (CL) by cytochrome c (cytc) has been proposed to initiate the intrinsic pathway of apoptosis. Domain-swapped dimer (DSD) conformations of cytc have been reported both by our laboratory and by others. The DSD is an alternate conformer of cytc that could oxygenate CL early in apoptosis. We demonstrate here that the cytc DSD has a set of properties that would provide tighter regulation of the intrinsic pathway. We show that the human DSD is kinetically more stable than horse and yeast DSDs. Circular dichroism data indicate that the DSD has a less asymmetric heme environment, similar to that seen when the monomeric protein binds to CL vesicles at high lipid:protein ratios. The dimer undergoes the alkaline conformational transition near pH 7.0, 2.5 pH units lower than that of the monomer. Data from fluorescence correlation spectroscopy and fluorescence anisotropy suggest that the alkaline transition of the DSD may act as a switch from a high affinity for CL nanodiscs at pH 7.4 to a much lower affinity at pH 8.0. Additionally, the peroxidase activity of the human DSD increases 7-fold compared to that of the monomer at pH 7 and 8, but by 14-fold at pH 6 when mixed Met80/H2O ligation replaces the lysine ligation of the alkaline state. We also present data that indicate that cytc binding shows a cooperative effect as the concentration of cytc is increased. The DSD appears to have evolved into a pH-inducible switch that provides a means to control activation of apoptosis near pH 7.0.

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Year:  2020        PMID: 32428404      PMCID: PMC7291863          DOI: 10.1021/acs.biochem.0c00326

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  105 in total

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2.  Structural characterization of cardiolipin-driven activation of cytochrome c into a peroxidase and membrane perturbation.

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Review 9.  The role of mitochondrial factors in apoptosis: a Russian roulette with more than one bullet.

Authors:  G van Loo; X Saelens; M van Gurp; M MacFarlane; S J Martin; P Vandenabeele
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Review 10.  Lipids of mitochondria.

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  2 in total

1.  Calcium-induced release of cytochrome c from cardiolipin nanodisks: Implications for apoptosis.

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2.  Effect on intrinsic peroxidase activity of substituting coevolved residues from Ω-loop C of human cytochrome c into yeast iso-1-cytochrome c.

Authors:  Ariel K Frederick; Sidney L Thompson; Zahra M Vakharia; Melisa M Cherney; Haotian Lei; Garrett Evenson; Bruce E Bowler
Journal:  J Inorg Biochem       Date:  2022-04-06       Impact factor: 4.336

  2 in total

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