Component
Glioblastoma xenograft t6A and growth in mice
Context-specific entity; species, compartment and exposure are stated on each claim.
1 recorded relationships. Experimental role, claim status and evidence remain attached to each record.
How nutrients influence it
Every nutrient with a recorded effect on this component, credited to the nutrient that acted rather than the chapter that recorded it. Open a nutrient to see the findings and the conditions they were measured under.
Other things that act on it
Enzymes, hormones, genes, and other components with a recorded effect. These are not nutrients, so they do not count toward the arrows above. Each finding names the chapter that recorded it.
How nutrients reach it in more than one step
Chains of two or more recorded steps that end here, grouped by the nutrient they start from. Each step is a separate finding, so a chain is a route a mechanism could take, not proof that it does.
Tracing routes…
What it does
Every recorded relationship this component is part of, grouped by its role. Plain wording comes first; the technical statement follows.
What acts on it
Dietary threonine restriction reduced tumor t6A and slowed glioblastoma xenograft growth, augmenting tested chemotherapy and anti-mitotic therapy.
Experimental context and source evidence
- availability_state
- nutrient_deficiency Imported condition classification; unverified.
- evidence_access
- Primary abstract
- experimental_model
- Mouse xenografts linked to human glioblastoma stem-cell experiments.
- limitations
- This study does not establish a safe or effective threonine-restricted diet for patients. Exact dietary protocol and drug schedules require full-text clinical translation review.
- nutrient_topic
- L-Threonine collection; species, compartment, exposure, co-substrates and manipulation remain explicit. · L-Threonine
- plain_language
- Tumor dependency led to an experimental dietary intervention in animals.
- primary_references
- Threonine fuels glioblastoma through YRDC-mediated codon-biased translational reprogramming. · 2024 · https://pubmed.ncbi.nlm.nih.gov/38519786/ · DOI 10.1038/s43018-024-00748-7
- trigger_kind
- nutrient_deficiency Imported condition classification; unverified.
L-Threonine: translation, intestinal barrier, metabolism and cross-nutrient mechanisms (2026-09-19) · lines 370–376
AI-assisted research curation; primary references, access levels and experimental limitations individually identified. Not publisher full text. · supports · Mouse xenografts linked to human glioblastoma stem-cell experiments. · source_derived_draft · unverified_draft
## l-threonine-tumor-threonine-restriction Tumor dependency led to an experimental dietary intervention in animals. Dietary threonine restriction reduced tumor t6A and slowed glioblastoma xenograft growth, augmenting tested chemotherapy and anti-mitotic therapy. Model: Mouse xenografts linked to human glioblastoma stem-cell experiments. Limitations: This study does not establish a safe or effective threonine-restricted diet for patients. Exact dietary protocol and drug schedules require full-text clinical translation review. Evidence access: Primary abstract Threonine fuels glioblastoma through YRDC-mediated codon-biased translational reprogramming. · 2024 · https://pubmed.ncbi.nlm.nih.gov/38519786/ · DOI 10.1038/s43018-024-00748-7
Complete structured claim and evidence
The events it takes part in
A mechanism often involves more than two components. These are the full events, with every participant and its role.
Situations it appears in
Low-supply and faulty-machinery situations recorded in the chapters where this component plays a part.
In the sources
Preserved passages that mention this component, quoted exactly. Open one to read it in context.
Open hypotheses
Proposed ideas that involve this component. They are labeled as hypotheses and do not change any recorded statement.
This is a research prototype built from draft material. It is not medical advice, and its statements still await verification against the original studies.