Zea mays L., a traditional edible botanical and abundant agricultural by-product, is rich in polyphenols and flavonoids. This study aimed to investigate the protective effects of corn silk extract (CSE) against cisplatin-induced cardiac injury and its underlying mechanisms. A cisplatin-induced murine model of myocardial injury and an in vitro H9c2 cardiomyocyte injury model were established. Cardiac function, oxidative stress, and cell death markers were evaluated, complemented by transcriptomic and molecular biology analyses. The results showed that CSE significantly improved cardiac function, reduced myocardial injury markers, and alleviated oxidative stress and apoptosis. Mechanistically, CSE restored oxidative phosphorylation function by upregulating NDUFB8, decreasing ROS accumulation, and inhibiting key ferroptosis pathways. Our findings demonstrate that CSE, a natural food-derived ingredient, alleviates cisplatin-induced cardiotoxicity primarily by restoring mitochondrial oxidative phosphorylation (OXPHOS) function, thereby reducing oxidative stress and ferroptosis. This study provides a novel mechanistic basis for the development of corn silk as a source of bioactive compounds for functional foods or dietary supplements aimed at supporting cardiovascular health.
To screen for anti-PMO active components in Cornus officinalis based on ERβ enzyme activity using affinity ultrafiltration and molecular docking techniques.ERβ enzyme and UHPLC-Q-Exactive Orbitrap MS were employed to analyze the anti-PMO activity and predict the components of different concentrations of ethanol extracts of C. officinalis. Molecular docking was used to verify the interaction mechanism between small molecule ligands and ERβ. The anti-PMO activity of the predicted components was further verified using MC3T3-L1 cells. The results showed that the ERβ enzyme can serve as a target enzyme for screening anti-PMO components. The 50% ethanol extract exhibited the best activity. UHPLC-Q-Exactive Orbitrap MS identified and analyzed 17 potential active components. Based on the binding rate and molecular docking results, the following three active components were identified: sweroside, 4-hydroxycinnamic acid, and cornuside. In vitro activity validation confirmed that these components have potential anti-PMO effects. The ERβ enzyme can be used as a potential target enzyme for screening anti-PMO active components in traditional Chinese medicine. The combination of affinity ultrafiltration and molecular docking provides an effective and rapid method for active component screening, offering valuable references for the targeted therapy, mechanism exploration, and quality control of traditional Chinese medicine.
Background: Bai Hu Tang (BHT) is a classic antipyretic in traditional Chinese medicine, however, there is little scientific evidence on the mechanism and material basis of its antipyretic effect. Methods: In LPS-induced febrile rats, after administration of BHT at 42 g/kg for half an hour, body temperature was measured at hourly intervals for 9 consecutive hours. Then, serum levels of TNF-α, IL-1β, and IL-6, and serum and cerebrospinal fluid (CSF) levels of AVP, cAMP, PGE2, Ca and CRH, and the remaining sera were used for metabolomics. These were then combined with network pharmacology methodology to further analyse the antipyretic effect of BHT and then dock key targets with differential components. Results: Administration of BHT to LPS-induced febrile rats significantly reduced elevated body temperature, TNF-α, IL-1β and IL-6 levels, but serum and CSF levels of AVP, cAMP, PGE2, Ca2+ and CRH were significantly elevated compared to the control group. Network pharmacological analyses indicated that the putative functional targets of BHT were regulation of immune responses, associated protein binding and inflammatory responses, and fine-tuning of phosphatase binding and activation of signalling pathways such as MAPK, PI3K, AKT, NF-kB, cAMP and inflammatory pathways. Metabolomic analysis showed that the antipyretic effect of BHT and its mechanism are likely to be involved in fatty acid metabolism, bile acid metabolism and amino acid metabolism in the organism, with L-arginine, glycyrrhetinic acid and N-acetylpentraxine as the main differential metabolites that play a significant role in heat recovery. The results also showed better docking of glycyrrhetinic acid with TNF-α, IL-6R, PTGS2. Conclusions: BHT provides a valuable adjunct to traditional clinical antipyretics by improving body temperature and metabolism and reducing inflammation.
Hepatocellular carcinoma (HCC) is the third most common cancer worldwide, widely prevalent across many countries, and poses a serious threat to human health. With changes in its epidemiology, the incidence of HCC is expected to continue rising. As a class of organic molecules widely distributed in nature, quinone compounds possess notable antioxidant, antibacterial, and antitumor properties. This article selects several quinone compounds that have shown notable research progress in recent years and artificially categorizes them into “plant-derived quinone compounds” and “non-plant-derived quinone compounds.” We then provide a detailed review of the research findings regarding HCC in vitro and in vivo experiments and clinical trials, including their potential toxic side effects. Additionally, based on the varying toxicity reduction of several selected plant-derived quinones when combined with doxorubicin, we further hypothesize that these plant-derived quinone compounds may also exert detoxifying effects on other non-plant-derived quinones discussed in this article. In summary, quinone compounds still hold significant research value and development potential in the fight against HCC. At the same time, we hope our review will provide valuable insights and inspiration for future research in this field.
Sirtuin-3 (SIRT3) is a mitochondrial deacetylase highly expressed in the nervous system, known to regulate mitochondrial homeostasis, energy metabolism, neuroinflammation, apoptosis, and oxidative stress, suggesting its potential neuroprotective role in central nervous system (CNS) disorders. Recent studies indicated that SIRT3 improves neuronal survival by reducing oxidative damage, alleviating neuroinflammation, and modulating autophagy. Therefore, it is imperative to conduct more in-depth and extensive investigations into the mechanisms underlying SIRT3 in central nervous system disorders. This review summarized current research advances on SIRT3, including its fundamental molecular structure, key downstream targets, and mechanisms of action in certain CNS diseases. It further analyzed the potential pharmacological mechanisms of several SIRT3 agonists and explored their therapeutic value in improving CNS disorders. Based on existing evidence, SIRT3 emerges as a promising therapeutic target, offering novel strategies for treating neurological diseases.
Hyperlipidemia, a metabolic disorder characterized by abnormal lipid levels, is closely linked to an increased risk of cardiovascular disease. In this study, we investigated the hypolipidemic properties of Paeoniae Radix Rubra and its regulatory effects on gut microbiota composition in a high-fat diet model. Using UHPLC-QE-MS/MS, we identified its chemical constituents and applied bioinformatics, network pharmacology, and molecular docking to virtually screen for bioactive compounds and molecular targets. Gelomulide N and (E)-5-[(1 S,4aR,8aR)-2-formyl-5,5,8a-trimethyl-1,4,4a,6,7,8-hexahydronaphthalen-1-yl]-3-(acetoxymethyl)pent-2-enoic acid were identified as potential active compounds. Paeoniae Radix Rubra exhibited notable hypolipidemic, hepatoprotective, and gut microbiota-restoring effects, potentially influencing the mevalonate pathway by interacting with proteins such as P53, HMGCR, and SREBP2, which may contribute to reduced cholesterol synthesis. These findings indicate that the Paeoniae Radix Rubra could serve as a potential therapeutic strategy for hyperlipidemia, possibly mediated through modulation of lipid metabolism pathways and gut microbiota remodeling.
[This retracts the article DOI: 10.3892/ol.2019.10274.].
Background: Obesity is gradually becoming a widespread health problem, and treatment using natural compounds has seen an increasing trend. As a by-product of hazelnut, hazel leaf is usually disposed of as waste, but it is widely used in traditional and folk medicines around the world. Aim of this study: Based on previous studies, the effects of the regulation of lipid metabolism and the mechanism of hazel leaf polyphenol extraction obesity were investigated. Methods: In this study, a high-fat diet-fed mouse model of obesity and 3T3-L1 preadipocytes were established. The ameliorative effects of the hazel leaf polyphenol extract on obesity and the regulating lipid metabolisms were explored based on network pharmacology, gut microbiota, and molecular docking. Results: Network pharmacology showed that hazel leaf polyphenols may play a role by targeting key targets, including PPARγ, and regulating the PPAR signaling pathway. They significantly improved body weight gain, the liver index, and adiposity and lipid levels; regulated the gut microbiota and short-chain fatty acid contents; down-regulated the expression of lipid synthesis proteins SREBP1c, PPARγ, and C/EBP-α; and up-regulated the expression of p-AMPK in obese mice. They inhibited the differentiation of 3T3-L1 cells, and the expression of related proteins is consistent with the results in vivo. The molecular docking results indicated that gallic acid, quercetin-3-O-beta-D-glucopyranoside, quercetin, myricetin, and luteolin-7-O-glucoside in the hazel leaf polyphenol extract had strong binding activities with PPARγ, C/EBP-α, and AMPK. Conclusions: The results demonstrate that the hazel leaf polyphenol extract can improve obesity by regulating lipid metabolism, which provides a valuable basis for developing health products made from hazel leaf polyphenols in the future.
BACKGROUND:Rheumatoid arthritis (RA) is partially affected by the integrity of the intestinal barrier. Licorice (GC), a medicinal and food-related herb, exhibits potent anti-inflammatory activity; however, studies on its mechanisms of action in RA are limited. METHOD:Using a bovine type-II collagen-induced arthritis rat model, this study examined how GC influences the gut-joint axis to decrease RA. The Th17/Treg cell ratios in the blood, colon, and joints were also measured. Metabolomics and 16S rRNA sequencing were applied to explore the effects of variations in gut flora and metabolites. RESULTS:The arthropathological slices, inflammation markers, and joint inflammation index scores in the GC treatment group significantly differed from those in the CIA group. Studies on the effect of GC on the gut-joint axis showed changes in the levels of lipopolysaccharide and diamine oxidase, both directly associated with intestinal permeability. ZO-1, occludin, and claudin-1, three intestinal tight-junction proteins, may express themselves more when exposed to GC. By maintaining an appropriate Th17/Treg cell ratio in the blood, colon, and joints, GC may reduce impaired to the intestinal barrier. An imbalance in the intestinal microenvironment, caused by modifications in gut flora and endogenous substances, can damage the intestinal barrier. GC may modify the relative abundances of Papillibacter, Clostridium, Eubacterium, Helicobacter, Provotella, and Barnesiella during RA treatment by repairing the intestinal barrier. The metabolic differences were mainly related to primary bile acid biosynthesis, pyrimidine metabolism, steroid biosynthesis, biotin metabolism, and sphingolipid metabolism. A fecal microbiota transplantation experiment confirmed the involvement of the gut microbiota and its metabolites in GC-mediated RA therapy. CONCLUSION:The results demonstrated that GC repairs the intestinal barrier and adjusts the gut-joint axis to manage immunological imbalance in RA.
Adenosine, a nucleoside, regulates various systems, such as the cardiovascular, immune, and nervous systems, by binding to Adenosine receptors. To elucidate the role of Adenosine in Osteoporosis, this study employed an experimental approach involving the stimulation of bone formation in osteoporotic zebrafish and the reduction of reactive oxygen levels in a glucocorticoid-induced zebrafish model of Osteoporosis with oxidative stress. Adenosine significantly promoted the proliferation of MC3T3-E1 cells and increased the activity of alkaline phosphatase (ALP). It also elevated nitric oxide, glutathione, and superoxide dismutase levels while decreasing malondialdehyde. The target of Adenosine’s impact on Osteoporosis with oxidative stress was elucidated through network pharmacology, revealing the PI3K/Akt pathway, a finding corroborated through RT-qPCR analysis. Hence, we present the mechanism through which Adenosine can be utilized to prevent and manage Osteoporosis accompanied by oxidative stress, distinct from the previously identified mode of action of Adenosine in osteoporosis treatment.
Derived from hazelnuts, hazel leaf has been utilized in traditional folk medicine for centuries in countries such as Portugal, Sweden, and Iran. In our previous investigations, we conducted a preliminary assessment of the hazel leaf polyphenol extract (referred to as ZP) and identified nine compounds, such as kaempferol and chlorogenic acid, in its composition. ZP has shown promising properties as an antioxidant and anti-inflammatory agent. Our research has revealed that ZP has protective effects against cisplatin-induced acute kidney injury (AKI). We conducted a comprehensive examination of both the pathological and ultrastructural aspects and found that ZP effectively ameliorated renal tissue lesions and mitigated mitochondrial damage. Moreover, ZP significantly suppressed malondialdehyde levels while increasing glutathione and catalase concentrations in the kidneys of AKI-induced mice. ZP decreased the number of apoptotic cells and decreased pro-apoptotic protein expression in the kidneys of mice and human renal tubular epithelial cells (HK-2). Furthermore, treatment with ZP increased the levels of proteins marking anti-ferroptosis, such as GPX4, FTH1, and FSP1, in experiments both in vivo and in vitro. We elucidated the underlying mechanisms of ZP’s actions, revealing its inhibitory effect on Yap phosphorylation and its regulation of Lats expression, which exert a protective influence on the kidneys. Furthermore, we found that inhibiting the Hippo pathway compromised ZP’s nephroprotective effects in both in vitro and in vivo studies. In summary, this research shows that ZP exhibits renoprotective properties, effectively reducing oxidative damage, apoptosis, and ferroptosis in the kidneys by targeting the Hippo pathway.
Background KeYu ShuoShen Granules (KSG) is a traditional Chinese medicine formula with radix bupleuri as the kingpin, which is widely used in the treatment of depression, but its exact mechanism of action is not yet fully understood. The aim of this study is to investigate the therapeutic mechanisms of KSG in a model of depression in rats. Methods Rats were equally divided into 5 groups including control, model, fluoxetine, KSG at high and low doses, chronic unpredictable mild stress combined with solitary rearing for 28 days was used to prepare a rat model of depression followed by 14 days of continuous gavage and modelling, and the antidepressant effects of KSG were analyzed using behavioral tests, proteomic techniques and pharmacological methods. Results After KGS treatment, the body weight, Sucrose Preference of the model rats increased significantly, and their motor and learning memory abilities were significantly improved in the open field test and Morris water maze (P<0.01 or P<0.05); At the same time, proteomics revealed a total of 7 differential proteins, 3 differential pathways, including Agps, Eif4e2, Pter, Sys1, Rgcc, Polr1d and Npy1r, mTOR signalling pathway, insulin signalling pathway, and human papillomavirus infection; the expression of p-mTOR, mTOR, and Eif4e2 was significantly up-regulated after drug administration (P<0.01 or P<0.05), and neuronal damage in the cerebral cortex was significantly restored. Conclusion KSG improved depression symptoms in model rats by modulating protein synthesis processes involved in the mTOR pathway and Eif4e2, producing a combined effect on the nervous system. This finding provides new theoretical support and a mechanistic explanation for the use of KSG in the treatment of depression.
Hazel leaf, a by-product of hazelnuts, is commonly used in traditional folk medicine in Portugal, Sweden, Iran and other regions for properties such as vascular protection, anti-bleeding, anti-edema, anti-infection, and pain relief. Based on our previous studies, the polyphenol extract from hazel leaf was identified and quantified via HPLC fingerprint. The contents of nine compounds including kaempferol, chlorogenic acid, myricetin, caffeic acid, p-coumaric acid, resveratrol, luteolin, gallic acid and ellagic acid in hazel leaf polyphenol extract (ZP) were preliminary calculated, among which kaempferol was the highest with 221.99 mg/g, followed by chlorogenic acid with 8.23 mg/g. The inhibition of ZP on α-glucosidase and xanthine oxidase activities was determined via the chemical method, and the inhibition on xanthine oxidase was better. Then, the effect of ZP on hyperuricemia zebrafish was investigated. It was found that ZP obviously reduced the levels of uric acid, xanthine oxidase, urea nitrogen and creatinine, and up-regulated the expression ofOAT1 and HPRT genes in hyperuricemia zebrafish. Finally, the targeted network pharmacological analysis and molecular docking of nine polyphenol compounds were performed to search for relevant mechanisms for alleviating hyperuricemia. These results will provide a valuable basis for the development and application of hazel leaf polyphenols as functional ingredients.
Hazel leaves, a by-product of hazelnut, have been consumed for health care in some countries and regions for hundreds of years. Based on our previous results, this study further investigated the protective effects of hazel leaf polyphenols (HP) on renal fibrosis induced by hyperuricemia in mice. Results showed that they significantly reduced serum UA, BUN and CRE contents, inhibited liver XOD activity. Histological examination and Western blot analysis revealed that they renal pathological changes and fibrosis were obviously improved after HP administration. Additionally, combined with TEM, they attenuated oxidative stress and mitochondrial damage, and inhibited ferroptosis by regulating the expression of related proteins. Molecular docking predicted that chlorogenic acid, p-coumaric acid, luteolin, myricetin and kaempferol may be the key active ingredients. In conclusion, HP ameliorated hyperuricemia-induced renal fibrosis through regulating uric acid production, reabsorption and excretion, and inhibiting ferroptosis through Nrf2/GPX4 signaling axis. It provides a valuable basis for the utilization of hazel leaf polyphenols as health agents in the future.
Ovarian cancer is a prevalent malignancy in the female reproductive system, representing a significantly fatal and incurable tumor. Chelerythrine (CHE), a natural benzopyridine alkaloid, has demonstrated a broad spectrum of anticancer activities. Nevertheless, the ovarian cancer inhibitory impact of CHE remains unclear. In this study, we investigated the cytotoxic mechanism and potential targets of CHE on in vitro cultures of A2780 and SKOV3 cells derived from ovarian cancer. Additionally, in vivo experiments were conducted to confirm the suppressive impact of CHE on tumor growth in nude mice. The findings revealed that CHE impeded the growth of A2780 and SKOV3 cells in a concentration-time-dependent manner and significantly suppressed the development of tumors in nude mice. CHE elevated the level of oxidative stress in tumor cells, prompted cell cycle halt in the S phase, and increased their mitochondrial membrane potential. Western blotting results demonstrated that CHE could modulate the expression of proteins associated with apoptotic and ferroptosis processes in A2780 and SKOV3 cells. Nrf2 was verified to be an upstream key target mediating the inhibitory impact of CHE on ovarian cancer cells. In summary, CHE exerts its anti-cancer effects on ovarian cancer by modulating Nrf2, inhibiting cellular proliferation, and promoting apoptosis and ferroptosis.
In this study, we employed network pharmacology and molecular docking techniques, complemented by experimental validation, to assess the pharmacodynamic effects of tenghuang jiangu wan (THJGW) in the context of osteoporosis (OP) treatment. Our investigation delineated the underlying mechanism of action. To simulate clinical postmenopausal osteoporosis, we used a rat model of bilateral ovary removal. Through assessment of bone mineral density, bone microstructure, histological examination of bone tissues and evaluation of biochemical markers, it was confirmed that THJGW can effectively increase the number of bone trabeculae in ovx rats and improve structural damage. In addition, it has a significant protective effect on bone turnover, thereby demonstrating its therapeutic potential for OP. Furthermore, using bioinformatics analysis, we predicted that THJGW could modulate various processes in vivo. These include the regulation of inflammatory responses, growth factors, steroid hormone levels, biosynthetic pathways, and effects on lipids and atherosclerosis. Additionally, we investigated its role in the lipid and atherosclerosis signaling pathway. By activating the Wnt/β-catenin signaling pathway and concurrently inhibiting the Axin2/PPAR-γ signaling pathway, THJGW promotes the proliferation and differentiation of bone marrow mesenchymal stem cells into osteoblasts, reduces adipocyte production, and enhances bone formation. This dual mechanism underscores their preventive and therapeutic potential against OP. This study provides valuable scientific insights and a robust theoretical foundation for the clinical use of THJGW.
Tenghuang Jiangu Wan (THJGW) is a commonly utilized treatment for osteoarthritis (OA), yet its pharmacodynamic material basis and molecular mechanism remain inadequately understood. This study systematically characterized the in vitro and in vivo chemical components of THJGW using ultra-performance liquid chromatography-quadrupole time-of-flight mass spectrometry (UPLC-Q-TOF-MS). The pharmacodynamic material basis of THJGW in the treatment of OA was explored through a target network pharmacology approach and molecular docking technology. Cellular experiments were subsequently employed to validate the molecular mechanisms. Consequently, a total of 134 components from THJGW were identified in vitro, comprising 45 flavonoids, 10 iridoid glycosides, 39 phenylethanoid glycosides, 9 phenylpropanoids, 11 organic acids, 4 phenolics, and 16 other compounds. Additionally, 38 prototype absorbed components in serum were characterized for the purpose of network construction. 11 key components and 10 core targets (VEGFA, STAT3, RELA/NF-κB p65, PIK3R1, PIK3CA, MMP9, MMP1, IL-6, HDAC1, and FGF2) were determined by the target network pharmacology. Through Gene Ontology (GO) enrichment and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analysis, it was found that these intersection targets are associated with various signaling pathways such as pathways in cancer, lipid and atherosclerosis, and prostate cancer. Notably, the lipid and atherosclerosis pathway was closely linked to OA. The molecular docking results demonstrated strong binding affinities of the three core targets: IL-6, STAT3, and RELA/NF-κB p65. These results suggest that these targets may play a significant role for THJGW in treating OA. In vitro experiments showed that THJGW had notable protective effects on LPS-induced RAW264.7 macrophages by reducing levels of TNF-α and IL-6, and inhibiting phosphorylation expression of STAT3 and NF-κB p65 proteins related to the lipid and atherosclerosis pathway. This study provides insight into the pharmacodynamic material basis and mechanism of action for THJGW in the treatment of OA, which provide scientific evidence for the scientific application and improvement of quality standards for THJGW.
Hazelnut is one of the most popular nuts in the world, rich in nutrients and various active substances. In this study, soluble dietary fiber (SDF) was extracted from hazelnut kernels, and its physicochemical properties and absorbability were explored. Hazelnut-SDF exhibited ideal water-holding, oil-holding and swelling capacity, and glucose, cholesterol and cholate absorbing ability. Scanning electron microscopy and fourier transform infrared spectroscopy showed that hazelnut-SDF had typical polysaccharide structure of functional groups. The main monosaccharides were identified as arabinose, rhamnose, xylose, ribose, glucuronic acid, mannose and glucose by gas chromatography-mass spectrometry. In high-fat diet rats, hazelnut-SDF could improve serum lipid parameters, inhibit lipid accumulation in liver and adipocytes, and regulate the expression level of liver lipid synthesis-related genes. It also could adjust intestinal short chain fatty acids, promote the composition and structure of intestinal microbiota, and significantly balance the abundance of Alloprevotella, Fusicatenibacter, Lactobacillus, Roseburia, Ruminococcaceae_UCG-005, Ruminococcaceae_UCG-014 and Clostridiales. The results concluded that oral administration of hazelnut-SDF could alleviate hyperlipidemia and obesity, and might serve as a potential functional food ingredient.
目的 探讨鹿茸多肽(velvet antler peptide,VAP)预处理对叔丁基过氧化氢(TBHP)诱导H9c2大鼠心肌细胞损伤及凋亡的影响.方法 采用含10%胎牛血清(FBS)培养液(DMEM)传代培养细胞7d后,将H9c2心肌细胞分为空白对照组(Blank control group)、空白血清组(Blank serum group)、TBHP组(TBHP group)、100 mg·kg-1 VAP低剂量含药血清组(TBHP+VAP L group)、400 mg·kg-1 VAP高剂量含药血清组(TBHP+VAP H group).正常对照组不做任何处理,其余给药组给予VAP处理24h后,给予200μmol·L-1 TBHP处理.MTT法检测各组细胞存活率;Hochst染色法检测各组细胞凋亡情况;Western blotting法检测心肌细胞Bax、Bcl-2、Caspase-3蛋白表达水平.结果 MTT检测结果表明,与TBHP组比较,VAP高和低剂量组的H9c2细胞活性升高(P<0.01).Hoechst染色法结果显示,与空白对照组比较,TBHP组的活细胞减少;与TBHP组比较,VAP高和低剂量组的活细胞增多.Western blotting法检测结果表明,与空白对照组比较,TBHP组上调心肌细胞Bax、Caspase-3 蛋白表达水平,降低Bcl-2 蛋白表达水平(P<0.05);与TBHP组比较,VAP高和低剂量组降低Bax、Caspase-3 蛋白表达水平,升高Bcl-2 蛋白表达水平(P<0.05).结论 VAP含药血清预处理可保护TPHP诱导的H9c2细胞心肌损伤.通过降低心肌细胞中Caspase-3蛋白的表达或抑制其活性,增加Bcl-2蛋白的表达,降低Bax蛋白的表达,上调Bcl-2/Bax,从而抑制心肌细胞凋亡.
Hazel leaf, one of the by-products of hazelnut, which is widely used in traditional folk medicine around the world. In the present study, the profile of free, conjugated, and bound phenolic compounds from hazel leaf was detected and their antioxidant and anti-inflammatory activities were investigated. The potential health benefits of different phenolic compounds were also predicted. The results showed that the 35 phenolic substances of free, conjugated and bound forms were identified including phenolic acids, flavonoids and catechins. Most of the hazel leaf phenolics were presented in free form, followed by conjugated and bound form. All the fractions effectively inhibited the production of reactive oxygen species and malondialdehyde in TBHP-stimulated human umbilical vein endothelial cells by enhancing endogenous superoxide dismutase, and accordingly alleviated inflammatory cytokines (NO, IL-1β, TNF-α, and IL-6) in LPS-stimulated RAW264.7 cells, showing obvious antioxidant and anti-inflammatory capacity. Moreover, combined with network pharmacology, the potential therapeutic effects and functional pathways of hazel leaf phenolics were predicted, which provided value basis for exploring their treatment on diseases and developing health products in the future.