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| Lambertianic acid — a naturally occurring labdane-type diterpenoid carboxylic acid found in several conifer species, particularly Pinus koraiensis, Pinus lambertiana, and Platycladus orientalis. It is an experimental natural-product small molecule rather than an approved drug. The abbreviation LA is commonly used in the scientific literature, although the Nestronics product abbreviation is lamb. Lambertianic acid has reported anticancer, anti-inflammatory, anti-allergic, metabolic, and muscle-protective activities, but its therapeutic evidence remains predominantly cellular and preclinical. Its anticancer activity appears strongly context-dependent and involves coordinated effects on oxidative stress, AMPK signaling, cancer metabolism, STAT3/NF-κB survival signaling, androgen receptor signaling, and apoptosis. Primary mechanisms (ranked):
Bioavailability / PK relevance: Human pharmacokinetic parameters, oral bioavailability, plasma half-life, distribution, metabolism, and clinically achievable concentrations have not been adequately established. Lambertianic acid is a lipophilic diterpenoid and should therefore not be assumed to achieve the micromolar exposures used in cell-culture studies after ordinary dietary or oral exposure. No validated therapeutic dosing regimen exists. In-vitro vs systemic exposure relevance: Most anticancer experiments use approximately 10–200 µM lambertianic acid, depending on the model. Some signaling effects occur around 15–30 µM, whereas androgen-receptor prostate-cancer experiments used substantially higher concentrations, including approximately 100–200 µM. There is currently insufficient human PK evidence to demonstrate that these concentrations are systemically achievable. Normal-cell selectivity is also incompletely characterized; recent C2C12 studies found little cytotoxicity at 12.5–25 µM but measurable loss of viability at 50–100 µM. Clinical evidence status: Preclinical. Evidence consists primarily of cultured cancer cells with limited animal-supporting evidence from non-cancer metabolic studies. No established randomized clinical trial evidence, approved oncologic indication, validated human anticancer dose, or regulatory approval for lambertianic acid as a therapeutic agent was identified. Lambertianic Acid Mechanisms
P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| miR-134-5p - MicroRNA-134-5p Abbreviation: miR-134-5p, miR-134 Type: MicroRNA / post-transcriptional gene-expression regulator Function: miR-134-5p is a brain-enriched regulatory microRNA that suppresses target mRNAs involved in synaptic plasticity, neuronal signaling, proliferation, survival, and oncogenic pathways. Important reported targets and downstream pathways include CREB1, BDNF-associated signaling, KRAS, STAT5B, EGFR, and MAPK/ERK signaling. Cancer: ↓ Predominantly functions as a tumor-suppressive microRNA. Reduced miR-134-5p has been reported in multiple cancers, while restoration can inhibit proliferation, migration, invasion, metastasis, and oncogenic signaling. Reported targets include KRAS, STAT5B, EGFR, and other regulators of cell-cycle and survival pathways. Context-dependent effects have also been reported. Alzheimer's Disease: ↑ Increased miR-134-5p has been observed in Aβ-associated Alzheimer's disease models and is linked to impaired synaptic plasticity. miR-134-5p suppresses CREB1 and BDNF-related plasticity pathways, while inhibition of miR-134-5p can restore long-term potentiation and synaptic tagging/capture in experimental Alzheimer's disease conditions. Favorable Direction in Alzheimer's Disease: ↓ miR-134-5p activity is generally favorable because it can restore CREB1/BDNF signaling and improve synaptic plasticity. |
| 8151- | lamb, | Suppression of STAT3 Phosphorylation and RelA/p65 Acetylation Mediated by MicroRNA134 Plays a Pivotal Role in the Apoptotic Effect of Lambertianic Acid |
| - | in-vitro, | BC, | MCF7 | - | in-vitro, | Pca, | DU145 | - | in-vitro, | Pca, | PC3 | - | in-vitro, | BC, | MDA-MB-231 |
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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