N4BP1 specifically degrades a subset of mRNA targets through their coding sequences and functions as a negative regulator of inflammation; however, its role in cancer development remains undefined. N4BP1 exhibits the highest expression in head and neck squamous cell carcinoma among all analyzed cancer types. Unlike wild-type mice, N4bp1-/- mice did not develop visible tongue tumor masses in a 4-NQO-induced oral carcinogenesis model. Furthermore, N4bp1-/- mice (86% vs 0%) exhibited significantly prolonged survival compared to wild-type mice within 26 weeks in 4-NQO-induced oral carcinogenesis model. Single-cell profiling demonstrated that N4BP1-deficient epithelial cells arrest at an early stage of cancerous transformation, while wild-type epithelial cells efficiently progress to an advanced stage of cancer. In established human cancer cell lines, N4BP1 also plays a crucial role in proliferation, migration, colony formation, and in vivo growth. Transcriptome profiling identified CCL2 and GM-CSF as downstream targets of N4BP1 in oral cancer. Apart from its intrinsic role in cancer cells, N4BP1-deficient cancer cells induce the differentiation of macrophages into the M1 phenotype. In N4BP1-deficient tissues, CCL2 and GM-CSF were significantly increased, accompanied by the accumulation of M1 macrophages and neutrophils. Our results demonstrate that N4BP1 is an essential gene in tongue cancer development. N4BP1 not only drives cancer cell evolution but also establishes an immune-suppressive microenvironment. N4BP1 is an endoribonuclease that specifically regulates a subset of mRNA targets (including CCL2 and GM-CSF) and plays an essential role in oral cancer.
Sepsis is a life-threatening condition characterized by an exaggerated and uncontrolled immune response, leading to widespread inflammation throughout the body. This immune response can compromise the integrity of the endothelial barrier, resulting in increased vascular permeability. The degree of vascular permeability in septic shock patients correlates with disease severity and significantly influences the outcomes of resuscitation and prognosis. This review systematically examines the structural regulation of the endothelial barrier and the dynamic mechanisms of its injury in subgroups of sepsis. In response to these mechanisms, emerging therapeutic strategies focus on glycocalyx protection, signal pathway modulation, cytoskeleton stability, and immune regulation, aiming to restore endothelial barrier function through multi-target synergism. In the future, combining analysis of endothelial barrier function and the dynamic regulation mechanism provides a new perspective for the precise treatment of sepsis.
Cardiovascular disease (CVD) remains a leading cause of morbidity and mortality worldwide. The ubiquitin proteasome system (UPS) is essential for maintaining intracellular protein homeostasis, and growing evidence indicates that its dysregulation critically contributes to the onset and progression of various CVDs, particularly in the context of aging. Among these, ubiquitin-specific proteases (USPs) have emerged as promising therapeutic targets, but their precise roles and regulatory mechanisms in cardiovascular and aging pathophysiology have not been fully elucidated. This review systematically examines the molecular functions of individual USPs and their functional interactions in the cardiovascular system and aging, with an emphasis on their involvement in inflammatory responses, metabolic dysregulation, and mitochondrial homeostasis. We also discuss the translational potential and challenges of USP-directed therapeutic strategy, and offer a new perspective on the development of future cardiovascular treatments targeting this family of enzymes.
Infantile hemangioma (IH) is a benign tumor that appears in the first year of life and typically involutes within 3 to 4 years. Ulcerative IH, the most common complication, poses a significant burden to patients. Early referral of high-risk cases reduces morbidity. Current literature on risk factors and prognosis is limited. Segmental and mixed IH in urogenital, head, neck, and lip areas show higher ulceration risk. Diagnosis is typically clinical; histopathology is rarely performed. Atypical cases require positive glucose transporter-1 immunohistochemistry. Larger lesions, delayed intervention, and bacterial infection worsen prognosis, prolong healing, and increase recurrence. Condition-dependent treatments, including oral propranolol (starting at 1 mg/kg or less daily, maintenance at 2 to 3 mg/kg daily), timolol prophylaxis, and wound management care combined with laser therapy, shorten therapy duration and minimize recurrence. Empiric antibiotics are indicated for infected ulcerative IH. Surgery is indicated for life-threatening cases (eg, chest wall hemangiomas requiring transfusion or airway obstruction) and high-morbidity cases (eg, lip lesions affecting speech or periorbital lesions impairing vision). The Infantile Hemangioma Referral Score helps clinicians identify high-risk patients who require prompt referral, thereby preventing delayed treatment.
BACKGROUND:Interleukin 17 (IL-17) is a primary pathogenic cytokine, and antibodies blocking its function are clinically approved for treating psoriasis. Although Act1 (TRAF3IP2) is an essential multifunctional adaptor in IL-17 signaling, its regulatory mechanisms remain poorly understood. In this study, the role of endoribonuclease N4BP1 in regulating the IL-17 signaling pathway was characterized. METHODS:N4BP1 was knocked out in both in vivo and in vitro experimental models to detect alterations in the IL-17 signaling pathway. Moreover, the specific mechanism by which N4BP1 exerts its regulatory effect was explored by examining the stability, degradation rate, transcription and translation rate of key proteins. RESULTS:N4BP1 deficiency markedly enhanced IL-17-induced expression of proinflammatory mediators, including CXCL1, CCL20, and MMP9. Unexpectedly, the mRNA stability of CXCL1, CCL20, and MMP9 was largely unaffected by N4BP1 knockout. Further investigation revealed that N4BP1-deficient cells exhibited elevated MAPK phosphorylation, particularly of p38. Pharmacological inhibition of p38 substantially reduced CXCL1, CCL20, and MMP9 levels in N4BP1-deficient cells. This hyperactivation of MAPKs was attributed to an increased protein level of Act1 in N4BP1-deficient cells. Silencing of Act1 with shRNAs in N4BP1-deficient cells greatly diminished the upregulation of CXCL1, CCL20 and MMP9. The elevated Act1 protein level in N4BP1-deficient cells was not due to enhanced Act1 mRNA stability. Instead, polysome profiling demonstrated a pronounced enrichment of Act1 mRNA in the translationally active polysome fraction in N4BP1-deficient cells. In vivo, under pathological stimuli such as IMQ or aging, N4BP1-deficient mice exhibited increased Act1 protein, MAPK phosphorylation, and increased expression of IL-17 downstream genes, including CXCL1, CCL20, and MMP9. Pharmacological inhibition of Act1 ameliorates IMQ-induced skin damage, with a more pronounced therapeutic effect observed in N4BP1 KO mice. CONCLUSIONS:These findings collectively establish that N4BP1 is a potent negative regulator of IL-17 signaling that suppresses the translation of Act1 mRNA.
Cardiovascular diseases (CVDs) remain a leading cause of global mortality, with pathogenesis driven by multifactorial processes including genetic susceptibility, metabolic dysregulation, angiogenesis, and inflammation. Long non-coding RNAs (lncRNAs) have been recognized as key modulators of gene expression in cardiovascular pathophysiology. Among them, the Antisense Non-coding RNA in the INK4 Locus (ANRIL)—mapping to the well-established CVD-associated chromosome 9p21 locus—has garnered substantial research interest. Initially identified in melanoma, ANRIL spans approximately 126.3 kb and comprises 19 exons, existing in both linear and circular isoforms with distinct functional profiles. This review systematically outlines the dysregulation of ANRIL expression across seven major cardiovascular conditions and elucidates the isoform-specific mechanisms through which it contributes to disease progression, integrating recent advances in this field. We further discuss emerging evidence suggesting a potential role of ANRIL in cardiac hypertrophy. In light of its involvement in diverse cardiovascular disorders, ANRIL represents a compelling candidate for therapeutic target and a promising biomarker, warranting further translational investigation. This graphical abstract provides a brief overview of the main biological processes involved in ANRIL’s involvement in various CVDs.
In recent years, cancer immunotherapy, particularly immune checkpoint blockade (ICB), has revolutionized the standard of care for some patients with advanced disease. However, ICB alone is often ineffective in the majority of cancer patients. Chemotherapy, a standard treatment aims at directly targeting rapidly growing tumor cells, also induces the release of antigens that may enhance anti-tumor immunity. Consequently, numerous clinical trials are investigating the synergistic effects of combining ICB with chemotherapy, and they are showing great promise. Additionally, chemotherapy can impact the expression of immune checkpoint molecules like PD-L1(programmed death-ligand 1), potentially influencing the efficacy of ICB. Moreover, chemotherapy has the potential to eliminate immune cells, underscoring the importance of selecting the appropriate chemotherapy agent and dose to optimize the combinational effect. This review systematically evaluates the influence of various chemotherapy agents on the PD-1/PD-L1(programmed cell death-1) immune checkpoint and summarizes the combined impact of chemotherapy and ICB across different cancer types. While the benefits of combination therapy are significant, the selection of chemotherapeutic agents should be tailored to individual patients. Personalized combination therapy involving ICB and chemotherapy has the potential to greatly enhance outcomes for cancer patients.
Apolipoprotein A-I binding protein (AIBP) interacts with both apolipoprotein A-I and high-density lipoprotein. It modulates lipid raft-related signaling pathways and affects mitochondrial function, oxidative stress, and inflammatory responses, thereby playing an important role in atherosclerosis, neuroinflammation, and neurological disorders. The role of AIBP in cardiovascular diseases has been intensively studied. Nevertheless, recent studies have uncovered correlations between NAD(P)HX differential isomerase variants and various neurological disorders, further highlighting their substantial role in neurological diseases. This review outlines the current investigations on AIBP in neurometabolic diseases, neurodegenerative diseases, and neuropathic pain. The present advances are also updated in the function and regulation of AIBP in cholesterol metabolic and inflammatory signaling and explored the potential of AIBP as a promising strategy and target for neurological disorders.
Triple-negative breast cancer (TNBC) is a highly aggressive breast cancer subtype that typically lacks effective targeted therapies, leading to limited treatment options. Chemotherapy remains the primary treatment modality; however, in recent years, new immunotherapy approaches, such as immune checkpoint inhibitors, have shown positive results in some patients. Although the development of TNBC is closely associated with BRCA gene mutations, the tumor immune microenvironment (TIME) plays a crucial role in tumor progression and immune escape. Tumor angiogenesis, the accumulation of immunosuppressive cells, and alterations in immune molecules collectively shape an environment unfavorable for anti-tumor immune responses. Tumor-associated macrophages (TAMs) and myeloid-derived suppressor cells (MDSCs) promote immune escape by secreting immunosuppressive factors. Therefore, combination strategies of anti-angiogenic and immune checkpoint inhibitory therapies have shown synergistic effects in clinical trials, while new targeted therapies such as TGF-β inhibitors and IL-1β inhibitors offer new options for TNBC treatment. With the development of personalized medicine, combining immunotherapy and targeted therapies brings new hope for TNBC patients.
N4BP1 (NEDD4-binding partner 1) is a key checkpoint for proper inflammatory responses; however, its cellular localization, biologic nature, and functions in other cellular processes remain largely unknown. In this study, we demonstrate that N4BP1 is a nucleocytoplasmic shuttling protein. Treatment with leptomycin B induces nuclear accumulation of N4BP1, and the region responsible for its nuclear distribution maps to amino acids 151 to 338. Further analysis identified a nuclear localization signal (NLS) spanning residues 279 to 299. Deletion or mutation of this NLS abolishes N4BP1 nuclear import, while fusing the NLS to GFP is sufficient to drive GFP into the nucleus. Notably, we found that N4BP1 forms protein aggregates in both the cytoplasm and nucleus. These aggregates lack ubiquitin-modified proteins but instead colocalize with NEDD8-modified proteins. Consistently, N4BP1 aggregates contain cullin-1 and cullin-2. The CoCUN domain is essential for recognizing neddylated proteins and mediating N4BP1 aggregate formation. N4BP1 aggregates exhibit liquid-liquid phase separation, as evidenced by their sensitivity to 1,6-hexanediol (an liquid-liquid phase separation inhibitor). Smaller N4BP1 aggregates can fuse into larger one and reassemble after 1,6-hexanediol-induced disruption. Furthermore, heat shock promotes N4BP1 aggregation, which confers cellular protection under stress conditions. Taken together, our findings reveal that N4BP1 is a nucleocytoplasmic shuttling protein. N4BP1 forms protein aggregates that contain neddylated proteins such as cullin-1 and cullin-2. This study uncovers the previously unrecognized role of N4BP1 in organizing neddylated protein aggregates and highlights its functional significance in stress adaption.
Repulsive guidance molecule b (RGMb), a glycosylphosphatidylinositol-anchored member of the RGM family, is initially identified as a co-receptor of bone morphogenetic protein (BMP) in the nervous system. The expression of RGMb is transcriptionally regulated by dorsal root ganglion 11 (DRG11), which is a transcription factor expressed in embryonic DRG and dorsal horn neurons and plays an important role in the development of sensory circuits. RGMb is involved in important physiological processes such as embryonic development, immune response, intercellular adhesion and tumorigenesis. Furthermore, RGMb is mainly involved in the regulation of RGMb-neogenin-Rho and BMP signalling pathways. The recent discovery of programmed death-ligand 2 (PD-L2)-RGMb binding reveals that the cell signalling network and functional regulation centred on RGMb are extremely complex. The latest report suggests that down-regulation of the PD-L2-RGMb pathway in the gut microbiota promotes an anti-tumour immune response, which defines a potentially effective immune strategy. However, the biological function of RGMb in a variety of human diseases has not been fully determined, and will remain an active research field. This article reviews the properties and functions of RGMb, focusing on its role under various physiological and pathological conditions.
Targeted therapy based on BRD4 and MYC shows promise due to their well -researched oncogenic functions in cancer, but their tumor -suppressive roles are less understood. In this study, we employ a systematic approach to delete exons that encode the low -complexity domain (LCD) of BRD4L in cells by using CRISPR-Cas9. In particular, the deletion of exon 14 (BRD4-E14) results in cellular morphological changes towards spindle -shaped and loosely packed. BRD4-E14 deficient cells show increased cell migration and reduced cell adhesion. The expression of S100A10 was significantly increased in cells lacking E14. BRD4L binds with MYC via the E14encoded region of the LCD to inhibit the expression of S100A10. In cancer tissues, there is a positive correlation between BRD4 and MYC, while both of these proteins are negatively associated with S100A10 expression. Finally, knocking out the BRD4-E14 region or MYC promotes tumor growth in vivo. Together, these data support a tumor -suppressive role of BRD4L and MYC in some contexts. This discovery emphasizes the significance of a discreetly design and precise patient recruitment in clinical trials that testing cancer therapy based BRD4 and MYC.
Drug-induced liver injury (DILI) is an important adverse drug reaction that can lead to acute liver failure or even death in severe cases. AIBP is a binding protein of apolipoprotein AI involved in lipid metabolism and maintenance of oxidative respiration in mitochondria, but its role in DILI is unclear. By constructing AIBP knockout mice, overexpressing and knocking down AIBP in cell lines, we established animal and cell models of DILI. Using western blotting and real-time qPCR assay, we explored the influence of AIBP in activation of mitogen-activated protein kinases (MAPK) signal pathways and possible targets. AIBP was downregulated during hepatocyte injury. AIBP deficient mice develop severe liver injury and more sensitive to drug-induced cell death. Overexpression of AIBP protects cells under APAP treatment. Furthermore, AIBP inhibits the activation of MAPK pathways, through which AIBP regulates NR4A1. These results suggest that AIBP is expected to become a valuable biomarker and therapeutic target in liver injury.
Ferroptosis, an iron-dependent form of programmed cell death, is a promising strategy for cancer treatment. Bromodomain-containing protein 4 (BRD4) is an epigenetic reader and a promising target for cancer therapeutics. However, the role of BRD4 in ferroptosis is controversial and the value of the interaction between BRD4 inhibitors and ferroptosis inducers remains to be explored. Here, we found that BRD4 inhibition greatly enhanced erastin-induced ferroptosis in different types of cells, including HEK293T, HeLa, HepG2, RKO, and PC3 cell lines. Knocking down BRD4 in HEK293T and HeLa cells also promoted erastin-induced cell death. BRD4 inhibition by JQ-1 and I-BET-762 or BRD4 knockdown resulted in substantial accumulation of reactive oxygen species (ROS) in both HEK293T and HeLa cells. The effect of BRD4 inhibition on ferroptosis-associated genes varied in different cells. After using BRD4 inhibitors, the expression of FTH1, Nrf2, and GPX4 increased in HEK293T cells, while the levels of VDAC2, VDAC3, and FSP1 decreased. In HeLa cells, the expression of FTH1, VDAC2, VDAC3, Nrf2, GPX4, and FSP1 was reduced upon treatment with JQ-1 and I-BET-762. Consistently, the level of FSP1 was greatly reduced in HEK293T and HeLa cells with stable BRD4 knockdown compared to control cells. Furthermore, ChIP-sequencing data showed that BRD4 bound to the promoter of FSP1, but the BRD4 binding was greatly reduced upon JQ-1 treatment. Our results suggest that ROS accumulation and FSP1 downregulation are common mechanisms underlying increased ferroptosis with BRD4 inhibitors. Thus, BRD4 inhibitors might be more effective in combination with ferroptosis inducers, especially in FSP1-dependent cancer cells.
Repeat dipeptides such as poly(proline-arginine) (polyPR) are generated from the hexanucleotide GGGGCC repeat expansions in the C9orf72 gene. These dipeptides are often considered as the genetic cause of familial amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). In the study, fluorescein isothiocyanate (FITC) labeled PR20 is used to investigate PR20-induced cell death. The findings reveal that the cell death induced by PR20 is dependent on its nuclear distribution and can be blocked by a nuclear import inhibitor called importazole. Further investigation reveals that BRD4 inhibitors, such as JQ-1 and I-BET762, restrict cytoplasmic localization of PR20, thereby reducing its cytotoxic effect. Mechanistically, the inhibition of BRD4 leads to an increase in the expression of numerous histones, resulting in the accumulation of histones in the cytoplasm. These cytoplasmic histones associate with PR20 and limit its distribution within the nucleus. Notably, the ectopic expression of histones alone is enough to confer protection to cells treated with PR20. In addition, phenylephrine (PE) induces cellular hypertrophy and cytoplasmic distribution of histone, which also helps protect cells from PR20-induced cell death. The research suggests that temporarily inducing the presence of cytoplasmic histones may alleviate the neurotoxic effects of dipeptide repeat proteins.
3'UTRs are recognized for their role in regulating mRNA turnover while the turnover of a specific group of mRNAs mediated by coding sequences (CDSs) remains poorly understood. N4BP1 is a critical inflammatory regulator in vivo with a molecular mechanism that is not yet clearly defined. Our study reveals that N4BP1 efficiently degrades its mRNA targets via CDS rather than the 3'-UTR. This CDS-dependent mRNA turnover mechanism appears to be a general feature of N4BP1, as evidenced by testing multiple mRNA substrates, such as FosC, Fos-B, Jun-B, and C-X-C motif chemokine ligand 1. Detailed mapping of the motif identified a crucial 33-nt (289-322) sequence near the 5'-end of Fos-C-CDS, where the presence of polyC is necessary for N4BP1-mediated degradation. Functional studies involving domain deletion and point mutations showed that both the K homology and N4BP1, YacP-like nuclease domains are essential for N4BP1 to restrict mRNA substrates. The function of N4BP1 in mRNA turnover is not dependent on nonsense-mediated decay as it efficiently restricts mRNA substrates even in cells deficient in UPF1, UPF3A, and UPF3B. Additionally, the function of N4BP1 is not reliant on LUC7L3 despite its known association with this protein. Our findings suggest that N4BP1 acts as an endoribonuclease to degrade mRNA substrates primarily through CDSs containing a C-rich motif.
Infantile hemangioma (IH) is the most frequent vascular tumor of infancy with unclear pathogenesis; disordered angiogenesis is considered to be involved in its formation. Apolipoprotein A-I binding protein (AIBP)- also known as NAXE (NAD [P]HX epimerase)-a regulator of cholesterol metabolism, plays a critical role in the pathological angiogenesis of mammals. In this study, we found that AIBP had much lower expression levels in both tissues from patients with IH and hemangioma endothelial cells (HemECs) than in adjacent normal tissues and human dermal vascular endothelial cells, respectively. Knockout of NAXE by CRISPR-Cas9 in HemECs enhanced tube formation and migration, and NAXE overexpression impaired tube formation and migration of HemECs. Interestingly, AIBP suppressed the proliferation of HemECs in hypoxia. We then found that reduced expression of AIBP correlated with increased hypoxia-inducible factor 1a levels in tissues from patients with IH and HemECs. Further mechanistic investigation demonstrated that AIBP disrupted hypoxia-inducible factor 1a signaling through cholesterol metabolism under hypoxia. Notably, AIBP significantly inhibited the development of IH in immunodeficient mice. Furthermore, using the validated mouse endothelial cell (ie, EOMA cells) and Naxe-/- mouse models, we demonstrated that both endogenous AIBP from tumors and AIBP in the tumor microenvironment limit the formation of hemangioma. These findings suggested that AIBP was a player in the pathogenesis of IH and could be a potential pharmacological target for treating IH.
The nuclear factor of κ-light chain of enhancer-activated B cells (NF-κB) signaling pathway, which is conserved in invertebrates, plays a significant role in human diseases such as inflammation-related diseases and carcinogenesis. Angiogenesis refers to the growth of new capillary vessels derived from already existing capillaries and postcapillary venules. Maintaining normal angiogenesis and effective vascular function is a prerequisite for the stability of organ tissue function, and abnormal angiogenesis often leads to a variety of diseases. It has been suggested that NK-κB signalling molecules under pathological conditions play an important role in vascular differentiation, proliferation, apoptosis and tumourigenesis by regulating the transcription of multiple target genes. Many NF-κB inhibitors are being tested in clinical trials for cancer treatment and their effect on angiogenesis is summarised. In this review, we will summarise the role of NF-κB signalling in various neovascular diseases, especially in tumours, and explore whether NF-κB can be used as an attack target or activation medium to inhibit tumour angiogenesis.
Extensive studies have demonstrated critical roles of Regnase-1 in skin inflammation; however the role of N4BP1, a member of Regnase-1 family, in skin is largely unexplored. Here, we found that N4BP1 was highly expressed in skin and its expression was further increased upon skin injury. Compared to wildtype mice, N4BP1 deficient mice showed severe skin injury upon tape-stripping and burns. Overexpression of N4BP1 in HaCaT cells caused more cuboidal with higher cell-to-cell packing, while reduced expression of N4BP1 made cells become more spindle shaped and loosely packed. Overexpression of N4BP1 promoted cell migration, while silence of N4BP1 reduced migration. N4BP1 deficient HaCaT cells were more sensitive to heats compared to control cells. RNA profiling in N4BP1 genetically modified cells demonstrated that N4BP1 broadly affects cellular behaviors such as epithelium development. RNA profiling, RT-PCR verification, WB analysis and RNA immunoprecipitation demonstrated that MMP9 was one of N4BP1 targets that significantly increased in N4BP1 deficient HaCaT cells and skin tissues. Collectively, our results demonstrate a protective role of N4BP1 in skin injury through broadly affecting cellular behaviors of keratinocytes. Furthermore, we identified MMP9 is a target of N4BP1 in keratinocytes. Our findings provide new insight to understand how N4BP1 protects skin under injury.
BackgroundAngiogenesis plays important roles in physiological and pathologic conditions, but the mechanisms underlying this complex process often remain to be elucidated. In recent years, liquid-liquid phase separation (LLPS) has emerged as a new concept to explain many cellular functions and diseases. However, whether LLPS is involved in angiogenesis has not been studied until now. Here, we investigated the potential role of LLPS in angiogenesis and endothelial function.ResultsWe found 1,6-hexanediol (1,6-HD), an inhibitor of LLPS, but not 2,5-hexanediol (2,5-HD) dramatically decreases neovascularization of Matrigel plug and angiogenesis response of murine corneal in vivo. Moreover, 1,6-HD but not 2,5-HD inhibits microvessel outgrowth of aortic ring and endothelial network formation. The endothelial function of migration, proliferation, and cell growth is suppressed by 1,6-HD. Global transcriptional analysis by RNA-sequencing reveals that 1,6-HD specifically blocks cell cycle and downregulates cell cycle-related genes including cyclin A1. Further experimental data show that 1,6-HD treatment greatly reduces the expression of cyclin A1 but with minimal effect on cyclin D1, cyclin E1, CDK2, and CDK4. The inhibitory effect of 1,6-HD on cyclin A1 is mainly through transcriptional regulation because proteasome inhibitors fail to rescue its expression. Furthermore, overexpression of cyclin A1 in HUVECs largely rescues the dysregulated tube formation upon 1,6-HD treatment.ConclusionsOur data reveal a critical role of LLPS inhibitor 1,6-HD in angiogenesis and endothelial function, which specifically affects endothelial G1/S transition through transcriptional suppression of CCNA1, implying LLPS as a possible novel player to modulate angiogenesis, and thus, it might represent an interesting therapeutic target to be investigated in clinic angiogenesis-related diseases in future.