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  2. Chlorogenic Acid: Recent Advances on Its Dual Role as a Food Additive and a Nutraceutical against Metabolic Syndrome
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  3. Enzymatic synthesis of chlorogenic acid glucoside using dextransucrase and its physical and functional properties
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  4. Chlorogenic acid induces apoptosis to inhibit inflammatory proliferation of IL-6-induced fibroblast-like synoviocytes through modulating the activation of JAK/STAT and NF-κB signaling pathways.
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  5. Chlorogenic acid regulates apoptosis and stem cell marker-related gene expression in A549 human lung cancer cells.
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  6. Antiproliferative and apoptotic effect of Morus nigra extract on human prostate cancer cells
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  7. Apoptosis in human hepatoma HepG2 cells induced by the phenolics of Tetrastigma hemsleyanum leaves and their antitumor effects in H22 tumor-bearing mice
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  8. Effects of chlorogenic acid on adenine nucleotides hydrolyzing enzyme activities and expression in platelets of rats experimentally demyelinated with ethidium bromide
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  9. Chlorogenic Acid and Its Microbial Metabolites Exert Anti-Proliferative Effects, S-Phase Cell-Cycle Arrest and Apoptosis in Human Colon Cancer Caco-2 Cells
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  10. Depletion of reactive oxygen species induced by chlorogenic acid triggers apoptosis-like death in Escherichia coli
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  11. Chlorogenic Acid Improves the Regorafenib Effects in Human Hepatocellular Carcinoma Cells
    Maria Refolo et al, 2018, IJMS CrossRef
  12. Comparison of the Active Compositions between Raw and Processed Epimedium from Different Species
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  13. Overexpression of and RNA interference with hydroxycinnamoyl-CoA quinate hydroxycinnamoyl transferase affect the chlorogenic acid metabolic pathway and enhance salt tolerance in Taraxacum antungense Kitag
    Qun Liu et al, 2018, Phytochemistry Letters CrossRef
  14. Chlorogenic acid against palmitic acid in endoplasmic reticulum stress-mediated apoptosis resulting in protective effect of primary rat hepatocytes
    Yong Zhang et al, 2018, Lipids Health Dis CrossRef
  15. Chlorogenic acid inhibits osteosarcoma carcinogenesis via suppressing the STAT3/Snail pathway
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  16. Chlorogenic acid relieves lead-induced cognitive impairments and hepato-renal damage via regulating the dysbiosis of the gut microbiota in mice
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  18. Chemopreventive and Anticancer Activities of Bacopa Monnieri Extracted from Artificial Digestive Juices
    Paulina Koczurkiewicz et al, 2017, Natural Product Communications CrossRef
  19. In-silico design, synthesis, ADMET studies and biological evaluation of novel derivatives of Chlorogenic acid against Urease protein and H. Pylori bacterium
    Ritu Kataria et al, 2019, BMC Chemistry CrossRef
  20. Cytotoxic profile activities of ethanolic and methanolic extracts of chicory plant (Cichorium intybus L.)
    Abeer S. Kandil et al, 2019, Journal of Radiation Research and Applied Sciences CrossRef
  21. Chlorogenic Acid Protects against Atherosclerosis in ApoE−/− Mice and Promotes Cholesterol Efflux from RAW264.7 Macrophages
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  22. Development of an LC-MS/MS method for quantitative analysis of Chlorogenic acid in human plasma and its application to a pharmacokinetic study in Chinese patients with advanced solid tumor
    Fen Yang et al, 2019, Journal of Pharmaceutical and Biomedical Analysis CrossRef
  23. Chlorogenic acid inhibits hypoxia-induced angiogenesis via down-regulation of the HIF-1α/AKT pathway
    Jin Ju Park et al, 2015, Cell Oncol. CrossRef
  24. Multi-targeted potential of Pittosporum senacia Putt.: HPLC-ESI-MSn analysis, in silico docking, DNA protection, antimicrobial, enzyme inhibition, anti-cancer and apoptotic activity
    Mohamad Fawzi Mahomoodally et al, 2019, Computational Biology and Chemistry CrossRef
  25. Chlorogenic acid and luteolin synergistically inhibit the proliferation of interleukin-1β-induced fibroblast-like synoviocytes through regulating the activation of NF-κB and JAK/STAT-signaling pathways
    Lixia Lou et al, 2015, Immunopharmacology and Immunotoxicology CrossRef
  26. Chlorogenic acid protects against cholestatic liver injury in rats
    Duohu Wu et al, 2015, Journal of Pharmacological Sciences CrossRef
  27. Coffee provides a natural multitarget pharmacopeia against the hallmarks of cancer
    François Gaascht et al, 2015, Genes Nutr CrossRef
  28. Synergic application of spectroscopic and theoretical methods to the chlorogenic acid structure elucidation
    Svetlana Marković et al, 2016, Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy CrossRef
  29. Morus RubraExtract Induces Cell Cycle Arrest and Apoptosis in Human Colon Cancer Cells Through Endoplasmic Reticulum Stress and Telomerase
    Selim Demir et al, 2017, Nutrition and Cancer CrossRef
  30. Chlorogenic acid activates ERK1/2 and inhibits proliferation of osteosarcoma cells
    Luigi Sapio et al, 2019, J Cell Physiol CrossRef
  31. Chlorogenic acid potentiates antitumor effect of doxorubicin through upregulation of death receptors in solid Ehrlich carcinoma model in mice
    Nesma A. Abd Elrazik et al, 2019, Egyptian Journal of Basic and Applied Sciences CrossRef
  32. Chlorogenic acid inhibits esophageal squamous cell carcinoma growth in vitro and in vivo by downregulating the expression of BMI1 and SOX2
    Yun Zhan et al, 2020, Biomedicine & Pharmacotherapy CrossRef
  33. Breaking the Barrier of Cancer through Papaya Extract and their Formulation
    Sumana Saha et al, 2019, ACAMC CrossRef
  34. Antibacterial activity and action mode of chlorogenic acid against Salmonella Enteritidis, a foodborne pathogen in chilled fresh chicken
    Zhilan Sun et al, 2020, World J Microbiol Biotechnol CrossRef
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  36. Cytoprotective effect of chlorogenic acid against hydrogen peroxide-induced oxidative stress in MC3T3-E1 cells through PI3K/Akt-mediated Nrf2/HO-1 signaling pathway
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  37. Decaffeinated coffee and its benefits on health: focus on systemic disorders
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  38. FT-NIR spectroscopy and RP-HPLC combined with multivariate analysis reveals differences in plant cell suspension cultures of Thevetia peruviana treated with salicylic acid and methyl jasmonate
    Dary Mendoza et al, 2020, Biotechnology Reports CrossRef
  39. Overexpression of IbPAL1 promotes chlorogenic acid biosynthesis in sweetpotato
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  40. Stone Fruit as Biofactories of Phytochemicals With Potential Roles in Human Nutrition and Health
    María Valeria Lara et al, 2020, Front. Plant Sci. CrossRef
  41. Effect of chlorogenic acid on alleviating inflammation and apoptosis of IPEC-J2 cells induced by deoxyniyalenol
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  42. Chlorogenic acid induces 4T1 breast cancer tumor's apoptosis via p53, Bax, Bcl‐2, and caspase‐3 signaling pathways in BALB/c mice
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  43. Chlorogenic acid depresses cellular bioenergetics to suppress pancreatic carcinoma through modulating c‐Myc‐TFR1 axis
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  44. Insights into Forsythia Honeysuckle (Lianhuaqingwen) Capsules: A Chinese Herbal Medicine Repurposed for COVID-19 Pandemic
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  45. Chlorogenic acid co‐administration abates tamoxifen‐mediated reproductive toxicities in male rats: An experimental approach
    Solomon E. Owumi et al, 2021, J Food Biochem CrossRef
  46. Chlorogenic acid abates oxido-inflammatory and apoptotic responses in the liver and kidney of Tamoxifen-treated rats
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  47. Comprehensive Evaluation of Late Season Peach Varieties (Prunus persica L.): Fruit Nutritional Quality and Phytochemicals
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  49. Molecular Mechanisms through Which Short-Term Cold Storage Improves the Nutritional Quality and Sensory Characteristics of Postharvest Sweet Potato Tuberous Roots: A Transcriptomic Study
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  50. Hesperidin and Chlorogenic Acid Synergistically Inhibit the Growth of Breast Cancer Cells via Estrogen Receptor/Mitochondrial Pathway
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  51. Chlorogenic acid: Potential source of natural drugs for the therapeutics of fibrosis and cancer
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  53. Tyrosinase-Based Biosensor—A New Tool for Chlorogenic Acid Detection in Nutraceutical Formulations
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  54. Evaluation of the antifungal effect of chlorogenic acid against strains of Candida spp. resistant to fluconazole: apoptosis induction and in silico analysis of the possible mechanisms of action
    Cecília Rocha da Silva et al, 2022 CrossRef
  55. Pharmacological Effects of Polyphenol Phytochemicals on the Intestinal Inflammation via Targeting TLR4/NF-κB Signaling Pathway
    Caiyun Yu et al, 2022, IJMS CrossRef
  56. Chlorogenic acid promotes angiogenesis and attenuates apoptosis following cerebral ischaemia-reperfusion injury by regulating the PI3K-Akt signalling
    Yong Fan et al, 2022, Pharmaceutical Biology CrossRef
  57. Protective effects of chlorogenic acid on inflammatory responses induced by Staphylococcus aureus and milk protein synthesis in bovine mammary epithelial cells
    Qiang Ji et al, 2022, Microbial Pathogenesis CrossRef
  58. Evaluation of the membrane damage mechanism of chlorogenic acid against Bacillus cereus and Micrococcus luteus a simulation study on antibacterial growth in food
    Lu Tian et al, 2022, Journal of Food Safety CrossRef
  59. Recent updates on anticancer mechanisms of polyphenols
    Eshita Sharma et al, 2022, Front. Cell Dev. Biol. CrossRef
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  62. The anti-leukemic activity of a luteolin-apigenin enriched fraction from an edible and ethnomedicinal plant, Elsholtzia stachyodes, is exerted through an ER stress/autophagy/cell cycle arrest/ apoptotic cell death signaling axis
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  64. In Vitro and In Silico Study on the Impact of Chlorogenic Acid in Colorectal Cancer Cells: Proliferation, Apoptosis, and Interaction with β-Catenin and LRP6
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  67. Chlorogenic Acid Inhibits Rahnella aquatilis KM25 Growth and Proteolytic Activity in Fish-Based Products
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  69. Chlorogenic acid induces apoptosis and cell-cycle arrest in colorectal cancer cells
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  70. Composition and Bioactivity of Chlorogenic Acids in Vegetable and Conventional Sweet Potato Vine Tips
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  71. Chlorogenic Acid Alleviated AFB1-Induced Hepatotoxicity by Regulating Mitochondrial Function, Activating Nrf2/HO-1, and Inhibiting Noncanonical NF-κB Signaling Pathway
    Qianqian Wang et al, 2023, Antioxidants CrossRef
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  73. Chlorogenic acid-optimized nanophytovesicles: a novel approach for enhanced permeability and oral bioavailability
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  75. Effects of Cooking Methods on Caffeoylquinic Acids and Radical Scavenging Activity of Sweet Potato
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  76. Extract of Scutellaria baicalensis and Lonicerae Flos Improves Growth Performance, Antioxidant Capacity, and Intestinal Barrier of Yellow-Feather Broiler Chickens Against Clostridium Perfringens
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  77. The Impact of Coffee and Its Selected Bioactive Compounds on the Development and Progression of Colorectal Cancer In Vivo and In Vitro.
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  78. Chlorogenic Acid as a Potential Therapeutic Agent for Cholangiocarcinoma
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