1.Leucine-rich repeats containing 4 protein (LRRC4) in memory, psychoneurosis, and glioblastoma.
Chinese Medical Journal 2023;136(1):4-12
Leucine-rich repeats containing 4 ( LRRC4 , also named netrin-G ligand 2 [NGL-2]) is a member of the NetrinGs ligands (NGLs) family. As a gene with relatively high and specific expression in brain, it is a member of the leucine-rich repeat superfamily and has been proven to be a suppressor gene for gliomas, thus being involved in gliomagenesis. LRRC4 is the core of microRNA-dependent multi-phase regulatory loops that inhibit the proliferation and invasion of glioblastoma (GB) cells, including LRRC4/NGL2-activator protein 2 (AP2)-microRNA (miR) 182-LRRC4 and LRRC4-miR185-DNA methyltransferase 1 (DNMT1)-LRRC4/specific protein 1 (SP1)-DNMT1-LRRC4. In this review, we demonstrated LRRC4 as a new member of the partitioning-defective protein (PAR) polarity complex that promotes axon differentiation, mediates the formation and plasticity of synapses, and assists information input to the hippocampus and storage of memory. As an important synapse regulator, aberrant expression of LRRC4 has been detected in autism, spinal injury and GBs. LRRC4 is a candidate susceptibility gene for autism and a neuro-protective factor in spinal nerve damage. In GBs, LRRC4 is a novel inhibitor of autophagy, and an inhibitor of protein-protein interactions involving in temozolomide resistance, tumor immune microenvironment, and formation of circular RNA.
Humans
;
Cell Line, Tumor
;
Glioblastoma/metabolism*
;
Leucine
;
Leucine-Rich Repeat Proteins/genetics*
;
MicroRNAs
;
Nerve Tissue Proteins/genetics*
;
Tumor Microenvironment
2.Effect of Morus alba extract sanggenon C on growth and proliferation of glioblastoma cells.
Wen-Han TANG ; Zhi-Ning ZHANG ; Hua-Rui CAI ; Wei SUN ; He YANG ; Er-Hu ZHAO ; Hong-Juan CUI
China Journal of Chinese Materia Medica 2023;48(1):211-219
Glioblastoma is the most common primary cranial malignancy, and chemotherapy remains an important tool for its treatment. Sanggenon C(San C), a class of natural flavonoids extracted from Morus plants, is a potential antitumor herbal monomer. In this study, the effect of San C on the growth and proliferation of glioblastoma cells was examined by methyl thiazolyl tetrazolium(MTT) assay and 5-bromodeoxyuridinc(BrdU) labeling assay. The effect of San C on the tumor cell cycle was examined by flow cytometry, and the effect of San C on clone formation and self-renewal ability of tumor cells was examined by soft agar assay. Western blot and bioinformatics analysis were used to investigate the mechanism of the antitumor activity of San C. In the presence of San C, the MTT assay showed that San C significantly inhibited the growth and proliferation of tumor cells in a dose and time-dependent manner. BrdU labeling assay showed that San C significantly attenuated the DNA replication activity in the nucleus of tumor cells. Flow cytometry confirmed that San C blocked the cell cycle of tumor cells in G_0/G_1 phase. The soft agar clone formation assay revealed that San C significantly attenuated the clone formation and self-renewal ability of tumor cells. The gene set enrichment analysis(GSEA) implied that San C inhibited the tumor cell division cycle by affecting the myelocytomatosis viral oncogene(MYC) signaling pathway. Western blot assay revealed that San C inhibited the expression of cyclin through the regulation of the MYC signaling pathway by lysine demethylase 4B(KDM4B), which ultimately inhibited the growth and proliferation of glioblastoma cells and self-renewal. In conclusion, San C exhibits the potential antitumor activity by targeting the KDM4B-MYC axis to inhibit glioblastoma cell growth, proliferation, and self-renewal.
Humans
;
Glioblastoma/genetics*
;
Bromodeoxyuridine/therapeutic use*
;
Signal Transduction
;
Proto-Oncogene Proteins c-myc/metabolism*
;
Agar
;
Cell Proliferation
;
Cell Line, Tumor
;
Apoptosis
;
Jumonji Domain-Containing Histone Demethylases/metabolism*
3.FOXO1-miR-506 axis promotes chemosensitivity to temozolomide and suppresses invasiveness in glioblastoma through a feedback loop of FOXO1/miR-506/ETS1/FOXO1.
Chao CHEN ; Yu'e LIU ; Hongxiang WANG ; Xu ZHANG ; Yufeng SHI ; Juxiang CHEN
Journal of Zhejiang University. Science. B 2023;24(8):698-710
To explore the role of forkhead box protein O1 (FOXO1) in the progression of glioblastoma multiforme (GBM) and related drug resistance, we deciphered the roles of FOXO1 and miR-506 in proliferation, apoptosis, migration, invasion, autophagy, and temozolomide (TMZ) sensitivity in the U251 cell line using in vitro and in vivo experiments. Cell viability was tested by a cell counting kit-8 (CCK8) kit; migration and invasion were checked by the scratching assay; apoptosis was evaluated by terminal deoxynucleotidyl transferase dUTP nick-end labeling (TUNEL) staining and flow cytometry. The construction of plasmids and dual-luciferase reporter experiment were carried out to find the interaction site between FOXO1 and miR-506. Immunohistochemistry was done to check the protein level in tumors after the in vivo experiment. We found that the FOXO1-miR-506 axis suppresses GBM cell invasion and migration and promotes GBM chemosensitivity to TMZ, which was mediated by autophagy. FOXO1 upregulates miR-506 by binding to its promoter to enhance transcriptional activation. MiR-506 could downregulate E26 transformation-specific 1 (ETS1) expression by targeting its 3'-untranslated region (UTR). Interestingly, ETS1 promoted FOXO1 translocation from the nucleus to the cytosol and further suppressed the FOXO1-miR-506 axis in GBM cells. Consistently, both miR-506 inhibition and ETS1 overexpression could rescue FOXO1 overactivation-mediated TMZ chemosensitivity in mouse models. Our study demonstrated a negative feedback loop of FOXO1/miR-506/ETS1/FOXO1 in GBM in regulating invasiveness and chemosensitivity. Thus, the above axis might be a promising therapeutic target for GBM.
Animals
;
Mice
;
Brain Neoplasms/genetics*
;
Cell Line, Tumor
;
Cell Proliferation
;
Drug Resistance, Neoplasm
;
Feedback
;
Gene Expression Regulation, Neoplastic
;
Glioblastoma/metabolism*
;
MicroRNAs/metabolism*
;
Temozolomide/therapeutic use*
;
Humans
;
Forkhead Box Protein O1/metabolism*
4.The action mechanism of glioblastoma cell-derived exosome: a review.
Na LI ; Li LUO ; Yating YANG ; Zhaomei LIU ; Xiaoyan QIU ; Mingyu WANG ; Wei WANG ; Xiong XIAO
Chinese Journal of Biotechnology 2023;39(4):1477-1501
Patients with glioblastoma (GBM) generally have a bad prognosis and short overall survival after being treated with surgery, chemotherapy or radiotherapy due to the histological heterogeneity, strong invasive ability and rapid postoperative recurrence of GBM. The components of GBM cell-derived exosome (GBM-exo) can regulate the proliferation and migration of GBM cell via cytokines, miRNAs, DNA molecules and proteins, promote the angiogenesis via angiogenic proteins and non-coding RNAs, mediate tumor immune evasion by targeting immune checkpoints with regulatory factors, proteins and drugs, and reduce drug resistance of GBM cells through non-coding RNAs. GBM-exo is expected to be an important target for the personalized treatment of GBM and a marker for diagnosis and prognosis of this kind of disease. This review summarizes the preparation methods, biological characteristics, functions and molecular mechanisms of GBM-exo on cell proliferation, angiogenesis, immune evasion and drug resistance of GBM to facilitate developing new strategies for the diagnosis and treatment of GBM.
Humans
;
Glioblastoma/genetics*
;
Exosomes/metabolism*
;
MicroRNAs/metabolism*
;
Prognosis
;
Cell Proliferation
;
Brain Neoplasms/genetics*
;
Cell Line, Tumor
5.Single-cell transcriptome analysis of multigrade glioma heterogeneity and immune microenvironment revealed potential prognostic biomarkers.
Jie LIU ; Kailong XU ; Lixin MA ; Yang WANG
Chinese Journal of Biotechnology 2022;38(10):3790-3808
Glioma, the most common intrinsic tumor of the central nervous system, is characterized by its high incidence and poor prognosis. The aim of this study was to identify differentially expressed genes (DEGs) between glioblastoma multiforme (GBM) and low-grade glioma (LGG) to explore prognostic factors of different grades of gliomas. Single-cell transcriptome sequencing data of gliomas were collected from the NCBI Gene Expression Omnibus (GEO), which included a total of 29 097 cell samples from three datasets. For the analysis of human gliomas of different grades, 21 071 cells were obtained by filtering, and 70 genes were screened from differentially expressed genes by gene ontology (GO) analysis, Kyoto encyclopedia of genes and genomes (KEGG) pathway analysis, from which the gene DLL3 was focused by reviewing the literature. The TCGA-based gene expression profiling interactive analysis (GEPIA) database was used to explore the survival curves of genes in LGG and GBM, and the gene expression profiling interactive analysis and tumor immune estimation resource (TIMER) database was used to study the expression of key genes in gliomas of different grades, predicting biomarkers that were closely related to immunotherapy. The cBioPortal database was used to explore the relationship between DLL3 expression and 25 immune checkpoints. Gene set enrichment analysis (GSEA) further identified pathways associated with central genes. Finally, the efficacy of biomarkers in prognosis and prediction was validated in the Chinese glioma genome atlas (CGGA). These results demonstrated that prognostic genes are associated with tumor proliferation and progression. Analysis of biological information and survival suggested that these genes might serve as a promising prognostic biomarker and as new targets for selecting therapeutic strategies.
Humans
;
Biomarkers
;
Brain Neoplasms/pathology*
;
Gene Expression Profiling/methods*
;
Glioblastoma/pathology*
;
Glioma/pathology*
;
Intracellular Signaling Peptides and Proteins
;
Membrane Proteins/genetics*
;
Prognosis
;
Transcriptome
;
Tumor Microenvironment/genetics*
;
Biomarkers, Tumor
6.Intratumor heterogeneity, microenvironment, and mechanisms of drug resistance in glioma recurrence and evolution.
Zhaoshi BAO ; Yongzhi WANG ; Qiangwei WANG ; Shengyu FANG ; Xia SHAN ; Jiguang WANG ; Tao JIANG
Frontiers of Medicine 2021;15(4):551-561
Glioma is the most common lethal tumor of the human brain. The median survival of patients with primary World Health Organization grade IV glioma is only 14.6 months. The World Health Organization classification of tumors of the central nervous system categorized gliomas into lower-grade gliomas and glioblastomas. Unlike primary glioblastoma that usually develop de novo in the elderly, secondary glioblastoma enriched with an isocitrate dehydrogenase mutant typically progresses from lower-grade glioma within 5-10 years from the time of diagnosis. Based on various evolutional trajectories brought on by clonal and subclonal alterations, the evolution patterns of glioma vary according to different theories. Some important features distinguish the normal brain from other tissues, e.g., the composition of the microenvironment around the tumor cells, the presence of the blood-brain barrier, and others. The underlying mechanism of glioma recurrence and evolution patterns of glioma are different from those of other types of cancer. Several studies correlated tumor recurrence with tumor heterogeneity and the immune microenvironment. However, the detailed reasons for the progression and recurrence of glioma remain controversial. In this review, we introduce the different mechanisms involved in glioma progression, including tumor heterogeneity, the tumor microenvironment and drug resistance, and their pre-clinical implements in clinical trials. This review aimed to provide new insights into further clinical strategies for the treatment of patients with recurrent and secondary glioma.
Aged
;
Brain Neoplasms/genetics*
;
Drug Resistance
;
Glioblastoma
;
Glioma/genetics*
;
Humans
;
Mutation
;
Neoplasm Recurrence, Local/drug therapy*
;
Tumor Microenvironment
7.Overexpression of lncRNA MEG3 inhibits proliferation and invasion of glioblastoma U251 cells
Qizhi LUO ; Fan ZHANG ; Wei LI ; Fang WANG ; Lixiang WU ; Baisheng HUANG
Journal of Southern Medical University 2021;41(1):141-145
OBJECTIVE:
To investigate the effects of overexpression of long noncoding RNA (lncRNA) MEG3 on the proliferation and invasion of glioblastoma U251 cells by suppressing the expression of hypoxia inducible factor 1
METHODS:
The expression of lncRNA MEG3 and HIF1
RESULTS:
The expression of MEG3 was significantly lower and HIF1
CONCLUSIONS
MEG3 overexpression inhibits the proliferation and invasion of U251 cells through suppressing the expression of HIF1
Apoptosis
;
Cell Line, Tumor
;
Cell Movement/genetics*
;
Cell Proliferation/genetics*
;
Gene Expression Regulation, Neoplastic
;
Glioblastoma/genetics*
;
Humans
;
MicroRNAs
;
RNA, Long Noncoding/genetics*
8.Effects of tetrandrine on proliferation, migration, and invasion of glioblastoma cells.
Xin-Yu LU ; Zhong-Ze WANG ; Si-Cheng WAN ; Er-Hu ZHAO ; Hong-Juan CUI
China Journal of Chinese Materia Medica 2021;46(24):6520-6529
Glioblastoma is the most common intracranial primary malignant tumor, which leads to the poor quality of life of patients and has a high recurrence rate. Chemotherapy is a vital part in the treatment of this disease. Tetrandrine(Tet) is an active ingredient extracted from the root of the Chinese medicinal plant Stephania tetrandra, which has been proved with a wide range of pharmacological effects including anti-tumor. However, there are few studies regarding the effect of Tet on glioma. In this study, MTT and BrdU assays were employed to detect the effect of Tet on the proliferation of LN229 glioblastoma cells; flow cytometry was used to analyze the cycle distribution and apoptosis; plate cloning assay and soft agar colony formation assay were performed to study the colony formation ability of LN229 cells exposed to Tet; scratch assay and Transwell assay were conducted to detect the ability of migration and invasion; Western blot was adopted to the exploration of the molecular mechanism. The MTT and BrdU assays showed that Tet inhibited the proliferation of LN229 cells in a time-and dose-dependent manner. The plate cloning assay and soft agar colony formation assay showed that Tet weakened the colony formation of LN229 cells in vitro; cytometry assay showed that Tet blocked cells in the G_1 phase and promoted cell apoptosis; scratch and Transwell assays proved that Tet inhibited the migration and invasion of LN229 cells; Western blot results showed that Tet down-regulated the expression levels of CDK2, CDK6, cyclin D1, cyclin E1, snail, slug, vimentin, and N-cadherin, while up-regulated the level of E-cadherin. The results indicate that Tet has a certain inhibitory effect on the proliferation, migration, and invasion of LN229 glioblastoma cells, and such effect may be related to the participation of Tet in the regulation of c-Myc/p27 axis and snail signaling pathway.
Apoptosis
;
Benzylisoquinolines
;
Cell Line, Tumor
;
Cell Movement
;
Cell Proliferation
;
Glioblastoma/genetics*
;
Humans
;
Quality of Life
9.Astrocyte elevated gene-1 serves as a target of miR542 to promote glioblastoma proliferation and invasion.
Chong LI ; Hai-Long LIU ; Yu-Mei ZHOU ; Yan-Chun SHI ; Zhi-Bin ZHANG ; Ling CHEN ; Shi-Yu FENG
Chinese Medical Journal 2020;133(20):2437-2443
BACKGROUND:
Epithelial to mesenchymal transition (EMT) is strongly linked with tumor invasion and metastasis, which performs a vital role in carcinogenesis and cancer progression. Emerging evidence suggests that microRNAs (miRNAs) expression are closely associated to EMT by regulating targeted genes. MiR542 has been found to be involved in the EMT program and bound up with various cancers. However, the functions of miR542 and its underlying mechanism in glioblastoma multiforme (GBM) remain largely unknown. In the current study, we investigated the effect of astrocyte elevated gene-1 (AEG-1) on U251 cells aggressiveness, proliferation, apoptosis, and cell cycle.
METHODS:
The screening of targeted miRNAs was performed, as well as the functional roles and mechanisms of miR542 were explored.
RESULTS:
MiR542 was selected as the target because of the most significantly differential expression and this high level of expression negatively correlated with cell migration and proliferation, which suggested that miR542 could be a novel tumor suppressor. Moreover, we confirmed that AEG-1 was a direct targeted gene of miR542 by luciferase activity assay, reverse transcription-polymerase chain reaction, and immunoblotting analysis. Furthermore, miR542 suppressed the expression of AEG-1, which upgraded the level of E-cadherin and degraded Vimentin expression contributing to retraining EMT.
CONCLUSION
The in vitro findings demonstrated that miR542 inhibited the migration and proliferation of U251 cells and suppressed EMT through targeting AEG-1, indicating that miR542 may be a potential anti-cancer target for GBM.
Astrocytes
;
Cell Line, Tumor
;
Cell Movement/genetics*
;
Cell Proliferation/genetics*
;
Epithelial-Mesenchymal Transition/genetics*
;
Gene Expression Regulation, Neoplastic
;
Glioblastoma/genetics*
;
Humans
;
MicroRNAs/genetics*
;
Neoplasm Invasiveness/genetics*
10.Reclassification of Mixed Oligoastrocytic Tumors Using a Genetically Integrated Diagnostic Approach
Seong Ik KIM ; Yujin LEE ; Jae Kyung WON ; Chul Kee PARK ; Seung Hong CHOI ; Sung Hye PARK
Journal of Pathology and Translational Medicine 2018;52(1):28-36
BACKGROUND: Mixed gliomas, such as oligoastrocytomas (OA), anaplastic oligoastrocytomas, and glioblastomas (GBMs) with an oligodendroglial component (GBMO) are defined as tumors composed of a mixture of two distinct neoplastic cell types, astrocytic and oligodendroglial. Recently, mutations ATRX and TP53, and codeletion of 1p/19q are shown to be genetic hallmarks of astrocytic and oligodendroglial tumors, respectively. Subsequent molecular analyses of mixed gliomas preferred the reclassification to either oligodendroglioma or astrocytoma. This study was designed to apply genetically integrated diagnostic criteria to mixed gliomas and determine usefulness and prognostic value of new classification in Korean patients. METHODS: Fifty-eight cases of mixed OAs and GBMOs were retrieved from the pathology archives of Seoul National University Hospital from 2004 to 2015. Reclassification was performed according to genetic and immunohistochemical properties. Clinicopathological characteristics of each subgroup were evaluated. Overall survival was assessed and compared between subgroups. RESULTS: We could reclassify all mixed OAs and GBMOs into either astrocytic or oligodendroglial tumors. Notably, 29 GBMOs could be reclassified into 11 cases of GBM, IDH-mutant, 16 cases of GBM, IDH-wildtype, and two cases of anaplastic oligodendroglioma, IDH mutant. Overall survival was significantly different among these new groups (p<.001). Overall survival and progression-free survival were statistically better in gliomas with IDH mutation, ATRX mutation, no microscopic necrosis, and young patient age (cut off, 45 years old). CONCLUSIONS: Our results strongly suggest that a genetically integrated diagnosis of glioma better reflects prognosis than former morphology-based methods.
Astrocytoma
;
Classification
;
Diagnosis
;
Disease-Free Survival
;
Genetics
;
Glioblastoma
;
Glioma
;
Humans
;
Necrosis
;
Oligodendroglioma
;
Pathology
;
Prognosis
;
Seoul

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