| Features: Bacteria | ||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
| Lactobacillus acidophilus: Gram-positive, homofermentative, anaerobic microbe Lactobacillus johnsonii: probiotic bacteria found in the human body and fermented foods. Lactobacillus Plantarum: probiotic bacterium that may help with inflammation, blood sugar Lactobacillus crispatus Lactobacillus rhamnosus Lactobacillus — A group of Gram-positive, non-spore-forming, lactic-acid-producing bacteria widely present in fermented foods and in the human gastrointestinal and female reproductive microbiota. Many strains are used as probiotics, but biological and anticancer effects are highly species- and strain-specific rather than properties of the genus as a whole. Formal classification is a live microbial/probiotic modality rather than a conventional small-molecule drug. Common shorthand is Lactobacillus spp. or lactobacilli. Following the 2020 taxonomic revision, several historically named Lactobacillus species were reassigned; for example, Lactobacillus plantarum is now Lactiplantibacillus plantarum and Lactobacillus rhamnosus is now Lacticaseibacillus rhamnosus, whereas L. acidophilus, L. johnsonii, and L. crispatus remain within Lactobacillus. Anticancer evidence is strongest for modulation of the intestinal or cervicovaginal microenvironment and host immunity, with direct tumor-cell effects largely preclinical. Primary mechanisms (ranked):
Bioavailability / PK relevance: Classical plasma pharmacokinetics are not applicable to live Lactobacillus probiotics. Relevant exposure depends on viable CFU delivered, strain survival through storage and gastric/bile conditions, delivery site, mucosal adherence, transient colonization, baseline microbiota and production of local metabolites. Systemic bacterial exposure is neither required nor desirable. Some microbial metabolites can enter host circulation, but their exposure differs substantially among strains and individuals. In-vitro vs systemic exposure relevance: Many anticancer experiments expose cultured tumor cells directly to concentrated bacterial supernatants, extracts, purified metabolites or live organisms. These conditions cannot be equated with plasma concentrations after oral probiotic administration. Effects should therefore be interpreted primarily as local gastrointestinal, mucosal or mechanistic evidence unless corresponding metabolite exposure has been demonstrated in vivo. Clinical evidence status: Preclinical + small human/RCT adjunct evidence. Multiple randomized studies in colorectal-cancer surgery have reported improvements in intestinal barrier function, microbiota composition, bowel recovery or postoperative infectious complications from probiotic or synbiotic mixtures containing Lactobacillus strains. Human evidence does not establish Lactobacillus as a tumor-eradicating therapy or demonstrate improved cancer-specific survival. It should be considered a strain-specific supportive or investigational adjunct rather than an anticancer treatment. Use of live probiotics warrants caution in severely immunocompromised patients, critically ill patients and patients with central venous catheters because rare Lactobacillus bacteremia or sepsis has been documented. Lactobacillus Mechanistic Profile
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| T-cadherin, also known as cadherin 13 (CDH13), is a member of the cadherin family of cell adhesion molecules. T-cadherin is often overexpressed in certain types of cancer, including breast, prostate, and ovarian cancer. This overexpression has been associated with tumor progression, metastasis, and poor patient outcomes. |
| 8112- | LA, | Metabolomics and proteomics reveal the inhibitory effect of Lactobacillus crispatus on cervical cancer |
| - | in-vitro, | Cerv, | SiHa |
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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