Cristae formation is a mechanical buckling event controlled by the inner membrane lipidome. 2023

Kailash Venkatraman, and Christopher T Lee, and Guadalupe C Garcia, and Arijit Mahapatra, and Daniel Milshteyn, and Guy Perkins, and Keun-Young Kim, and H Amalia Pasolli, and Sebastien Phan, and Jennifer Lippincott-Schwartz, and Mark H Ellisman, and Padmini Rangamani, and Itay Budin
Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, CA 92093.

Cristae are high curvature structures in the inner mitochondrial membrane (IMM) that are crucial for ATP production. While cristae-shaping proteins have been defined, analogous mechanisms for lipids have yet to be elucidated. Here we combine experimental lipidome dissection with multi-scale modeling to investigate how lipid interactions dictate IMM morphology and ATP generation. When modulating phospholipid (PL) saturation in engineered yeast strains, we observed a surprisingly abrupt breakpoint in IMM topology driven by a continuous loss of ATP synthase organization at cristae ridges. We found that cardiolipin (CL) specifically buffers the IMM against curvature loss, an effect that is independent of ATP synthase dimerization. To explain this interaction, we developed a continuum model for cristae tubule formation that integrates both lipid and protein-mediated curvatures. The model highlighted a snapthrough instability, which drives IMM collapse upon small changes in membrane properties. We also showed that CL is essential in low oxygen conditions that promote PL saturation. These results demonstrate that the mechanical function of CL is dependent on the surrounding lipid and protein components of the IMM.

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