Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Lipid metabolism is a complex and dynamic system involving numerous enzymes at the junction of multiple metabolic pathways. Disruption of these pathways leads to systematic dyslipidemia, a hallmark of many pathological developments, such as nonalcoholic steatohepatitis and diabetes. Recent advances in computational tools can provide insights into the dysregulation of lipid biosynthesis, but limitations remain due to the complexity of lipidomic data, limited knowledge of interactions among involved enzymes, and technical challenges in standardizing across different lipid types. Here, we present a low-parameter, biologically interpretable framework named Lipid Synthesis Investigative Markov model (LipidSIM), which models and predicts the source of perturbations in lipid biosynthesis from lipidomic data. LipidSIM achieves this by accounting for the interdependency between the lipid species via the lipid biosynthesis network and generates testable hypotheses regarding changes in lipid biosynthetic reactions. This feature allows the integration of lipidomics with other omics types, such as transcriptomics, to elucidate the direct driving mechanisms of altered lipidomes due to treatments or disease progression. To demonstrate the value of LipidSIM, we first applied it to hepatic lipidomics following Keap1 knockdown and found that changes in mRNA expression of the lipid pathways were consistent with the LipidSIM-predicted fluxes. Second, we used it to study lipidomic changes following intraperitoneal injection of CCl to induce fast NAFLD/NASH development and the progression of fibrosis and hepatic cancer. Finally, to show the power of LipidSIM for classifying samples with dyslipidemia, we used a Dgat2-knockdown study dataset. Thus, we show that as it demands no a priori knowledge of enzyme kinetics, LipidSIM is a valuable and intuitive framework for extracting biological insights from complex lipidomic data.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11163374PMC
http://dx.doi.org/10.1016/j.ymben.2024.01.004DOI Listing

Publication Analysis

Top Keywords

lipid biosynthesis
16
lipidomic data
12
lipid
10
lipidsim
6
lipidsim inferring
4
inferring mechanistic
4
mechanistic lipid
4
biosynthesis
4
biosynthesis perturbations
4
perturbations lipidomics
4

Similar Publications

Post-translational modifications (PTMs) are chemical modifications that occur on specific amino acid residues after protein biosynthesis, which can affect protein function by altering protein structure, localization and activity, thus expanding protein diversity. Extensive research has demonstrated that PTMs can regulate various metabolic processes, such as glucose and lipid metabolism, as well as immune modulation in tumor cells, thereby promoting tumor initiation, progression, and metastasis. In this article, we systematically review a class of emerging PTMs whose roles in tumor metabolism and immune regulation have gradually been recognized in recent years, including six types: lactylation, palmitoylation, SUMOylation, succinylation, crotonylation, and myristoylation.

View Article and Find Full Text PDF

Introduction: Aging is accompanied by systemic metabolic changes that contribute to disease susceptibility and functional decline. Sex differences in aging have been reported in humans, yet their mechanistic basis remains poorly understood. Due to their physiological similarity to humans, rhesus macaques are a powerful translational model to investigate sex-specific metabolomic aging under controlled conditions.

View Article and Find Full Text PDF

Mechanisms of metabolic-associated fatty liver disease induced by 48-week PCB138 exposure and theabrownin intervention.

Environ Int

September 2025

State Key Laboratory of Cellular Stress Biology, School of Life Sciences, Xiang'an Hospital of Xiamen University, Faculty of Medicine and Life Sciences, Xiamen University, Xiamen, Fujian 361102, China. Electronic address:

Metabolic-associated fatty liver disease (MAFLD), linked to lipid dysregulation, poses global health risks. 2,2',3,4,4',5'-hexachlorobiphenyl (PCB138) is a persistent organic pollutant that poses potential threats to liver health due to its environmental persistence and bioaccumulation. Theabrown (TB), a natural compound extracted from black tea, exhibits lipid-lowering and antioxidant properties, but its protective effects on PCB138-induced liver injury have not been thoroughly investigated.

View Article and Find Full Text PDF

The essential cofactor coenzyme A (CoASH) and its thioester derivatives (acyl-CoAs) have pivotal roles in cellular metabolism. However, the mechanism by which different acyl-CoAs are accurately partitioned into different subcellular compartments to support site-specific reactions, and the physiological impact of such compartmentalization, remain poorly understood. Here, we report an optimized liquid chromatography-mass spectrometry-based pan-chain acyl-CoA extraction and profiling method that enables a robust detection of 33 cellular and 23 mitochondrial acyl-CoAs from cultured human cells.

View Article and Find Full Text PDF

Immune cells are increasingly recognized as nutrient sensors; however, their developmental role in regulating growth under homeostasis or dietary stress remains elusive. Here, we show that Drosophila larval macrophages, in response to excessive dietary sugar (HSD), reprogram their metabolic state by activating glycolysis, thereby enhancing TCA-cycle flux, and increasing lipogenesis-while concurrently maintaining a lipolytic state. Although this immune-metabolic configuration correlates with growth retardation under HSD, our genetic analyses reveal that enhanced lipogenesis supports growth, whereas glycolysis and lipolysis are growth-inhibitory.

View Article and Find Full Text PDF