Article(id=1217845639417873016, tenantId=1146029695717560320, journalId=1149652044408987649, issueId=1217845635080962613, articleNumber=null, orderNo=null, doi=10.19812/j.cnki.jfsq11-5956/ts.20250327001, pmid=null, cstr=null, oa=null, hot=null, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=research-article, receivedDate=1743004800000, receivedDateStr=2025-03-27, revisedDate=null, revisedDateStr=null, acceptedDate=null, acceptedDateStr=null, onlineDate=1768286626915, onlineDateStr=2026-01-13, pubDate=1756051200000, pubDateStr=2025-08-25, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1768286626915, onlineIssueDateStr=2026-01-13, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1768286626915, creator=13701087609, updateTime=1768286626915, updator=13701087609, issue=Issue{id=1217845635080962613, tenantId=1146029695717560320, journalId=1149652044408987649, year='2025', volume='16', issue='16', pageStart='1', pageEnd='324', issueExtLink='null', onlineDate='null', pubDate='null', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=1, specialIssue=null, createTime=1768286625881, creator=13701087609, updateTime=1768287480278, updator=13701087609, preIssue=null, nextIssue=null, ext={EN=IssueExt(id=1217849218753024879, tenantId=1146029695717560320, journalId=1149652044408987649, issueId=1217845635080962613, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1217849218753024880, tenantId=1146029695717560320, journalId=1149652044408987649, issueId=1217845635080962613, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null}, startPage=166, endPage=175, ext={EN=ArticleExt(id=1217845639841497741, articleId=1217845639417873016, tenantId=1146029695717560320, journalId=1149652044408987649, language=EN, title=Research progress on the antitumor effects and mechanisms of active components in
Allium sativum L., columnId=1151895321388347923, journalTitle=Journal of Food Safety & Quality, columnName=Food Analysis and Detection, runingTitle=null, highlight=null, articleAbstract=
As a worldwide medicinal and edible homologous plant, Allium sativum L. has the functions of antitumor, prevention and treatment of cardiovascular diseases and anti-pathogenic microorganisms. Studies have shown that many active ingredients in Allium sativum L. exert antitumor effects mainly by inhibiting tumor cell proliferation, regulating signaling pathways to inhibit migration and invasion, inducing tumor cell apoptosis, and arresting cell cycle. At the same time, the Allium sativum L. active ingredient also enhances the antitumor effect of other drugs through its combination with other drugs. This article reviewed the research on the antitumor effect and mechanism of Allium sativum L. active ingredients in the past 30 years, as well as the effects of Allium sativum L. active ingredients in combination with other drugs, this provides an important theoretical basis and application reference for the study of the antitumor action mechanism of active ingredients in Allium sativum L. and the development of innovative drugs.
, correspAuthors=Wei-Wei ZHANG, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=null, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, authorCompany=null, fund=null, authors=null, authorsList=Yan-Ru HU, Xiao-Dong DENG, Zhi-Wei ZHAO, Yi-Wen LIU, Wen-Jing YANG, Yu-Han SHENG, Si-Rong WANG, Wei LI, Xin SHU, Wei-Wei ZHANG), CN=ArticleExt(id=1217845642014147275, articleId=1217845639417873016, tenantId=1146029695717560320, journalId=1149652044408987649, language=CN, title=大蒜活性成分抗肿瘤作用及其机制研究进展, columnId=1151895321958773274, journalTitle=食品安全质量检测学报, columnName=食品分析与检测, runingTitle=null, highlight=null, articleAbstract=
大蒜作为一种世界性的药食同源植物, 具有抗肿瘤、防治心血管疾病及抗病原微生物等方面的作用。研究表明, 大蒜中的许多活性成分主要通过抑制肿瘤细胞增殖、调控信号通路抑制迁移与侵袭、诱导肿瘤细胞凋亡、阻滞细胞周期等途径发挥抗肿瘤作用。同时, 大蒜活性成分还通过与其他药物的联合使用增强其他药物的抗肿瘤作用。本文就近30年对大蒜活性成分抗肿瘤作用及其机制的研究, 以及大蒜活性成分与其他药物联合使用的作用进行综述, 为大蒜活性成分的抗肿瘤作用机制研究及其创新药物研发提供了重要理论依据和应用参考。
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1 First Affiliated Hospital of Traditional Chinese Medicine of Chengdu Medical College, Xindu Hospital of Traditional Chinese Medicine, Chengdu 610500, China
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1 成都医学院第一附属中医医院, 成都市新都区中医医院, 成都 610500
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Diagram of mechanism of allicin in antitumor effects, figureFileSmall=dGk+ShIEevqg8tpWyGiuIA==, figureFileBig=gLGucxrXcAYEmNvlK7qrNg==, tableContent=null), ArticleFig(id=1217883324543062951, tenantId=1146029695717560320, journalId=1149652044408987649, articleId=1217845639417873016, language=CN, label=图1, caption=
大蒜素抗肿瘤的作用机制图 注: 转化生长因子-β (transforming growth factor-β, TGF-β); 肿瘤坏死因子-α (tumor necrosis factor-α, TNF-α)。
, figureFileSmall=dGk+ShIEevqg8tpWyGiuIA==, figureFileBig=gLGucxrXcAYEmNvlK7qrNg==, tableContent=null), ArticleFig(id=1217883324614366121, tenantId=1146029695717560320, journalId=1149652044408987649, articleId=1217845639417873016, language=EN, label=Table 1, caption=
Effects and mechanism of allicin in antitumor effects
, figureFileSmall=null, figureFileBig=null, tableContent=
), ArticleFig(id=1217883324681474988, tenantId=1146029695717560320, journalId=1149652044408987649, articleId=1217845639417873016, language=CN, label=表1, caption=
大蒜素抗肿瘤的作用及机制
, figureFileSmall=null, figureFileBig=null, tableContent=
), ArticleFig(id=1217883324756972459, tenantId=1146029695717560320, journalId=1149652044408987649, articleId=1217845639417873016, language=EN, label=Table 2, caption=
Effects and mechanism of DATS in antitumor effects
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癌症 种类 | 体内/体外 | 细胞 | 剂量 | 作用机制 | 相关蛋白表达 | 参考 文献 |
| 黑色素瘤 | 体内、 体外 | B16F10、A375 | 5、10、25 μmol/L | 抑制增殖, 抑制 迁移与侵袭 | MMP-2↓, Akt↓, JNK↓, Paxillin↑, FAK↓, ERK↓, P38↓ | [38] |
| 体外 | A375、A2058、 SK-MEL-2 | 100 μmol/L | 诱导凋亡 | GRP 78↓, X盒结合蛋白1↑, Caspase-3↓, Caspase-12↓ | [39] |
| 骨肉瘤 | 体外 | Saos-2 /DOX | 0、10、50、100 μmol/L | 抑制增殖 | p-ERK1/2↑ | [40] |
| 体外 | 143B | 0、10、50、100、 200 µmol/L | 抑制迁移与侵袭 | EGFR↓, PI3K↓, Akt↓, mTOR↓, LC3-II/I↑, 贝林1蛋白↑, P62↓, N-cadherin↓, 蜗牛家族转录因子↓, MMP-2↓, 波形蛋白↓, E-cadherin↑ | [46] |
神经母 细胞瘤 | 体外 | SK-N-SH | 10、40 μg/L | 诱导调亡 | VEGF↓, ICAM1↓ | [47] |
| 骨髓瘤 | 体外 | MM SP | 10 μg/mL | 诱导凋亡, 抑制 增殖 | PI3K↓, p-Akt↓, Akt↓, mTOR↓, miR-127-3p↓ | [41] |
| 结直肠癌 | 体外 | SW480、DLD-1 | 0、20、40、80 μmol/L | 诱导凋亡, 抑制 增殖 | CD133↓, CD44↓, Cyclin-D1↓, Caspase-8↑, Caspase-9↓, 原癌基因c-Myc↓, 醛脱氢酶1↓, 八聚体结合转录因子4 (octamer-binding transcription factor 4, Oct-4)↓, Nanog同源框蛋 白↓, PCNA↓, Bcl-2↓, Bax↑, Cleaved Caspase-3↑, Cleaved Caspase-9↑, 糖原合成酶激酶3β↑, β-catenin↓ | [48] |
| 膀胱癌 | 体外 | T24 | 0、20、40、60、80 μmol/L | 诱导凋亡 | Bcl-2↓, Bax↑, BH3结构域相互作用死亡激动剂↓, Fas细胞表面死亡受体↓, Fas配体↑, 死亡受体4↑, 死亡受体5↑, 肿瘤坏死因子相关凋亡诱导配体↑, pro-Caspase-9↓, pro-Caspase-8↓, Caspase3↑, 活化的Caspase-3↓, PARP↓, p-Akt↓, p-ERK↓, p-JNK↓, p-P38↓ | [42] |
| 乳腺癌 | 体外 | MDA-MB-231、MCF-7 | 20、40、60 μmol/L | 抑制增殖 | ADAM10↓, 活化的ADAM10↓, ADAM17↓, Jagged-1↓, Jagged-2↓ | [43] |
| 基底细胞癌 | 体外 | BCC | 0、25、50、100 μmol/L | 诱导凋亡 | p-P53↑, Bax↑, Bcl-2↓, Bcl-xl↓, γ-组蛋白H2AX↑, p-Bcl-2↑, 凋亡蛋白酶激活因子1↑, Caspase-9↑, Caspase-3↑, PARP↑, 胞质的细胞色素C (cytochrome C, Cyt C)↑, Caspase-4↑, 凋亡诱导因子↑ | [44] |
| 肝癌 | 体外 | HepG2 | 0、10、20、40、80、 160 µmol/L | 诱导凋亡 | LC3-II/I↑ | [45] |
), ArticleFig(id=1217883324866024366, tenantId=1146029695717560320, journalId=1149652044408987649, articleId=1217845639417873016, language=CN, label=表2, caption=
DATS抗肿瘤的作用及机制
, figureFileSmall=null, figureFileBig=null, tableContent=
癌症 种类 | 体内/体外 | 细胞 | 剂量 | 作用机制 | 相关蛋白表达 | 参考 文献 |
| 黑色素瘤 | 体内、 体外 | B16F10、A375 | 5、10、25 μmol/L | 抑制增殖, 抑制 迁移与侵袭 | MMP-2↓, Akt↓, JNK↓, Paxillin↑, FAK↓, ERK↓, P38↓ | [38] |
| 体外 | A375、A2058、 SK-MEL-2 | 100 μmol/L | 诱导凋亡 | GRP 78↓, X盒结合蛋白1↑, Caspase-3↓, Caspase-12↓ | [39] |
| 骨肉瘤 | 体外 | Saos-2 /DOX | 0、10、50、100 μmol/L | 抑制增殖 | p-ERK1/2↑ | [40] |
| 体外 | 143B | 0、10、50、100、 200 µmol/L | 抑制迁移与侵袭 | EGFR↓, PI3K↓, Akt↓, mTOR↓, LC3-II/I↑, 贝林1蛋白↑, P62↓, N-cadherin↓, 蜗牛家族转录因子↓, MMP-2↓, 波形蛋白↓, E-cadherin↑ | [46] |
神经母 细胞瘤 | 体外 | SK-N-SH | 10、40 μg/L | 诱导调亡 | VEGF↓, ICAM1↓ | [47] |
| 骨髓瘤 | 体外 | MM SP | 10 μg/mL | 诱导凋亡, 抑制 增殖 | PI3K↓, p-Akt↓, Akt↓, mTOR↓, miR-127-3p↓ | [41] |
| 结直肠癌 | 体外 | SW480、DLD-1 | 0、20、40、80 μmol/L | 诱导凋亡, 抑制 增殖 | CD133↓, CD44↓, Cyclin-D1↓, Caspase-8↑, Caspase-9↓, 原癌基因c-Myc↓, 醛脱氢酶1↓, 八聚体结合转录因子4 (octamer-binding transcription factor 4, Oct-4)↓, Nanog同源框蛋 白↓, PCNA↓, Bcl-2↓, Bax↑, Cleaved Caspase-3↑, Cleaved Caspase-9↑, 糖原合成酶激酶3β↑, β-catenin↓ | [48] |
| 膀胱癌 | 体外 | T24 | 0、20、40、60、80 μmol/L | 诱导凋亡 | Bcl-2↓, Bax↑, BH3结构域相互作用死亡激动剂↓, Fas细胞表面死亡受体↓, Fas配体↑, 死亡受体4↑, 死亡受体5↑, 肿瘤坏死因子相关凋亡诱导配体↑, pro-Caspase-9↓, pro-Caspase-8↓, Caspase3↑, 活化的Caspase-3↓, PARP↓, p-Akt↓, p-ERK↓, p-JNK↓, p-P38↓ | [42] |
| 乳腺癌 | 体外 | MDA-MB-231、MCF-7 | 20、40、60 μmol/L | 抑制增殖 | ADAM10↓, 活化的ADAM10↓, ADAM17↓, Jagged-1↓, Jagged-2↓ | [43] |
| 基底细胞癌 | 体外 | BCC | 0、25、50、100 μmol/L | 诱导凋亡 | p-P53↑, Bax↑, Bcl-2↓, Bcl-xl↓, γ-组蛋白H2AX↑, p-Bcl-2↑, 凋亡蛋白酶激活因子1↑, Caspase-9↑, Caspase-3↑, PARP↑, 胞质的细胞色素C (cytochrome C, Cyt C)↑, Caspase-4↑, 凋亡诱导因子↑ | [44] |
| 肝癌 | 体外 | HepG2 | 0、10、20、40、80、 160 µmol/L | 诱导凋亡 | LC3-II/I↑ | [45] |
), ArticleFig(id=1217883324958299058, tenantId=1146029695717560320, journalId=1149652044408987649, articleId=1217845639417873016, language=EN, label=Table 3, caption=
Effects and mechanism of DAS and other Allium sativum L. active ingredients in antitumor effects
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大蒜活性 成分 | 癌症 种类 | 体内/ 体外 | 细胞 | 剂量 | 作用机制 | 相关蛋白表达 | 参考 文献 |
| DAS | 骨肉瘤 | 体外 | MG63 | 10、20、40 g/L | 诱导凋亡, 抑制肿瘤血管生成 | mRNA↓, VEGF↓ | [9] |
| 甲状腺癌 | 体外 | ATC | 50、100、200、 400 μmol/L | 诱导凋亡 | Cyt c↑, Bax↑, Bcl-2↓, pro-Caspase-8↑, pro-Caspase-9↑, Cleaved Caspase-3↑, Cleaved Caspase-9↑, PARP↑ | [53] |
| 阿霍烯 | 胃癌 | 体内、 体外 | MGC-803 | 0、1、5、25、 125 μmol/L | 诱导凋亡, 抑制 增殖 | P53↓, RAS↓, ERK↓, Bcl-2, Akt↓, mTOR↓, PI3↓, Caspase-3↓, P53↑, Caspase-3↑, Bax↑ | [55] |
| 大蒜丁香的HEGCs | 肝癌 | 体外 | Hep3B | 50、100 µg/mL | 诱导凋亡 | Bcl-2↓, Bcl-xl↓, Caspase-9↑, Caspase-3↑, Caspase-8↑, GRP78↓ | [56] |
| BMDA | 肺癌 | 体内、 体外 | A549 | 40 mg/kg 1、5 μg/mL | 诱导凋亡和自噬, 抑制增殖与迁移 | Cleaved Caspase-9↑, 自噬相关蛋白5↓, LC3B↓, SRY盒转录因子2↓, p-Smad2↓, p-mTOR↓, p-Akt↓, p-ERK↓, PARP↑, Twist↓, 波形蛋白↓, 蜗牛家族转录因子↓, N-cadherin↓, Oct-4↓, E-cadherin↑, Kruppel样因子4↓, β-catenin↓, 贝林1蛋白↑ | [57] |
| 黑蒜提取物 | 乳腺癌 | 体外 | MCF-7 | 25、50、100 mg/mL | 诱导凋亡 | p-PI3K/PI3K↓, p-Akt/Akt↓, p-mTOR/mTOR↓ | [58] |
| MCF-7 、MDA-MB-361 | 0.025、0.05、 100 mg/mL | 诱导凋亡 | MCL-1↓, Bcl-2↓, Bax↑, Bcl-2相互作用细胞死亡介体↑ | [59] |
| 结肠癌 | 体外 | HT29 | 20、50、100 mg/mL | 诱导凋亡, 周期 阻滞 | 磷酸酶与张力蛋白同源物↑, Akt↓, p-Akt↓ | [60] |
n-反式铁酰 多巴胺(N-trans-feruloyloctopamine, FO) | 肝癌 | 体外 | Huh7、HCCLM3 | 2 mmol/L | 抑制侵袭 | p-NF-κB↑, p-P38↓, Akt↓/↑, p-Akt↓, ERK1/2↑, p-ERK1/2↑, Slug↓, 蜗牛家族转录因子↑, N-cadherin↓, E-cadherin ↑ | [61] |
| 2-丙烯-1-磺酸硫代酸S-2-丙烯基酯 | 肝癌 | 体外 | HepG2 | 20、40、80 μmol/L | 抑制脂质代谢 紊乱 | AMPK↓, p-AMPK↓, 亚精胺结合蛋白1↓, 固醇调节元件结合蛋白2↓, 磷酸化蛋白激酶A↓, 蛋白激酶A催化亚基α↓, 环磷酸腺苷反应元件结合蛋白(cAMP response element-binding protein, CREB)↓, p-CREB↑ | [62] |
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DAS及其他大蒜活性成分抗肿瘤的作用及机制
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大蒜活性 成分 | 癌症 种类 | 体内/ 体外 | 细胞 | 剂量 | 作用机制 | 相关蛋白表达 | 参考 文献 |
| DAS | 骨肉瘤 | 体外 | MG63 | 10、20、40 g/L | 诱导凋亡, 抑制肿瘤血管生成 | mRNA↓, VEGF↓ | [9] |
| 甲状腺癌 | 体外 | ATC | 50、100、200、 400 μmol/L | 诱导凋亡 | Cyt c↑, Bax↑, Bcl-2↓, pro-Caspase-8↑, pro-Caspase-9↑, Cleaved Caspase-3↑, Cleaved Caspase-9↑, PARP↑ | [53] |
| 阿霍烯 | 胃癌 | 体内、 体外 | MGC-803 | 0、1、5、25、 125 μmol/L | 诱导凋亡, 抑制 增殖 | P53↓, RAS↓, ERK↓, Bcl-2, Akt↓, mTOR↓, PI3↓, Caspase-3↓, P53↑, Caspase-3↑, Bax↑ | [55] |
| 大蒜丁香的HEGCs | 肝癌 | 体外 | Hep3B | 50、100 µg/mL | 诱导凋亡 | Bcl-2↓, Bcl-xl↓, Caspase-9↑, Caspase-3↑, Caspase-8↑, GRP78↓ | [56] |
| BMDA | 肺癌 | 体内、 体外 | A549 | 40 mg/kg 1、5 μg/mL | 诱导凋亡和自噬, 抑制增殖与迁移 | Cleaved Caspase-9↑, 自噬相关蛋白5↓, LC3B↓, SRY盒转录因子2↓, p-Smad2↓, p-mTOR↓, p-Akt↓, p-ERK↓, PARP↑, Twist↓, 波形蛋白↓, 蜗牛家族转录因子↓, N-cadherin↓, Oct-4↓, E-cadherin↑, Kruppel样因子4↓, β-catenin↓, 贝林1蛋白↑ | [57] |
| 黑蒜提取物 | 乳腺癌 | 体外 | MCF-7 | 25、50、100 mg/mL | 诱导凋亡 | p-PI3K/PI3K↓, p-Akt/Akt↓, p-mTOR/mTOR↓ | [58] |
| MCF-7 、MDA-MB-361 | 0.025、0.05、 100 mg/mL | 诱导凋亡 | MCL-1↓, Bcl-2↓, Bax↑, Bcl-2相互作用细胞死亡介体↑ | [59] |
| 结肠癌 | 体外 | HT29 | 20、50、100 mg/mL | 诱导凋亡, 周期 阻滞 | 磷酸酶与张力蛋白同源物↑, Akt↓, p-Akt↓ | [60] |
n-反式铁酰 多巴胺(N-trans-feruloyloctopamine, FO) | 肝癌 | 体外 | Huh7、HCCLM3 | 2 mmol/L | 抑制侵袭 | p-NF-κB↑, p-P38↓, Akt↓/↑, p-Akt↓, ERK1/2↑, p-ERK1/2↑, Slug↓, 蜗牛家族转录因子↑, N-cadherin↓, E-cadherin ↑ | [61] |
| 2-丙烯-1-磺酸硫代酸S-2-丙烯基酯 | 肝癌 | 体外 | HepG2 | 20、40、80 μmol/L | 抑制脂质代谢 紊乱 | AMPK↓, p-AMPK↓, 亚精胺结合蛋白1↓, 固醇调节元件结合蛋白2↓, 磷酸化蛋白激酶A↓, 蛋白激酶A催化亚基α↓, 环磷酸腺苷反应元件结合蛋白(cAMP response element-binding protein, CREB)↓, p-CREB↑ | [62] |
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