Evidence map›Paper›PMID 42260484›Full record

ArticleJournal of translational medicine2026

FAM135B suppresses glioblastoma angiogenesis via stabilizing the IKK complex and inactivating the NF-κB/IL-6 signaling pathway.

Chuangyuan Wang, Fabing Zhang, Liwei Hao, Yujie Zhang, Chenya Feng, Nuozhou Weng, Peiqian Hu, Wanmei Lin, Taoliang Chen, Tianwei Wang and 4 more

Abstract read
In one paragraph

Article in Journal of translational medicine, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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1 · What the graph read from it

What it found

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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

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3 · Its place in the literature

Who cites it

0 citing papers in PubMed.

No citing paper in PubMed yet.

4 · The record

Corrections and comments

PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.

5 · Who and what money

Authors and funding

14 authors.

Chuangyuan Wang *Neurosurgery Center, Department of Neuro-oncological Surgery, The National Key Clinical Specialty, Engineering Research Center of Diagnostic and Therapeutic Technology and Devices for Cerebrovascular Diseases, Ministry of Education, Guangdong Provincial Key Laboratory on Brain Function Repair and Regeneration, Zhujiang Hospital Institute for Brain Science and Intelligence, Zhujiang Hospital, Southern Medical University, Guangzhou, 510282, China.
Fabing Zhang *Neurosurgery Center, Department of Neuro-oncological Surgery, The National Key Clinical Specialty, Engineering Research Center of Diagnostic and Therapeutic Technology and Devices for Cerebrovascular Diseases, Ministry of Education, Guangdong Provincial Key Laboratory on Brain Function Repair and Regeneration, Zhujiang Hospital Institute for Brain Science and Intelligence, Zhujiang Hospital, Southern Medical University, Guangzhou, 510282, China.
Liwei Hao *Division of Laboratory Medicine, Zhujiang Hospital, Southern Medical University, Guangzhou, Guangdong Province, China.
Yujie ZhangDepartment of Pathology, Shunde Hospital, Southern Medical University, (The First People's Hospital of Shunde), Foshan, China.
Chenya FengDepartment of Radiology, Nanfang Hospital, Southern Medical University, Guangzhou, China.
Nuozhou WengDepartment of General Surgery, Zhujiang Hospital, Southern Medical University, Guangzhou, China.
Peiqian HuDepartment of Radiology, Zhujiang Hospital, Southern Medical University, Guangzhou, China.
Wanmei LinDepartment of Pathology, School of Basic Medical Sciences, Southern Medical University, Guangzhou, China.
Taoliang ChenNeurosurgery Center, Department of Neuro-oncological Surgery, The National Key Clinical Specialty, Engineering Research Center of Diagnostic and Therapeutic Technology and Devices for Cerebrovascular Diseases, Ministry of Education, Guangdong Provincial Key Laboratory on Brain Function Repair and Regeneration, Zhujiang Hospital Institute for Brain Science and Intelligence, Zhujiang Hospital, Southern Medical University, Guangzhou, 510282, China.
Tianwei WangNeurosurgery Center, Department of Neuro-oncological Surgery, The National Key Clinical Specialty, Engineering Research Center of Diagnostic and Therapeutic Technology and Devices for Cerebrovascular Diseases, Ministry of Education, Guangdong Provincial Key Laboratory on Brain Function Repair and Regeneration, Zhujiang Hospital Institute for Brain Science and Intelligence, Zhujiang Hospital, Southern Medical University, Guangzhou, 510282, China.
Yinian ZhangNeurosurgery Center, Department of Neuro-oncological Surgery, The National Key Clinical Specialty, Engineering Research Center of Diagnostic and Therapeutic Technology and Devices for Cerebrovascular Diseases, Ministry of Education, Guangdong Provincial Key Laboratory on Brain Function Repair and Regeneration, Zhujiang Hospital Institute for Brain Science and Intelligence, Zhujiang Hospital, Southern Medical University, Guangzhou, 510282, China.
Yiquan KeNeurosurgery Center, Department of Neuro-oncological Surgery, The National Key Clinical Specialty, Engineering Research Center of Diagnostic and Therapeutic Technology and Devices for Cerebrovascular Diseases, Ministry of Education, Guangdong Provincial Key Laboratory on Brain Function Repair and Regeneration, Zhujiang Hospital Institute for Brain Science and Intelligence, Zhujiang Hospital, Southern Medical University, Guangzhou, 510282, China. kyquan@smu.edu.cn.ORCID 0000-0002-7356-8559
Liang ZhaoDepartment of Pathology, Shunde Hospital, Southern Medical University, (The First People's Hospital of Shunde), Foshan, China. liangsmu@foxmail.com.
Zetao ChenNeurosurgery Center, Department of Neuro-oncological Surgery, The National Key Clinical Specialty, Engineering Research Center of Diagnostic and Therapeutic Technology and Devices for Cerebrovascular Diseases, Ministry of Education, Guangdong Provincial Key Laboratory on Brain Function Repair and Regeneration, Zhujiang Hospital Institute for Brain Science and Intelligence, Zhujiang Hospital, Southern Medical University, Guangzhou, 510282, China. dr_chenzt@163.com.ORCID 0000-0002-9802-8065

Funding

China Postdoctoral Science Foundation 2021M701610National Natural Science Foundation of China 82072762National Natural Science Foundation of China 82203605
6 · The paper itself

Abstract

backgroundGlioblastoma multiforme (GBM), the most aggressive primary central nervous system malignancy in adults, is hallmarked by robust angiogenesis and pronounced heterogeneity, with the mesenchymal subtype linked to the poorest prognosis. The median survival of GBM patients is merely ~ 14 months, and approved anti-angiogenic agents like bevacizumab only yield short-term benefits without improving overall survival, highlighting the urgent need for novel anti-angiogenic targets. FAM135B, a brain-enriched protein-coding gene, is implicated in tumorigenesis and chemoresistance in other cancers, but its role and underlying mechanism in GBM angiogenesis remain unelucidated.

methodsBioinformatic analysis: Gene Set Variation Analysis (GSVA), single-cell and spatial transcriptomic analyses were performed on GBM datasets from TCGA, CGGA and other databases to screen angiogenesis-related genes and explore the correlation between FAM135B expression and clinical prognosis. In vitro experiments: FAM135B-overexpressing/knockdown GBM cell models were constructed. Tube formation, Transwell migration and colony formation assays were used to detect the angiogenic potential of human umbilical vein endothelial cells (HUVECs) treated with GBM cell-conditioned medium. Co-immunoprecipitation, mass spectrometry, Western blot, RT-qPCR and ELISA were applied to verify protein-protein interactions and detect the expression of cytokines and signaling pathway molecules. Dual-luciferase reporter assays confirmed the transcriptional regulation of FAM135B. In vivo experiments: Nude mouse orthotopic and subcutaneous GBM xenograft models were established to assess the effect of FAM135B on tumor growth, angiogenesis and mouse survival. Rescue experiments with NF-κB inhibitor PDTC and recombinant IL-6 were conducted to validate the key role of the NF-κB/IL-6 axis. Clinical sample validation: Immunohistochemistry and magnetic resonance imaging were used to analyze the correlation between FAM135B expression, microvessel density and prognosis in 72 GBM clinical samples. STATISTICAL ANALYSIS: SPSS 19.0 was used for data analysis with Kaplan-Meier, t-tests and Log-rank tests; the significance level was set at P < 0.05.

resultsFAM135B is a novel key regulator of GBM angiogenesis, with significantly downregulated expression in GBM tissues (especially the mesenchymal subtype). Low FAM135B expression correlates with enhanced endothelial cell communication, high angiogenic potential and poor progression-free/overall survival in GBM patients. FAM135B inhibits GBM angiogenesis in vitro and in vivo: its overexpression suppresses HUVEC tube formation, migration and colony formation, while knockdown exerts the opposite effect. In orthotopic xenografts, FAM135B overexpression slows tumor growth, prolongs mouse survival, and reduces intratumoral microvessel formation and M2 macrophage infiltration. FAM135B downregulates IL-6 expression to inhibit the JAK/STAT signaling pathway: its expression is negatively correlated with pro-angiogenic cytokines (notably IL-6) in GBM. FAM135B overexpression reduces IL-6 transcription and secretion in GBM cells, thereby inhibiting JAK/STAT phosphorylation in HUVECs; high FAM135B expression in GBM tissues is associated with low IL-6 and CD31 levels. FAM135B binds to the IKK complex (IKKα/IKKβ) to stabilize it, inhibit IKKβ activation and P65 phosphorylation, and block the canonical NF-κB signaling pathway, which is the upstream mechanism of IL-6 downregulation. Co-overexpression of IKBKB partially reverses the anti-angiogenic effect of FAM135B, and PDTC rescues NF-κB activation induced by FAM135B knockdown. HNF4A is the upstream positive transcription factor of FAM135B: it directly binds to two key sites in the FAM135B promoter to promote its transcription and protein expression. HNF4A expression is positively correlated with FAM135B and favorable GBM prognosis; its overexpression inhibits GBM angiogenesis, and this effect is abrogated by FAM135B knockdown.

conclusionFAM135B acts as a critical negative regulator of GBM angiogenesis, whose low expression contributes to high tumor angiogenic potential and poor patient prognosis. Mechanistically, HNF4A transcriptionally upregulates FAM135B, which then binds to and stabilizes the IKK complex, inactivating the NF-κB signaling pathway and downregulating IL-6 expression, ultimately inhibiting the JAK/STAT-mediated angiogenic process. FAM135B also remodels the GBM tumor microenvironment by reducing M2 macrophage infiltration. Targeting the HNF4A/FAM135B/NF-κB/IL-6 signaling axis provides a novel and promising therapeutic strategy for GBM anti-angiogenic therapy.

Indexed as

Brain NeoplasmsGlioblastomaI-kappa B KinaseInterleukin-6Neovascularization, PathologicNF-kappa BSignal TransductionAnimalsCell Line, TumorCell MovementGene Expression Regulation, NeoplasticHumansHuman Umbilical Vein Endothelial CellsMiceMice, NudePrognosisI-kappa B KinaseInterleukin-6NF-kappa BAngiogenesisFAM135BGlioblastomaIL-6NFκB

Identifiers

PMID42260484
PMCPMC13471341

What Socratic holds

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Registered trials

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.