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| lemongrass extract/ Cymbopogon citratus / lemongrass essential oil
Promising in vitro and limited animal anticancer evidence, especially via ROS-mediated apoptosis and mitochondrial/cell-cycle effects. Citral likely is main active ingredient.
Lemongrass Extract/Citral — Lemongrass preparations are derived principally from the leaves of Cymbopogon citratus and may be prepared as aqueous or ethanolic extracts or as volatile essential oil. Citral (CIT) is an acyclic monoterpene aldehyde and is usually the dominant constituent of lemongrass essential oil; chemically, citral is a mixture of the geometric isomers geranial (citral A) and neral (citral B). The database abbreviation LGE is appropriate for lemongrass extract, while CIT is preferable when the isolated compound is specifically studied. Essential-oil preparations can contain roughly 60–80% citral, but composition varies substantially with cultivar, plant tissue, extraction method, and geographic origin. Whole aqueous or ethanolic lemongrass extracts are not pharmacologically equivalent to purified citral because they contain additional terpenes and nonvolatile phytochemicals. Primary mechanisms (ranked):
Bioavailability / PK relevance: Citral is lipophilic, volatile, chemically unstable, and rapidly metabolized. Animal disposition studies indicate extensive gastrointestinal absorption but rapid conversion to oxidized, reduced, and conjugated metabolites, with little persistence of unchanged citral in circulation and predominantly urinary elimination of metabolites. Thus, good absorption does not imply high systemic exposure to intact citral. Encapsulation with polymers, cyclodextrins, lipid systems, or nanoparticles has been investigated to improve stability and effective exposure. Human pharmacokinetic data defining circulating intact citral after therapeutic oral dosing remain limited. In-vitro vs systemic exposure relevance: Many anticancer experiments use citral concentrations in the tens to hundreds of micromolar range, commonly about 20–200 µM, or relatively concentrated lemongrass extracts. These exposures cannot presently be assumed to be attainable as sustained concentrations of intact citral in human plasma after tea, food, or conventional oral supplementation because parent citral undergoes very rapid metabolism. Whole-extract studies also cannot be quantitatively translated into equivalent systemic citral exposure. Consequently, the strongest mechanistic findings should be considered preclinical and concentration-dependent. Clinical evidence status: Preclinical. Anticancer activity is supported by numerous cancer-cell studies and several animal xenograft experiments using citral or lemongrass extracts. Chemosensitization is also preclinical. Human studies of lemongrass tea and topical essential oil provide limited tolerability and non-oncology clinical information, but there is no established human anticancer efficacy and no approved oncology indication for citral or lemongrass extract. Citral is permitted as a food flavoring agent and is listed by the FDA under food-use regulations; this regulatory status does not establish therapeutic anticancer efficacy. Safety is concentration- and formulation-dependent: concentrated citral and essential oils can be cytotoxic or genotoxic in cultured normal cells, while some cancer models demonstrate relative tumor-cell selectivity. Mechanistic Effects of Lemongrass Extract and Citral
TSF: P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| Also known as CP32. Cysteinyl aspartate specific proteinase-3 (Caspase-3) is a common key protein in the apoptosis and pyroptosis pathways, and when activated, the expression level of tumor suppressor gene Gasdermin E (GSDME) determines the mechanism of tumor cell death. As a key protein of apoptosis, caspase-3 can also cleave GSDME and induce pyroptosis. Loss of caspase activity is an important cause of tumor progression. Many anticancer strategies rely on the promotion of apoptosis in cancer cells as a means to shrink tumors. Crucial for apoptotic function are executioner caspases, most notably caspase-3, that proteolyze a variety of proteins, inducing cell death. Paradoxically, overexpression of procaspase-3 (PC-3), the low-activity zymogen precursor to caspase-3, has been reported in a variety of cancer types. Until recently, this counterintuitive overexpression of a pro-apoptotic protein in cancer has been puzzling. Recent studies suggest subapoptotic caspase-3 activity may promote oncogenic transformation, a possible explanation for the enigmatic overexpression of PC-3. Herein, the overexpression of PC-3 in cancer and its mechanistic basis is reviewed; collectively, the data suggest the potential for exploitation of PC-3 overexpression with PC-3 activators as a targeted anticancer strategy. Caspase 3 is the main effector caspase and has a key role in apoptosis. In many types of cancer, including breast, lung, and colon cancer, caspase-3 expression is reduced or absent. On the other hand, some studies have shown that high levels of caspase-3 expression can be associated with a better prognosis in certain types of cancer, such as breast cancer. This suggests that caspase-3 may play a role in the elimination of cancer cells, and that therapies aimed at activating caspase-3 may be effective in treating certain types of cancer. Procaspase-3 is a apoptotic marker protein. Prognostic significance: • High Cas3 expression: Associated with good prognosis and increased sensitivity to chemotherapy in breast, gastric, lung, and pancreatic cancers. • Low Cas3 expression: Linked to poor prognosis and increased risk of recurrence in colorectal, hepatocellular carcinoma, ovarian, and prostate cancers. |
| 8199- | LGE, | Citral is a new inducer of caspase-3 in tumor cell lines |
| 8195- | LGE, | In Vivo Anti-Tumor Effects of Citral on 4T1 Breast Cancer Cells via Induction of Apoptosis and Downregulation of Aldehyde Dehydrogenase Activity |
| - | vitro+vivo, | BC, | 4T1 |
| 8187- | LGE, | Modulation of oxidative stress and subsequent induction of apoptosis and endoplasmic reticulum stress allows citral to decrease cancer cell proliferation |
| - | in-vitro, | BC, | 4T1 | - | in-vitro, | Ovarian, | OVCAR-3 | - | in-vitro, | Ovarian, | SKOV3 |
| 8183- | LGE, | Antiproliferative and apoptosis inducing effects of citral via p53 and ROS-induced mitochondrial-mediated apoptosis in human colorectal HCT116 and HT29 cell lines |
| - | in-vitro, | CRC, | HCT116 | - | in-vitro, | CRC, | HT-29 |
Query results interpretion may depend on "conditions" listed in the research papers. Such Conditions may include : -low or high Dose -format for product, such as nano of lipid formations -different cell line effects -synergies with other products -if effect was for normal or cancerous cells
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