ID: h-1775578a
Hypothesis

Temporal TFEB Modulation Therapy

Temporal TFEB Modulation Therapy starts from the claim that modulating TFEB within the disease context of neurodegeneration can redirect a disease-relevant process.
🧬 TFEB🩺 neurodegeneration🎯 Composite 61%💱 $0.54▼20.6%proposed
EvidencePending (0%)📖 11 cit🗣 3 debates 16 support 2 oppose
✓ All Quality Gates Passed
Mechanistic 0.40 (15%) Evidence 0.30 (15%) Novelty 0.80 (12%) Feasibility 0.20 (12%) Impact 0.70 (12%) Druggability 0.20 (10%) Safety 0.30 (8%) Competition 0.60 (6%) Data Avail. 0.40 (5%) Reproducible 0.30 (5%) KG Connect 0.88 (8%) 0.609 composite

🧪 Overview

Mechanistic Overview


Temporal TFEB Modulation Therapy starts from the claim that modulating TFEB within the disease context of neurodegeneration can redirect a disease-relevant process. The original description reads: "## Mechanistic Overview Temporal TFEB Modulation Therapy starts from the claim that modulating TFEB within the disease context of neurodegeneration can redirect a disease-relevant process. The original description reads: "## Temporal TFEB Modulation Therapy

...

🧬 Mechanism

🧬 Curated Mechanism Pathway

Curated pathway from expert analysis

graph TD
    A["Chronic Neuronal<br/>Stress"] --> B["TFEB Nuclear<br/>Translocation"]
    B --> C["Autophagy Gene<br/>Transcription"]
    B --> D["Lysosomal Biogenesis<br/>Program"]
    C --> E["LC3-II and p62<br/>Expression"]
    D --> F["LAMP1 and Cathepsin<br/>Upregulation"]
    E --> G["Autophagosome<br/>Formation"]
    F --> H["Lysosomal Function<br/>Enhancement"]
    G --> I["Protein Aggregate<br/>Clearance"]
    H --> I
    I --> J["Cellular Proteostasis<br/>Restoration"]
    A --> K["Mitochondrial<br/>Dysfunction"]
    K --> L["mTORC1<br/>Inhibition"]
    L --> B
    J --> M["Neuronal Survival<br/>and Function"]
    N["Temporal TFEB<br/>Modulation Therapy"] --> B
    O["Disease Progression<br/>Slowing"] --> P["Clinical Outcome<br/>Measures"]
    M --> O

    classDef normal fill:#4fc3f7,stroke:#333,stroke-width:2px,color:#000
    classDef therapeutic fill:#81c784,stroke:#333,stroke-width:2px,color:#000
    classDef pathology fill:#ef5350,stroke:#333,stroke-width:2px,color:#000
    classDef outcome fill:#ffd54f,stroke:#333,stroke-width:2px,color:#000
    classDef molecular fill:#ce93d8,stroke:#333,stroke-width:2px,color:#000

    class B,C,D,E,F,G,H,I,J,L,M normal
    class N therapeutic
    class A,K pathology
    class O,P outcome
    class B molecular

⚖️ Evidence

⚖️ Evidence Matrix16 supports2 contradicts
Supports
TFEB overexpression prevents neurodegeneration in synucleinopathies when applied early
Supports
Excessive autophagy can cause neuronal death through lysosomal membrane permeabilization
Supports
Endothelial Transcription Factor EB Protects Against Doxorubicin-Induced Endothelial Toxicity and Cardiac Dysfunction.
Circulation2026PMID:41410033
Supports
TFE3-Rearranged and TFEB-Altered Renal Cell Carcinomas: Molecular Landscape and Therapeutic Advances.
Cancers (Basel)2026PMID:41899560
Supports
Electroacupuncture regulates neuronal ferroptosis and ferritinophagy through lysosomal-mediated TFEB activation in cerebral ischemia-reperfusion.
J Cereb Blood Flow Metab2026PMID:41272418
Supports
Mammalian lipophagy: process and function.
Autophagy2026PMID:41681129
Supports
Proteotoxic stress triggers TFEB- and TFE3-mediated autophagy and lysosomal biogenesis via non-canonical MTORC1 inactivation.
Autophagy2026PMID:41450115
Supports
Lysosomal homeostasis at the crossroads of neurodegeneration.
J Clin Invest2026PMID:41919495
Supports
Organelle dysfunction and TNT-mediated aggregate spreading in neurodegeneration.
Physiology (Bethesda)2026PMID:41543365
Supports
Targeting microglial inflammation in Parkinson's disease: irisin activates PAFAH1B1-RAGE ubiquitination and TFEB-dependent autophagy to alleviate neurodegeneration.
Commun Biol2026PMID:41520051
Supports
Microglia TFEB activation attenuates Alzheimer's disease pathology by enhancing autophagy-lysosomal function.
J Neuroinflammation2026PMID:41673711
Supports
Transcription Factor EB Drives Thrombospondin-1 Expression to Dampen Focal-adhesion Signaling and Limit Post-infarction Cardiac Fibrosis.
Curr Gene Ther2026PMID:41935359
Supports
Modulation of the AMPK/TFEB Axis by Ezetimibe Attenuates Neuroinflammatory, Oxidative Stress, and Neurotransmitter Dysregulation in Naloxone-precipitated Tramadol Withdrawal in Mice.
J Neuroimmune Pharmacol2026PMID:41944914
Supports
NIBV Induces Incomplete Autophagy via AMPK-TFEB, Causing Kidney Injury in Chicks.
Adv Sci (Weinh)2026PMID:41955488
Supports
Cabozantinib activates TFEB-mediated autophagy to exert anti-tumor effects in hepatocellular carcinoma.
In Vitro Cell Dev Biol Anim2026PMID:41951909
Supports
TFEB has a protective effect in cisplatin induced AKI through regulating exosome-MVBs pathway.
Int Immunopharmacol2026PMID:41946126
Contradicts
The core assumption that TFEB transitions from beneficial to harmful lacks robust temporal evidence
Contradicts
Many studies show sustained TFEB activation is protective throughout disease progression
📖 Linked Papers (9)Export BibTeX ↗
3 figures
Figure 1
Figure 1
Mechanisms of lysosomal membrane repair. ( A ) The ESCRT machinery, recruited by galectin-3 (Gal3) and ALIX, polymerizes at rupture sites to reseal small pores....
Figure 2
Figure 2
Autophagy and lysophagy pathways. Schematic overview of canonical autophagy and selective lysophagy. Under basal or stress conditions, cytoplasmic material, dam...
Figure 1
Figure 1
Integrated mechanistic model of MiT-RCC driven by TFE3 and TFEB alterations. In TFE3 -rearranged RCC, most fusions join a 5′ partner gene to the 3′ portion...
Figure 2
Figure 2
Multistep and multiscale model of MiT family-driven renal cell carcinoma. Schematic overview linking initiating genetic events ( TFE3 gene fusions or TFEB ge...
Figures
Figures
Figures available at source paper (no open-access XML found).
Figures
Figures
Figures available at source paper (no open-access XML found).
Figures
Figures
Figures available at source paper (no open-access XML found).

🏥 Translation

🧬 3D Protein Structure — TFEB

No curated PDB or AlphaFold mapping for TFEB yet. Search RCSB →

🧠 GTEx v10 Brain ExpressionJSON

Median TPM across 13 brain regions for TFEB from GTEx v10.

Spinal cord cervical c-127.0 Cerebellum11.3median TPM (GTEx v10)

💉 Clinical Trials

No clinical trials data linked to this hypothesis yet.

No curated ClinVar variants loaded for this hypothesis.

Run scripts/backfill_clinvar_variants.py to fetch P/LP/VUS variants.

🔍 Search ClinVar for TFEB →

No DepMap CRISPR Chronos data found for TFEB.

Run python3 scripts/backfill_hypothesis_depmap.py to populate.

💰 Estimated Development
Cost
$0
Timeline
5.5 years

🏆 Tournament

🏆 Arenas / Elo

No arena matches recorded yet. Browse Arenas →

📊 Market Indicators

7d Trend
Falling
7d Momentum
▼ 1.2%
Volatility
Low
0.0045
Events (7d)
3
Price History
▼20.6%

💾 Resource Usage

LLM Tokens
15,664
$0.0940
Total Cost
$0.0940

🔮 Predictions

🔎 Predictions vs Observations2 predictions · 0 with recorded observations
PredictionPredictedObservedStatusConf
IF individuals with prodromal Alzheimer's disease (CSF biomarkers positive, CDR 0.5) are stratified by TFEB expression levels in peripheral blood mononuclear cells at baseline and then treated with a Lower annual hippocampal atrophy rate and slower cognitive decline trajectories in the high-TFEB expression stratum compared to low-TFEB expression stratum afte— no observation —pending0.55
IF TFEB is pharmacologically activated using a selective TFEB agonist (e.g., SRT1720 or related compound) administered daily for 12 weeks in APP/PS1 transgenic mice beginning at 3 months of age (earlyIncreased autophagy flux markers (LC3-II/LC3-I ratio), elevated lysosomal biogenesis markers (LAMP2), reduced amyloid plaque burden, and improved spatial memory— no observation —pending0.65
🔮 Falsifiable Predictions (2)
pendingconf 65%
IF TFEB is pharmacologically activated using a selective TFEB agonist (e.g., SRT1720 or related compound) administered daily for 12 weeks in APP/PS1 transgenic mice beginning at 3 months of age (early intervention), THEN we will observe a statistically significant increase in cortical LC3-II/LC3-I r
Predicted outcome: Increased autophagy flux markers (LC3-II/LC3-I ratio), elevated lysosomal biogenesis markers (LAMP2), reduced amyloid plaque burden, and improved spat
Falsification: If TFEB agonist treatment produces no significant change in LC3-II/LC3-I ratio (p>0.05), LAMP2 expression, Aβ42 levels, or behavioral performance compared to vehicle controls, the hypothesis that TFEB
pendingconf 55%
IF individuals with prodromal Alzheimer's disease (CSF biomarkers positive, CDR 0.5) are stratified by TFEB expression levels in peripheral blood mononuclear cells at baseline and then treated with a TFEB-enhancing intervention for 24 months, THEN participants with higher baseline TFEB expression wi
Predicted outcome: Lower annual hippocampal atrophy rate and slower cognitive decline trajectories in the high-TFEB expression stratum compared to low-TFEB expression st
Falsification: If participants with high baseline TFEB expression show equivalent or greater rates of hippocampal atrophy and cognitive decline compared to low-TFEB expression participants (p>0.05 for group × time i

📖 References (6)

  1. Transcription factor EB overexpression prevents neurodegeneration in experimental synucleinopathies.
    JCI insight (2020)
  2. PLA2G4A/cPLA2-mediated lysosomal membrane damage leads to inhibition of autophagy and neurodegeneration after brain trauma.
    ["Sarkar Chinmoy" et al.. Autophagy (2020)
  3. Endothelial Transcription Factor EB Protects Against Doxorubicin-Induced Endothelial Toxicity and Cardiac Dysfunction.
    Du W et al.. Circulation (2026)
  4. TFE3-Rearranged and TFEB-Altered Renal Cell Carcinomas: Molecular Landscape and Therapeutic Advances.
    Portu M et al.. Cancers (Basel) (2026)
  5. Electroacupuncture regulates neuronal ferroptosis and ferritinophagy through lysosomal-mediated TFEB activation in cerebral ischemia-reperfusion.
    Tang B et al.. J Cereb Blood Flow Metab (2026)
  6. Mammalian lipophagy: process and function.
    Zhao R et al.. Autophagy (2026)
Metadatasource: v1_phase_c_backfill · origin_type: gap_debate
sourcev1_phase_c_backfill
origin_typegap_debate
_schema_version1
📊 Evidence Profile
Evidence Balance
+0%
Certainty
0%
Debates
0
Incoming
0
Outgoing
0
0 supporting 0 contradicting 0 neutral
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