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Raman Spectroscopy Reveals Selective Interactions of Cytochrome c with Cardiolipin That Correlate with Membrane
Jay P Kitt1, David A Bryce1, Shelley D Minteer1
1Department of Chemistry, University of Utah , 315 South 1400 East, Salt Lake City, Utah 84112, United States.
Abstract:
Permeabilization of the outer mitochondrial membrane is an integral step in apoptosis. The resulting release of pro-apoptotic signaling proteins leads to cell destruction through activation of the cysteine-aspartic protease (caspase) cascade. However, the mechanism of outer mitochondrial membrane (OMM) permeabilization remains unclear. It was recently shown that cytochrome c can induce pore formation in cardiolipin-containing phospholipid membranes, leading to large dextran and protein permeability. In this work, the interaction of cytochrome c with cardiolipin-containing phospholipid vesicles, serving as models of the OMM, is investigated to probe cytochrome c-induced permeability. Lipid vesicles having either a 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC) or mixed-DPPC/cardiolipin membrane and containing a membrane-impermeable Raman tracer 3-nitrobenzenesulfonate (3-NBS) were optically trapped, translated into a solution containing cytochrome c, and monitored for 3-NBS leakage. Cytochrome-correlated leakage was observed only in cardiolipin-containing vesicles. Structural changes observed in the Raman spectra during permeabilization indicated acyl chain disordering along with decreased intensity of the cardiolipin cis-double-bond stretching modes. When the vesicle-associated cytochrome c Raman spectrum is compared with a spectrum in buffer, heme-resonance bands are absent, indicating loss of Met-80 coordination. To verify selective interactions of cytochrome c with cardiolipin, these experiments were repeated where the DPPC acyl chains were deuterated (D62-DPPC), allowing spectral resolution of the DPPC acyl chain response from that of cardiolipin. Interestingly, D62-DPPC acyl chains were unaffected by cytochrome c accumulation, while cardiolipin showed major changes in acyl chain structure. These results suggest that cytochrome-induced permeabilization proceeds through selective interaction of cytochrome c with cardiolipin, resulting in protein unfolding, where the unfolded form interacts with cardiolipin acyl chains within the bilayer to induce permeability.
Insights
Cytochrome c induces outer mitochondrial membrane permeabilization by selectively interacting with cardiolipin. This interaction causes protein unfolding and acyl chain disordering, leading to pore formation and cell death signaling.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Outer mitochondrial membrane permeabilization is crucial for apoptosis.
- The release of pro-apoptotic proteins activates caspases, leading to cell destruction.
- The precise mechanism of outer mitochondrial membrane permeabilization remains incompletely understood.
Purpose of the Study:
- To investigate the interaction of cytochrome c with cardiolipin-containing membranes.
- To elucidate the mechanism of cytochrome c-induced outer mitochondrial membrane permeabilization.
- To model outer mitochondrial membrane permeabilization using cardiolipin-containing phospholipid vesicles.
Main Methods:
- Optical trapping of lipid vesicles containing a Raman tracer (3-nitrobenzenesulfonate).
- Monitoring tracer leakage upon exposure to cytochrome c.
- Raman spectroscopy to analyze structural changes in vesicle membranes and cytochrome c.
Main Results:
- Cytochrome c-induced leakage was observed exclusively in cardiolipin-containing vesicles.
- Permeabilization involved acyl chain disordering and loss of Met-80 coordination in cytochrome c.
- Deuterated DPPC experiments confirmed selective interaction of cytochrome c with cardiolipin, not DPPC.
Conclusions:
- Cytochrome c selectively interacts with cardiolipin in the outer mitochondrial membrane.
- This interaction leads to cytochrome c unfolding and subsequent disruption of the lipid bilayer.
- The mechanism involves cardiolipin acyl chain disordering, inducing membrane permeability and initiating apoptosis.
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