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Background: Glioblastoma multiforme (GBM) is a highly aggressive brain tumor, characterized by its poor prognosis. Glycolipid metabolism is strongly associated with GBM development and malignant behavior. However, the precise functions of snoRNAs and ADARs in glycolipid metabolism within GBM cells remain elusive. The objective of the present study is to delve into the underlying mechanisms through which snoRNAs and ADARs exert regulatory effects on glycolipid metabolism in GBM cells.
Methods: RNA immunoprecipitation and RNA pull-down experiments were conducted to verify the homodimerization of ADAR2 by SNORD113-3, and Sanger sequencing and Western blot experiments were used to detect the A-to-I RNA editing of PHKA2 mRNA by ADAR2. Furthermore, the phosphorylation of EBF1 was measured by in vitro kinase assay. Finally, in vivo studies using nude mice confirmed that SNORD113-3 and ADAR2 overexpression, along with PHKA2 knockdown, could suppress the formation of subcutaneous xenograft tumors and improve the outcome of tumor-bearing nude mice.
Results: We found that PHKA2 in GBM significantly promoted glycolipid metabolism, while SNORD113-3, ADAR2, and EBF1 significantly inhibited glycolipid metabolism. SNORD113-3 promotes ADAR2 protein expression by promoting ADAR2 homodimer formation. ADAR2 mediates the A-to-I RNA editing of PHKA2 mRNA. Mass spectrometry analysis and in vitro kinase testing revealed that PHKA2 phosphorylates EBF1 on Y256, reducing the stability and expression of EBF1. Furthermore, direct binding of EBF1 to PKM2 and ACLY promoters was observed, suggesting the inhibition of their expression by EBF1. These findings suggest the existence of a SNORD113-3/ADAR2/PHKA2/EBF1 pathway that collectively regulates the metabolism of glycolipid and the growth of GBM cells. Finally, in vivo studies using nude mice confirmed that knockdown of PHKA2, along with overexpression of SNORD113-3 and ADAR2, could obviously suppress GBM subcutaneous xenograft tumor formation and improve the outcome of those tumor-bearing nude mice.
Conclusions: Herein, we clarified the underlying mechanism involving the SNORD113-3/ADAR2/PHKA2/EBF1 pathway in the regulation of GBM cell growth and glycolipid metabolism. Our results provide a framework for the development of innovative therapeutic interventions to improve the prognosis of patients with GBM.
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http://dx.doi.org/10.1186/s11658-024-00680-9 | DOI Listing |
Sci Adv
September 2025
Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco, San Francisco, CA, USA.
Breastfeeding is essential for reducing infant morbidity and mortality, yet exclusive breastfeeding rates remain low, often because of insufficient milk production. The molecular causes of low milk production are not well understood. Fresh milk samples from 30 lactating individuals, classified by milk production levels across postpartum stages, were analyzed using genomic and microbiome techniques.
View Article and Find Full Text PDFJ Agric Food Chem
September 2025
Center of Drug Safety Evaluation, Heilongjiang University of Chinese Medicine, Harbin 150040, China.
Creating effective treatments for type 2 diabetes mellitus (T2DM) remains a critical global health challenge. This study investigates the antidiabetic mechanisms of subsp. B-53 ( B-53) in T2DM mice.
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View Article and Find Full Text PDFFood Res Int
November 2025
School of Preclinical Medicine, Chengdu University, Chengdu, Sichuan 610106, China. Electronic address:
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View Article and Find Full Text PDFInt J Biol Macromol
September 2025
The Affiliated Hospital of Xuzhou Medical University, Xuzhou, 220005, China. Electronic address:
Patients with diabetics usually exhibit disordered glucose and lipid metabolism, as well as disrupted intestinal microecology. Dietary adjustment is essential for controlling diabetes. This study evaluated the ameliorative effects of psyllium-derived medium-molecular-weight arabinoxylan (MMW-AX) on glycolipid biochemical indicators, pathological symptoms, and intestinal microbial diversity in mice with Type 2 diabetes mellitus (T2DM).
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