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Grapentine, S.

Publications and source records attributed to Grapentine, S..

2 recordsLinked to original sources

PCYT2 controls muscle health and muscle aging

Muscle degeneration is the most prevalent cause for frailty and dependency in inherited diseases and ageing, affecting hundreds of millions of people. Elucidation of pathophysiological mechanisms, as well as effective treatments for muscle diseases represents an important goal in improving human health. Here, we show that phosphatidylethanolamine cytidyltransferase (PCYT2/ECT), the critical enzyme of the Kennedy branch of phosphatidylethanolamine (PE) synthesis pathway, has an essential role in muscle health. Human genetic deficiency in PCYT2 causes a severe disease with failure to thrive and progressive muscle weakness. Pcyt2 mutant zebrafish recapitulate the patient phenotypes, indicating that the role of PCYT2/PE in muscle is evolutionary conserved. Muscle specific Pcyt2 knockout mice exhibited failure to thrive, impaired muscle development, progressive muscle weakness, muscle loss, accelerated ageing, and reduced lifespan. Mechanistically, Pcyt2 deficiency affects mitochondrial bioenergetics and physicochemical properties of the myofiber membrane lipid bilayer, in particular under exercise strain. We also show that PCYT2 activity declines in the aging muscles of humans and mice. AAV-based delivery of PCYT2 rescued muscle weakness in Pcyt2 knock-out mice and, importantly, improved muscle strength in old mice, offering a novel therapeutic avenue for rare disease patients and muscle aging. Thus, PCYT2 plays a fundamental, specific, and conserved role in vertebrate muscle health, linking PCYT2 and PCYT2 synthesized PE lipids to severe muscle dystrophy, exercise intolerance and aging.

genetics↗

The novel roles of choline transporter-like 1 and 2 in ethanolamine transport

We examined a novel function of mammalian Choline-Transporter-Like proteins CTL1/SLC44A1 and CTL2/SLC44A2 in ethanolamine transport. We established two distinct ethanolamine transport systems of a high affinity (K1 = 55.6 - 66.5 M), mediated by CTL1, and of a low affinity (K2 = 275 - 299 M), mediated by CTL2. Both types of transport are Na+-independent and mediated in a pH dependent manner, as expected for ethanolamine/H+ antiporters. Primary human fibroblasts with separate frameshift mutations (M1= SLC44A1 {Delta}Asp517 and M2= SLC44A1 {Delta}Ser126) are devoid of CTL1 ethanolamine transport but maintain unaffected CTL2 transport. The lack of CTL1 or CTL2 reduced the ethanolamine transport, the flux by the CDP-ethanolamine Kennedy pathway and PE synthesis. Overexpression of CTL1 in SLC44A1 {Delta}Ser126 (M2) cells improved the ethanolamine transport and PE synthesis. The SLC44A1 {Delta}Ser126 cells are reliant on CTL2 function and CTL2 siRNA almost completely abolished ethanolamine transport in the whole cells and mitochondria. Overexpression of CTL1 and CTL2 cDNAs increased ethanolamine transport in control and SLC44A1{Delta}Ser126 cells. CTL1 and CTL2 facilitated mitochondrial ethanolamine uptake, but the transport mediated by CTL1 is predominant in the whole cells and mitochondria. These data firmly established that CTL1 and CTL2 are the first identified ethanolamine transporters in the whole cells and mitochondria, with intrinsic roles in de novo PE synthesis by the CDP-Etn Kennedy pathway and compartmentation of intracellular ethanolamine. SignificanceThe lack of Choline Transporter Like 1 (SLC44A1/CTL1) is the primary cause of a new neurodegenerative disorder with elements of childhood-onset parkinsonism and mitochondrial dysfunction. SLC44A2/CTL2 encodes the human neutrophil antigen 3, causes autoimmune hearing loss and Menieres disease, and has been recently identified as the main risk factor for thrombosis-the major cause of death in Covid-19 patients. Our investigation provides insights into the novel functions of CTL1 and CTL2 as intrinsic ethanolamine transporters. CTL1 and CTL2 are high and low affinity transporters, with direct roles in the membrane phospholipid synthesis. The work contributes to new knowledge for CTL1 and CTL2 independent transport functions and the optimization of prevention and treatment strategies in those various diseases.

physiology↗