It is demonstrated that SLC25A20 is significantly upregulated in lung adenocarcinoma (LUAD) tissues and cells, and its expression correlates with poor patient survival, and it is suggested that it may be a therapeutic target.
Abstract
Accumulating evidence has shown that the dysfunction of mitochondria, the multifunctional organelles in various cellular processes, is a pivotal event in the development of various diseases, including human cancers. The molecular alterations in tumors that promote metabolic diversity and distinct targetable dependencies remain poorly defined. The mitochondrial transporter SLC25A20, also known as carnitine-acylcarnitine translocase (CACT), is crucial for fatty acid β-oxidation (FAO) by importing acylcarnitines into the mitochondrial matrix. Here, we demonstrate that SLC25A20 is significantly upregulated in lung adenocarcinoma (LUAD) tissues and cells, and its expression correlates with poor patient survival. Gain- and loss-of-function experiments reveal that SLC25A20 promotes tumor cell proliferation, survival, migration, and invasion by enhancing FAO-associated mitochondrial bioenergetics and suppressing apoptosis. Mechanistically, SLC25A20-mediated FAO maintains mitochondrial function and supports oxidative phosphorylation (OXPHOS), thereby sustaining tumor bioenergetics and redox homeostasis. Pharmacological inhibition or genetic silencing of SLC25A20 impairs tumor growth in vivo. These findings establish SLC25A20 as a key metabolic driver in LUAD and suggest it may be a therapeutic target.
Endoplasmic reticulum (ER) stress plays an integral part during cancer progression and is utilized as an adaptive mechanism in stressful environments. During tumour formation, cancer cells experience a hostile microenvironment composed of a lack of oxygen, nutrients and lipids and an acidic pH and they undergo high m...
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Mitochondria, central hubs of cellular metabolism, play a pivotal role in tumorigenesis and the regulation of cellular metabolic processes. Cancer cells frequently undergo metabolic reprogramming, characterized by enhanced glycolysis, dysregulated oxidative phosphorylation (OXPHOS), and rewired mitochondrial biogenesis...
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BACKGROUND/OBJECTIVE
Lipid droplet (LD)-mitochondria tethering is essential for fatty acid oxidation (FAO), which sustains tumor cell survival under nutrient-deprivation conditions. However, how LD-mitochondria contact is regulated in pancreatic ductal adenocarcinoma (PDAC) is unclear.
METHODS
This study investigated...
Lu Chai, Zhaoyuan Meng, Zhi-Min Lu et al.· Cellular Signalling· 0 citations
Malignant solid tumors comprise not only cancer cells but also diverse non-cancerous stromal cells that shape the tumor microenvironment. The tricarboxylic acid (TCA) cycle has an overarching presence in providing substrates needed to drive the electron transport chain and, ultimately, ATP synthesis. However, it remain...
L. R. Koseki, Minoru Kobayashi, Mai Ito et al.· Neoplasia· 0 citations
High MCT4 expression in TAMs may be associated with metabolic reprogramming toward glycolysis, and could promote M2 polarization of TAMs, thereby contributing to HCC progression and poor clinical outcomes.
Zhiying Li, Ni Zhang, Renjie Li et al.· Cell journal· 0 citations
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