Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Mitochondrial choline import regulates purine nucleotide pools via SLC25A48

View through CrossRef
ABSTRACT Choline is an essential nutrient for cellular metabolism, including the biosynthesis of phospholipids, neurotransmitters, and one-carbon metabolism. A critical step of choline catabolism is the mitochondrial import and synthesis of chorine-derived methyl donors, such as betaine. However, the underlying mechanisms and the biological significance of mitochondrial choline catabolism remain insufficiently understood. Here, we report that a mitochondrial inner-membrane protein SLC25A48 controls mitochondrial choline transport and catabolism in vivo . We demonstrate that SLC25A48 is highly expressed in brown adipose tissue and required for whole-body cold tolerance, thermogenesis, and mitochondrial respiration. Mechanistically, choline uptake into the mitochondrial matrix via SLC25A48 facilitates betaine synthesis and one-carbon metabolism. Importantly, cells lacking SLC25A48 exhibited reduced synthesis of purine nucleotides and failed to initiate the G1-to-S phase transition, thereby leading to cell death. Taken together, the present study identified SLC25A48 as a mitochondrial carrier that mediates choline import and plays a critical role in mitochondrial respiratory capacity, purine nucleotide synthesis, and cell survival. Key points SLC25A48 is required for mitochondrial choline uptake. Mitochondrial choline uptake regulates one-carbon contribution to purine nucleotide synthesis. Brown fat thermogenesis requires mitochondrial choline catabolism for respiratory capacity. Cancer cells require mitochondrial choline uptake for cell survival.
Title: Mitochondrial choline import regulates purine nucleotide pools via SLC25A48
Description:
ABSTRACT Choline is an essential nutrient for cellular metabolism, including the biosynthesis of phospholipids, neurotransmitters, and one-carbon metabolism.
A critical step of choline catabolism is the mitochondrial import and synthesis of chorine-derived methyl donors, such as betaine.
However, the underlying mechanisms and the biological significance of mitochondrial choline catabolism remain insufficiently understood.
Here, we report that a mitochondrial inner-membrane protein SLC25A48 controls mitochondrial choline transport and catabolism in vivo .
We demonstrate that SLC25A48 is highly expressed in brown adipose tissue and required for whole-body cold tolerance, thermogenesis, and mitochondrial respiration.
Mechanistically, choline uptake into the mitochondrial matrix via SLC25A48 facilitates betaine synthesis and one-carbon metabolism.
Importantly, cells lacking SLC25A48 exhibited reduced synthesis of purine nucleotides and failed to initiate the G1-to-S phase transition, thereby leading to cell death.
Taken together, the present study identified SLC25A48 as a mitochondrial carrier that mediates choline import and plays a critical role in mitochondrial respiratory capacity, purine nucleotide synthesis, and cell survival.
Key points SLC25A48 is required for mitochondrial choline uptake.
Mitochondrial choline uptake regulates one-carbon contribution to purine nucleotide synthesis.
Brown fat thermogenesis requires mitochondrial choline catabolism for respiratory capacity.
Cancer cells require mitochondrial choline uptake for cell survival.

Related Results

Choline and Betaine Levels in Plasma Mirror Choline Intake in Very Preterm Infants
Choline and Betaine Levels in Plasma Mirror Choline Intake in Very Preterm Infants
Choline is essential for cell membrane formation and methyl transfer reactions, impacting parenchymal and neurological development. It is therefore enriched via placental transfer,...
Resilience and vulnerabilities of tumor cells under purine shortage stress
Resilience and vulnerabilities of tumor cells under purine shortage stress
Abstract Purine metabolism is a promising therapeutic target in cancer; however how cancer cells respond to purine shortage,particularly their adaptation and vulner...
Data from Resilience and Vulnerabilities of Tumor Cells under Purine Shortage Stress
Data from Resilience and Vulnerabilities of Tumor Cells under Purine Shortage Stress
<div>AbstractPurpose:<p>Purine metabolism is a promising therapeutic target in cancer; however, how cancer cells respond to purine shortage, particularly their adaptati...
Use of overlapping DNA pools to discern genetic differences despite pooling error
Use of overlapping DNA pools to discern genetic differences despite pooling error
Abstract Genotyping pools of commercial cattle and individual seedstock animals may reveal hidden relationships between sectors enabling use of commercial data for g...
CDP-CHOLINE IMPROVES THE OUTCOME OF CARDIAC ARREST VERSUS EPINEPHRINE IN RATS
CDP-CHOLINE IMPROVES THE OUTCOME OF CARDIAC ARREST VERSUS EPINEPHRINE IN RATS
Objectives CDP-Choline is a cholinergic agent which can both stimulate the cholinergic pathway and increase blood pressure. We aimed to investigate the effects of...
Evidence and Perspectives for Choline Supplementation during Parenteral Nutrition—A Narrative Review
Evidence and Perspectives for Choline Supplementation during Parenteral Nutrition—A Narrative Review
Choline is an essential nutrient, with high requirements during fetal and postnatal growth. Tissue concentrations of total choline are tightly regulated, requiring an increase in i...
Choline in Pediatric Nutrition: Assessing Formula, Fortifiers and Supplements Across Age Groups and Clinical Indications
Choline in Pediatric Nutrition: Assessing Formula, Fortifiers and Supplements Across Age Groups and Clinical Indications
Background: Sufficient choline supply is essential for tissue functions via phosphatidylcholine and sphingomyelin within membranes and secretions like bile, lipoproteins and surfac...

Back to Top