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Biology subjects

Periasamy, A.

Publications and source records attributed to Periasamy, A..

2 recordsLinked to original sources

Ion currents through Kir potassium channels are gated by anionic lipids.

Ion currents through potassium channels are gated. Constriction of the ion conduction pathway at the inner helix bundle, the textbook gate of Kir potassium channels, has been shown to be an ineffective permeation control, creating a rift in our understanding of how these channels are gated. Here we present the first evidence that anionic lipids act as interactive response elements sufficient to gate potassium conduction. We demonstrate the limiting barrier to K+ permeation lies within the ion conduction pathway and show that this gate is operated by the fatty acyl tails of lipids that infiltrate the conduction pathway via fenestrations in the walls of the pore. Acyl tails occupying a surface groove extending from the cytosolic interface to the conduction pathway provide a potential means of relaying cellular signals, mediated by anionic lipid head groups bound at the canonical lipid binding site, to the internal gate.

biochemistry↗

SOD1 Mediates Lysosome-to-Mitochondria Communication and its Dysregulation by Amyloid-β Oligomers

Altered mitochondrial DNA (mtDNA) occurs in neurodegenerative disorders like Alzheimers disease (AD); how mtDNA synthesis is linked to neurodegeneration is poorly understood. We discovered Nutrient-induced Mitochondrial Activity (NiMA), an inter-organelle signaling pathway where nutrient-stimulated lysosomal mTORC1 activity regulates mtDNA replication in neurons by a mechanism sensitive to amyloid-{beta} oligomers (A{beta}Os), a primary factor in AD pathogenesis. Using 5-ethynyl-2-deoxyuridine (EdU) incorporation into mtDNA of cultured neurons, along with photoacoustic and mitochondrial metabolic imaging of cultured neurons and mouse brains, we show these effects being mediated by mTORC1-catalyzed T40 phosphorylation of superoxide dismutase 1 (SOD1). Mechanistically, tau, another key factor in AD pathogenesis and other tauopathies, reduced the lysosomal content of the tuberous sclerosis complex (TSC), thereby increasing NiMA and suppressing SOD1 activity and mtDNA synthesis. A{beta}Os inhibited these actions. Dysregulation of mtDNA synthesis was observed in fibroblasts derived from TS patients, who lack functional TSC and elevated SOD1 activity was also observed in human AD brain. Together, these findings imply that tau and SOD1 couple nutrient availability to mtDNA replication, linking mitochondrial dysfunction to AD.

neuroscience↗