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Kocharian, E.

Publications and source records attributed to Kocharian, E..

3 recordsLinked to original sources

Ether linkages in phospholipids provide modular control of membrane mechanics

The structures of phospholipid headgroups and chains are well-established determinants of membrane elastic properties, but functions for different chemistries that join these moieties together are poorly understood. While common phospholipids feature ester linkages, alkyl ether- and plasmenyl-linked species emerged in prokaryotes, are highly abundant in metazoans, and have been implicated in neurodegeneration and aging. Multiple pathways for ether lipid synthesis evolved convergently, suggesting conserved functions for ether linkage chemistry in the structure of cell membranes. Here we combine experiments and molecular simulations to show that backbone linkage chemistry provides modular control of membrane mechanics and topology through a set of discrete drivers. Alkyl linkages provide the first of these by additively promoting negative intrinsic curvature, which destabilizes bilayers. Ethers also decouple membrane stiffness from viscosity, softening membranes while maintaining packing in the hydrophobic core. The plasmenyl C=C bond represents a second, distinct driver that stabilizes the inverted hexagonal phase by relieving interstitial packing frustration. These results explain the fusogenicity of ether lipids, show how they regulate membrane topology through multiple physical mechanisms, and provide a rationale for convergent evolution of the complex plasmenyl linkage moiety.

biophysics↗

Saturated cardiolipins are potent disruptors of inner mitochondrial membrane structure and function

Cardiolipin (CL) is a four-acyl chained, mitochondrial-specific phospholipid crucial for maintenance of inner mitochondrial membrane (IMM) structure and function. In healthy tissues, CL acyl chains are highly unsaturated and maintained by a conserved remodeling pathway. However, dysregulation of CL acyl chain composition can arise from mutations in the CL transacylase, Tafazzin (TAZ), resulting in Barth syndrome (BTHS), where patients exhibit heightened mitochondrial dysfunction. Cells lacking TAZ accumulate three-acyl chained monolysocardiolipin (MLCL) as well as CL species with saturated acyl chains (CLsat). While the presence of MLCL destabilizes electron transport chain (ETC) complexes and IMM-shaping proteins, the contributions of CLsat to mitochondrial dysfunction have not been elucidated. Here, we find that treatment of TAZ knockout cells with exogenous saturated fatty acids causes accumulation of CLsat and loss of IMM structure despite only minimal changes in MLCL composition. Imaging of cells with elevated CLsat showed reduced fluidity of the inner membrane. Biophysical measurements and molecular dynamics analyses showed that di-saturated (C16:0 18:1)2 CL species order and rigidify membranes, while also losing the intrinsic lipid curvature characteristic of tetra-unsaturated CL. These results implicate CLsat as a potential driver of mitochondrial dysfunction and an additional therapeutic target in mitigating BTHS pathology.

cell biology↗

Homeostatic regulation of intrinsic lipid curvature in eukaryotic cells

Cell membranes are composed of both bilayer-supporting and non-bilayer phospholipids, with the latters negative intrinsic curvature aiding in membrane trafficking and the dynamics of membrane proteins. Phospholipid metabolism has long been recognized to maintain membrane fluidity, but whether it also acts to maintain the function of high-curvature lipids is not resolved. Here, we find that cells grown under hydrostatic pressure - used to artificially reduce lipid curvature - maintain lipidome curvature through metabolic acclimation. We first observed that manipulation of the lipidome curvature via the phosphatidylethanolamine (PE) to phosphatidylcholine (PC) ratio affects high-pressure growth and viability of yeast independently of membrane fluidity. In wild-type cells, X-ray scattering measurements revealed an increased propensity for lipid extracts to form non-lamellar phases after extended pressure incubations. Unexpectedly, this change in phase behavior was not due to increased levels of PE, but of phosphatidylinositol (PI), the only major phospholipid class whose curvature had not been previously characterized. We found that PI is a non-bilayer lipid, with a negative curvature intermediate to that of PE and PC. Accounting for PI, mean lipidome curvature was defended in response to pressure by two distantly related yeasts. Lipidome curvature also responded to pressure in a human cancer cell line through ether phospholipid metabolism and chain remodeling, but not in bacterial cells. These findings indicate that eukaryotic phospholipid metabolism uses diverse mechanisms to maintain curvature frustration in cell membranes.

biophysics↗