1.Effects of <i>Citrusi> on oxidative stress and lipid metabolism modulation: its potential for improving female reproductive health.
Journal of Zhejiang University. Science. B 2025;26(8):763-777
<i>Citrusi>, which has been consumed internationally for a long time, is widely used as a health food. <i>Citrusi> and its active components exert significant effects on oxidative stress and lipid metabolism, which are closely associated with female reproductive health. Studies suggest that citrus-derived compounds may alleviate oxidative stress by activating signaling pathways such as nuclear factor erythroid 2-related factor 2 (Nrf2) and Sirtuin 1 (SIRT1), and improve lipid metabolism through the activation of pathways such as peroxisome proliferator-activated receptor α (PPARα). This review focuses on the effects of <i>Citrusi> on oxidative stress and lipid metabolism, aiming to provide new insights for promoting female reproductive health; however, further work is needed to elucidate the mechanisms involved and validate the therapeutic potential of <i>Citrusi>'s bioactive components in clinical settings.
Citrus/chemistry*
;
Oxidative Stress/drug effects*
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Female
;
Humans
;
Lipid Metabolism/drug effects*
;
Reproductive Health
;
Animals
;
Sirtuin 1/metabolism*
;
NF-E2-Related Factor 2/metabolism*
;
Signal Transduction/drug effects*
;
PPAR alpha/metabolism*
2.<i>Tuihuangi> Mixture improves α‑naphthylisothiocyanate-induced cholestasis in rats by inhibiting NLRP3 inflammasomes <i>viai> regulating farnesoid X receptor.
Zhengwang ZHU ; Linlin WANG ; Jinghan ZHAO ; Ruixue MA ; Yuchun YU ; Qingchun CAI ; Bing WANG ; Pingsheng ZHU ; Mingsan MIAO
Journal of Southern Medical University 2025;45(4):718-724
OBJECTIVES:
To study the therapeutic mechanism of <i>Tuihuangi> Mixture against cholestasis.
METHODS:
Forty-eight Wistar rats were randomized equally into blank group, model group, ursodeoxycholic acid group and <i>Tuihuangi> Mixture group. Except for those in the blank group, all the rats were given α‑naphthylisothiocyanate (ANIT) to establish rat models of cholestasis, followed by treatments with indicated drugs or distilled water. Serum levels of ALT, AST, ALP, γ-GT, TBA and TBIL of the rats were determined, and hepatic expressions IL-1β, IL-18, FXR, NLRP3, ASC, Caspase-1 and GSDMD were detected using q-PCR, ELISA or Western blotting. Histopathological changes of the liver tissues were observed using HE staining.
RESULTS:
The rat models of cholestasis had significantly increased serum levels of ALT, AST, ALP, γ-GT, TBA and TBIL with increased mRNA and protein expressions of IL-1β and IL-18, decreased protein and mRNA expressions of FXR, and increased protein expressions of NLRP3 and Caspase-1 and mRNA expressions of NLRP3, ASC, Caspase-1 and GSDMD in the liver tissue, showing also irregular arrangement of liver cells, proliferation of bile duct epithelial cells and inflammatory cells infiltration. Treatment of the rat models with <i>Tuihuangi> Mixture significantly decreased serum levels of ALT, AST, ALP, γ-GT, TBA and TBIL, lowered IL-1β and IL-18 and increased FXR protein and mRNA expressions, and reduced NLRP3, ASC, Caspase-1 and GSDMD proteins and NLRP3, ASC and Caspase-1 mRNA expressions in the liver tissue. <i>Tuihuangi> Mixture also significantly alleviated hepatocyte injury, bile duct epithelial cell proliferation and inflammatory cell infiltration in the liver of the rat models.
CONCLUSIONS
<i>Tuihuangi> Mixture can effectively improve cholestasis in rats possibly by inhibiting NLRP3 inflammatosome-mediated pyroptosis via regulating FXR.
Animals
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NLR Family, Pyrin Domain-Containing 3 Protein
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Rats
;
Receptors, Cytoplasmic and Nuclear/metabolism*
;
Cholestasis/drug therapy*
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Rats, Wistar
;
Inflammasomes/metabolism*
;
1-Naphthylisothiocyanate
;
Drugs, Chinese Herbal/therapeutic use*
;
Male
;
Interleukin-18/metabolism*
;
Caspase 1/metabolism*
;
Interleukin-1beta/metabolism*
;
Liver/metabolism*
3.Curcumin inhibits lipid metabolism in non-small cell lung cancer by downregulating the HIF-1α pathway.
Dandan LI ; Jiaxin CHU ; Yan YAN ; Wenjun XU ; Xingchun ZHU ; Yun SUN ; Haofeng DING ; Li REN ; Bo ZHU
Journal of Southern Medical University 2025;45(5):1039-1046
OBJECTIVES:
To investigate the effect of curcumin on lipid metabolism in non-small cell lung cancer (NSCLC) and its molecular mechanism.
METHODS:
The inhibitory effect of curcumin (0-70 μmol/L) on proliferation of A549 and H1299 cells was assessed using MTT assay, and 20 and 40 μmol/L curcumin was used in the subsequent experiments. The effect of curcumin on lipid metabolism was evaluated using cellular uptake assay, wound healing assay, triglyceride (TG)/free fatty acid (NEFA) measurements, and Oil Red O staining. Western blotting was performed to detect the expressions of PGC-1α, PPAR-α, and HIF-1α in curcumin-treated cells. Network pharmacology was used to predict the metabolic pathways, and the results were validated by Western blotting. In a nude mouse model bearing A549 cell xenograft, the effects of curcumin (20 mg/kg) on tumor growth and lipid metabolism were assessed by measuring tumor weight and observing the changes in intracellular lipid droplets.
RESULTS:
Curcumin concentration-dependently inhibited the proliferation of A549 and H1299 cells and significantly reduced TG and NEFA levels and intracellular lipid droplets. Western blotting revealed that curcumin significantly upregulated PGC-1α and PPAR‑α expressions in the cells. KEGG pathway enrichment analysis predicted significant involvement of the HIF-1 signaling pathway in curcumin-treated NSCLC, suggesting a potential interaction between HIF-1α and PPAR‑α. Western blotting confirmed that curcumin downregulated the expression of HIF-1α. In the tumor-bearing mice, curcumin treatment caused significant reduction of the tumor weight and the number of lipid droplets in the tumor cells.
CONCLUSIONS
Curcumin inhibits NSCLC cell proliferation and lipid metabolism by downregulating the HIF-1α pathway.
Curcumin/pharmacology*
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Humans
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Hypoxia-Inducible Factor 1, alpha Subunit/metabolism*
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Animals
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Lipid Metabolism/drug effects*
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Carcinoma, Non-Small-Cell Lung/pathology*
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Lung Neoplasms/pathology*
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Mice, Nude
;
Down-Regulation
;
Mice
;
Cell Proliferation/drug effects*
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Cell Line, Tumor
;
Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha
;
PPAR alpha/metabolism*
;
Signal Transduction/drug effects*
;
A549 Cells
4.<i>Wendani> Decoction ameliorates metabolic phenotypes in rats with metabolic syndrome and phlegm syndrome by modulating the gut microbiota-bile acid axis.
Kaiyue HUANG ; Jingxin QI ; Wenqian LUO ; Yixuan LIN ; Meimei CHEN ; Huijuan GAN
Journal of Southern Medical University 2025;45(6):1174-1184
OBJECTIVES:
To investigate the therapeutic mechanism of <i>Wendani> Decoction for phlegm syndrome in rats with metabolic syndrome (MS).
METHODS:
Forty Wistar rats were randomly divided into normal control group (<i>ni>=8) and 3 phlegm syndrome model groups (induced by high-fat, high-sugar, and high-salt feeding and a single-dose intraperitoneal STZ injection; <i>ni>=24) treated with daily gavage of saline, <i>Wendani> Decoction (3.6 g/kg), or metformin (0.1 g/kg) for 4 weeks. General conditions and glucose and lipid metabolism parameters of the rats were monitored, and serum LPS, liver histopathology, hepatic expressions of FXR, CYP7A1 and FGFR4 and ileal expressions of FXR and FGF15 were examined. Gut microbiota structure was analyzed using 16S rDNA sequencing, and serum bile acids were quantified with UHPLC-MS/MS.
RESULTS:
The rat models of phlegm syndrome exhibited severe hepatic steatosis and necrosis, increased body weight, abdominal circumference, Lee's index, FBG, FINS, HOMA-IR, TG, TC, LDL and LPS, and decreased HDL level. The abundance of Bacteroidetes, Megamonas, and Bacteroides in gut microbiota increased while Firmicutes, Lachnospiraceae_NK4A136_group, isohyodeoxycholic acid, and glycohyodeoxycholic acid decreased significantly; hepatic FXR and FGFR4 expressions and ileal FXR and FGF15 expressions decreased while hepatic CYP7A1 expression increased significantly in the rat models. Treatment with <i>Wendani> Decoction effectively alleviated hepatic pathology, reduced body weight and abdominal circumference, improved glucose and lipid metabolic profiles and gut microbiota structure, and reversed the changes in hepatic and ileal protein expressions. Correlation analysis revealed that Firmicutes and Lachnospiraceae_NK4A136_group were positively correlated while Bacteroidetes, Megamonas and Bacteroides were negative correlated with the levels of isohyodeoxycholic acid and hyodeoxycholic acid.
CONCLUSIONS
<i>Wendani> Decoction can significantly improve metabolic profiles in rats with phlegm syndrome of MS possibly by regulating the intestinal flora-bile acid axis to modulate the intestinal flora structure and maintain bile acid homeostasis via the FXR signaling pathway.
Animals
;
Gastrointestinal Microbiome/drug effects*
;
Metabolic Syndrome/microbiology*
;
Bile Acids and Salts/metabolism*
;
Rats, Wistar
;
Drugs, Chinese Herbal/therapeutic use*
;
Rats
;
Male
;
Fibroblast Growth Factors/metabolism*
;
Liver/metabolism*
;
Cholesterol 7-alpha-Hydroxylase/metabolism*
;
Receptors, Cytoplasmic and Nuclear/metabolism*
5.Disrupting atherosclerotic plaque formation <i>viai> the "<i>qii> meridian-blood channel": mechanism of <i>Jiangzhi Huabani> Decoction for regulating hepatic reverse cholesterol transport to improve atherosclerosis.
Hongyang WANG ; Wenyi ZHU ; Xushen CHEN ; Tong ZHANG ; Zhiwei CAO ; Jin WANG ; Bo XIE ; Qiang LIU ; Xuefeng REN
Journal of Southern Medical University 2025;45(9):1818-1829
OBJECTIVES:
To explore the molecular mechanism of <i>Jiangzhi Huabani> Decoction (JZHBD) for improving atherosclerosis through the "<i>qii> meridian-blood channels" pathway.
METHODS:
ApoE-/- mouse models of atherosclerosis were established by high-fat diet feeding for 8 weeks, with C57BL/6 mice on a normal diet as the controls. Forty ApoE-/- mouse models were randomized into model group, low-, medium-, and high-dose JZHBD treatment groups, and atorvastatin treatment group (<i>ni>=8) for their respective treatments for 8 weeks. The changes in body weight and overall condition of the mice were monitored weekly. After the treatments, serum levels of TC, TG, HDL-C, LDL-C, TBA, ALT, and AST of the mice were measured, pathological changes in the liver and aortic root plaques were examined with HE staining, and lipid accumulation in the liver and aortic wall was assessed using Oil Red O staining. The core molecular mechanism was studied through transcriptomics, and the expressions of the key pathway proteins were confirmed using Western blotting and immunohistochemistry.
RESULTS:
Treatment with JZHBD significantly reduced blood lipid and total bile acid levels, improved liver function and hepatic steatosis, and decreased aortic lipid deposition and plaque area in the mouse models of atherosclerosis. Transcriptomic analysis suggested that the therapeutic mechanism of JZHBD involved reverse cholesterol transport, PPAR signaling, and the inflammatory pathways. In atherosclerotic mice, JZHBD treatment obviously up-regulated hepatic expressions of PPARγ, LXRα, ABCA1, ABCG1, and CYP7A1, down-regulated hepatic expressions of p-p65/p65, IL-6, IL1β in the liver, increased ABCG5 and ABCG8 expressions in the intestines, and decreased ICAM-1 and VCAM-1 expressions in the aortic plaques.
CONCLUSIONS
JZHBD improves atherosclerotic vascular damage and plaque formation possibly by regulating hepatic reverse cholesterol transport and inflammation <i>viai> modulating the hepatic PPARγ/LXRα/NF-κB signaling pathway.
Animals
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Drugs, Chinese Herbal/therapeutic use*
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Mice, Inbred C57BL
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Plaque, Atherosclerotic/metabolism*
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Liver/metabolism*
;
Mice
;
Atherosclerosis/metabolism*
;
Cholesterol/metabolism*
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PPAR gamma/metabolism*
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Male
;
Diet, High-Fat
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Biological Transport
6.<i>Ching Shumi> Pills alleviates non-alcoholic fatty liver disease in mice by ameliorating lipid metabolism disorders.
Biyun LUO ; Xin YI ; Yijing CAI ; Shiqing ZHANG ; Peng WANG ; Tong LI ; Ken Kin Lam YUNG ; Pingzheng ZHOU
Journal of Southern Medical University 2025;45(9):1840-1849
OBJECTIVES:
To investigate the effect of <i>Ching Shumi> Pills (CSP) for alleviating non-alcoholic fatty liver disease (NAFLD) and the underlying mechanism.
METHODS:
In a mouse model of NAFLD, the therapeutic effect of CSP was evaluated by measuring serum glucose, lipid profiles (TC, TG, LDL-C, HDL-C), and hepatic function markers. Network pharmacology was employed to identify active compounds in CSP and their targets using TCMSP, HERB, SwissTargetPrediction, GeneCards, OMIM, and DisGeNET. Protein-protein interaction (PPI) networks, Gene Ontology (GO), and KEGG pathway analyses were conducted. Molecular docking (AutoDock Vina) was used to assess the compound-target binding affinities. Quantitative real-time PCR (qRT-PCR) was used to validate the mRNA expressions of the core genes in the liver tissue of the mouse models.
RESULTS:
In the mouse model of NAFLD, treatment with CSP significantly reduced body weight gain and serum TG levels of the mice, and high-dose CSP treatment resulted in obvious reduction of ALT levels and hepatic fat accumulation. Network pharmacology analysis identified quercetin and 2-monolinolenin as the key bioactives in CSP, which target TNF, AKT1, IL6, TP53, and ALB. Docking simulations suggested strong binding between the two core compounds and their target proteins. The results of qRT-PCR showed that high-fat diet induced significant downregulation of Tp53, Cpt1, and Ppara expressions in mice, which was effectively reversed by CSP treatment.
CONCLUSIONS
CSP can improve lipid metabolism disorders in NAFLD mice through a regulatory mechanism involving multiple targets and pathways to reduce liver fat accumulation and protect liver function. The key components in CSP such as quercetin and linolenic acid monoacylglycerol may participate in the regulation of such metabolic processes as fatty acid oxidation by targeting TP53.
Animals
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Non-alcoholic Fatty Liver Disease/drug therapy*
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Mice
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Drugs, Chinese Herbal/pharmacology*
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Lipid Metabolism/drug effects*
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Molecular Docking Simulation
;
Disease Models, Animal
;
Liver/metabolism*
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Male
;
Lipid Metabolism Disorders/drug therapy*
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PPAR alpha/metabolism*
;
Mice, Inbred C57BL
;
Network Pharmacology
7.Peroxisome proliferator activated receptor-α in renal injury: mechanisms and therapeutic implications.
Jing ZHOU ; Li LUO ; Junyu ZHU ; Huaping LIANG ; Shengxiang AO
Chinese Critical Care Medicine 2025;37(7):693-697
Peroxisome proliferator activated receptor-α (PPAR-α) is significantly expressed in various tissues such as the liver, kidney, myocardium, and skeletal muscle, which plays a central role in the development of various diseases by regulating key physiological processes such as energy homeostasis, redox balance, inflammatory response, and ferroptosis. As an important metabolic and excretory organ of the body, renal dysfunction can lead to water and electrolyte imbalance, toxin accumulation, and multiple system complications. The causes of kidney injury are complex and diverse, including acute injury factors (such as ischemia/reperfusion, nephrotoxic drugs, septic shock, and immune glomerulopathy), as well as chronic progressive causes [such as metabolic disease-related nephropathy, hypertensive nephropathy (HN)], and risk factors such as alcohol abuse, obesity, and aging. This review briefly describes the structure, function, and activity regulation mechanism of PPAR-α, systematically elucidates the molecular regulatory network of PPAR-α in the pathological process of kidney injury including acute kidney injury (AKI) such as renal ischemia/reperfusion injury (IRI), drug-induced AKI, sepsis-associated acute kidney injury (SA-AKI), glomerulonephritis, chronic kidney disease (CKD) such as diabetic nephropathy (DN), HN, and other kidney injury, and summarizes the mechanisms related to PPAR-α regulation of kidney injury, including regulation of metabolism, antioxidation, anti-inflammation, anti-fibrosis, and anti-ferroptosis. This review also evaluates PPAR-α's medical value as a novel therapeutic target, and aims to provide theoretical basis for the development of kidney protection strategies based on PPAR-α targeted intervention.
Humans
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PPAR alpha/metabolism*
;
Acute Kidney Injury/therapy*
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Animals
;
Kidney/metabolism*
8.Design and synthesis of novel saponin-triazole derivatives in the regulation of adipogenesis.
Yongsheng FANG ; Zhiyun ZHU ; Chun XIE ; Dazhen XIA ; Huimin ZHAO ; Zihui WANG ; Qian LU ; Caimei ZHANG ; Wenyong XIONG ; Xiaodong YANG
Chinese Journal of Natural Medicines (English Ed.) 2025;23(8):920-931
Saponins associated with Panax notoginseng (P. notoginseng) demonstrate significant therapeutic efficacy across multiple diseases. However, certain high-yield saponins face limited clinical applications due to their reduced pharmacological efficacy. This study synthesized and evaluated 36 saponin-1,2,3-triazole derivatives of ginsenosides Rg1/Rb1 and notoginsenoside R1 for anti-adipogenesis activity in vitro. The research revealed that the ginsenosides Rg1-1,2,3-triazole derivative a17 demonstrates superior adipogenesis inhibitory effects. Structure-activity relationships (SARs) analysis indicates that incorporating an amidyl-substituted 1,2,3-triazole into the saponin side chain via Click reaction enhances anti-adipogenesis activity. Additionally, several other derivatives exhibit general adipogenesis inhibition. Compound a17 demonstrated enhanced potency compared to the parent ginsenoside Rg1. Mechanistic investigations revealed that a17 exhibits dose-dependent inhibition of adipogenesis in vitro, accompanied by decreased expression of preadipocytes. Peroxisome proliferator-activated receptor γ (PPARγ), fatty acid synthase (FAS), and fatty acid binding protein 4 (FABP4) adipogenesis regulators. These findings establish the ginsenoside Rg1-1,2,3-triazole derivative a17 as a promising adipocyte differentiation inhibitor and potential therapeutic agent for obesity and associated metabolic disorders. This research provides a foundation for developing effective therapeutic approaches for various metabolic syndromes.
Adipogenesis/drug effects*
;
Triazoles/chemical synthesis*
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Ginsenosides/chemical synthesis*
;
Saponins/chemical synthesis*
;
Animals
;
Mice
;
Structure-Activity Relationship
;
PPAR gamma/genetics*
;
3T3-L1 Cells
;
Adipocytes/metabolism*
;
Panax notoginseng/chemistry*
;
Drug Design
;
Molecular Structure
;
Humans
;
Cell Differentiation/drug effects*
;
Fatty Acid-Binding Proteins/genetics*
9.Long non-coding RNA PVT1 mediates bile acid-induced gastric intestinal metaplasia via a miR-34b-5p/HNF4α positive feedback loop.
Kexin LIN ; Nuo YAO ; Xingyu ZHAO ; Xiaodong QU ; Xuezhi LI ; Songbo LI ; Shiyue LUO ; Min CHEN ; Na WANG ; Yongquan SHI
Chinese Medical Journal 2025;138(18):2324-2335
BACKGROUND:
Bile acids (BAs) facilitate the progression of gastric intestinal metaplasia (GIM). Long non-coding RNAs (lncRNAs) dysregulation was observed along with the initiation of gastric cancer. However, how lncRNAs function in GIM remains unclear. This study aimed to explore the role and mechanism of lncRNA PVT1 in GIM, and provide a potential therapeutic target for GIM treatment.
METHODS:
We employed RNA sequencing (RNA-seq) to screen dysregulated lncRNAs in gastric epithelial cells after BA treatment. Bioinformatics analysis was conducted to reveal the regulatory mechanism. PVT1 expression was detected in 21 paired biopsies obtained under endoscopy. Overexpressed and knockdown cell models were established to explore gene functions in GIM. Molecular interactions were validated by dual-luciferase reporter assay, RNA immunoprecipitation (RIP), and chromatin immunoprecipitation (Ch-IP). The levels of relative molecular expression were detected in GIM tissues.
RESULTS:
We confirmed that lncRNA PVT1 was upregulated in BA-induced GIM model. PVT1 promoted the expression of intestinal markers such as CDX2 , KLF4 , and HNF4α . Bioinformatics analysis revealed that miR-34b-5p was a putative target of PVT1 . miR-34b-5p mimics increased CDX2 , KLF4 , and HNF4α levels. Restoration of miR-34b-5p decreased the pro-metaplastic effect of PVT1 . The interactions between PVT1 , miR-34b-5p, and the downstream target HNF4α were validated. Moreover, HNF4α could transcriptionally activated PVT1 , sustaining the GIM phenotype. Finally, the activation of the PVT1 /miR-34b-5p/ HNF4α loop was detected in GIM tissues.
CONCLUSIONS
BAs facilitate GIM partially via a PVT1/miR-34b-5p/HNF4α positive feedback loop. PVT1 may become a novel target for blocking the continuous development of GIM and preventing the initiation of gastric cancer in patients with bile reflux.
Humans
;
RNA, Long Noncoding/metabolism*
;
MicroRNAs/metabolism*
;
Hepatocyte Nuclear Factor 4/genetics*
;
Bile Acids and Salts
;
Kruppel-Like Factor 4
;
Metaplasia/metabolism*
10.Unlocking therapeutic potential: Exploring nuclear receptors in brain cancer treatment.
Sujitha JAYAPRAKASH ; Hiu Yan LAM ; Ravichandran VISHWA ; Bandari BHARATHWAJCHETTY ; Kenneth C-H YAP ; Mohammed S ALQAHTANI ; Mohamed ABBAS ; Gautam SETHI ; Alan Prem KUMAR ; Ajaikumar B KUNNUMAKKARA
Chinese Medical Journal 2025;138(21):2722-2752
Brain cancer remains among the most lethal malignancies worldwide, with approximately 321,476 new cases and 248,305 deaths reported globally in 2022. The treatment of malignant brain tumors presents substantial clinical challenges, primarily due to their resistance to standard therapeutic approaches. Despite decades of intensive research, effective treatment strategies for brain cancer are still lacking. Nuclear receptors (NRs), a superfamily of ligand-activated transcription factors, regulate a broad range of physiological processes including metabolism, immunity, stress response, reproduction, and cellular differentiation. Increasing evidence highlights the involvement of NRs in oncogenesis, with several members demonstrating altered expression and function in brain tumors. Aberrations in NR signaling, encompassing receptors such as androgen receptors, estrogen receptors, estrogen-related receptors, glucocorticoid receptors, NR subfamily 4 group A, NR subfamily 1 group D member 2, NR subfamily 5 group A member 2, NR subfamily 2 group C member 2, liver X receptors, peroxisome-proliferator activated receptors, progesterone receptors, retinoic acid receptors, NR subfamily 2 group E member 1, thyroid hormone receptors, vitamin D receptors, and retinoid X receptors, have been implicated in promoting hallmark malignant phenotypes, including enhanced survival, proliferation, invasion, migration, metastasis, and resistance to therapy. This review aims to explore the roles of key NRs in brain cancer, with an emphasis on their prognostic significance, and to evaluate the therapeutic potential of targeting these receptors using selective agonists or antagonists.
Humans
;
Brain Neoplasms/drug therapy*
;
Receptors, Cytoplasmic and Nuclear/metabolism*
;
Animals
;
Signal Transduction/physiology*

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