ID: h-1e4bba56
Hypothesis

TFEB-Independent Autophagy Bypass

TFEB-Independent Autophagy Bypass starts from the claim that modulating ULK1 within the disease context of neurodegeneration can redirect a disease-relevant process.
🧬 ULK1🩺 neurodegeneration🎯 Composite 70%💱 $0.56▼23.9%promoted
EvidencePending (0%)📖 11 cit🗣 3 debates 14 support 2 oppose
✓ All Quality Gates Passed
Mechanistic 0.80 (15%) Evidence 0.70 (15%) Novelty 0.60 (12%) Feasibility 0.90 (12%) Impact 0.80 (12%) Druggability 0.90 (10%) Safety 0.80 (8%) Competition 0.70 (6%) Data Avail. 0.80 (5%) Reproducible 0.80 (5%) KG Connect 0.86 (8%) 0.697 composite

🧪 Overview

Mechanistic Overview


TFEB-Independent Autophagy Bypass starts from the claim that modulating ULK1 within the disease context of neurodegeneration can redirect a disease-relevant process. The original description reads: "## Mechanistic Overview TFEB-Independent Autophagy Bypass starts from the claim that modulating ULK1 within the disease context of neurodegeneration can redirect a disease-relevant process. The original description reads: "## TFEB-Independent Autophagy Bypass

...

🧬 Mechanism

🧬 Curated Mechanism Pathway

Curated pathway from expert analysis

graph TD
    A["Neuronal Stress<br/>Stimuli"]
    B["ULK1 Kinase<br/>Activation"]
    C["TFEB Nuclear<br/>Translocation"]
    D["Alternative Autophagy<br/>Initiation Pathway"]
    E["Beclin-1 Complex<br/>Formation"]
    F["ATG5-ATG12<br/>Conjugation"]
    G["LC3 Lipidation<br/>and Recruitment"]
    H["Autophagosome<br/>Formation"]
    I["Lysosome<br/>Fusion"]
    J["Autophagic<br/>Clearance"]
    K["Protein Aggregate<br/>Accumulation"]
    L["Mitochondrial<br/>Dysfunction"]
    M["ULK1 Enhancer<br/>Treatment"]
    N["Neuronal<br/>Survival"]
    O["Cognitive<br/>Function"]

    A -->|"stress response"| B
    A -->|"transcriptional"| C
    B -->|"bypass pathway"| D
    C -->|"blocked in disease"| K
    D -->|"activates"| E
    B -->|"phosphorylates"| E
    E -->|"recruits"| F
    F -->|"enables"| G
    G -->|"forms"| H
    H -->|"maturation"| I
    I -->|"degradation"| J
    K -->|"causes"| L
    L -->|"impairs"| N
    M -->|"enhances"| B
    M -->|"promotes"| D
    J -->|"prevents"| K
    J -->|"maintains"| N
    N -->|"preserves"| O

    classDef normal fill:#4fc3f7,color:#0d0d1a
    classDef therapeutic fill:#81c784,color:#0d0d1a
    classDef pathology fill:#ef5350,color:#0d0d1a
    classDef outcomes fill:#ffd54f,color:#0d0d1a
    classDef molecular fill:#ce93d8,color:#0d0d1a

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

⚖️ Evidence

⚖️ Evidence Matrix14 supports2 contradicts
Supports
ULK3-dependent autophagy can function independently of classical TFEB regulation
Supports
Trehalose induces autophagy through multiple pathways including TFEB-independent mechanisms
Supports
AMPK and mTOR regulate autophagy through direct phosphorylation of Ulk1.
Nat Cell Biol2011PMID:21258367
Supports
AMPK promotes TFEB transcriptional activity through dephosphorylation at both MTORC1-dependent and -independent sites.
Autophagy2026PMID:41661247
Supports
Macrophage PD-1 regulates energy expenditure and metabolic dysfunction under immune checkpoint blockade.
Cell Metab2026PMID:41380676
Supports
The Human Autophagy Core Complexes.
Annu Rev Biochem2026PMID:41880641
Supports
PSAT1 inhibits mTORC1 activation by preventing Rag heterodimer formation in lung adenocarcinoma.
Autophagy2026PMID:40702660
Supports
Exercise-Induced Exerkines Modulate Autophagy: Implications for Interorgan Crosstalk in the Hallmarks of Ageing.
Int J Mol Sci2026PMID:41898620
Supports
The Mitochondrial Guardian α-Amyrin Mitigates Alzheimer's Disease Pathology via Modulation of the DLK-SARM1-ULK1 Axis.
Adv Sci (Weinh)2026PMID:41572497
Supports
Nanocarrier-enhanced simvastatin modulates AMPK-ULK1 pathway and oxidative stress in Alzheimer's disease model.
Eur J Pharmacol2026PMID:41314452
Supports
Neuronal PPP2R5C in plasma is a potential biomarker for early diagnosis of Alzheimer's disease.
Cell Rep Med2026PMID:41720088
Supports
Prussian Blue Nanozyme Disrupts the Self-Reinforcing Loop of Tauopathy via Triple-Action Mechanism.
Adv Healthc Mater2026PMID:41797478
Supports
SLC38A9 Regulation Affects Hippocampal Neuronal Autophagy: A Potential Alzheimer's Therapeutic Approach by Suppressing Alzheimer's Disease-Related Protein Deposition.
CNS Neurosci Ther2026PMID:41811103
Supports
Discovery of indolinone-based covalent ULK1 inhibitors that suppressed autophagy and induced apoptosis against colorectal carcinoma.
Eur J Med Chem2026PMID:41672028
Contradicts
TFEB-independent autophagy pathways often converge on the same downstream dysfunction
Contradicts
Direct ATG protein activation can lead to autophagy without proper quality control
📖 Linked Papers (10)Export BibTeX ↗
No figures

🏥 Translation

🧬 3D Protein Structure — ULK1

🧬 PDB 4WNO Click to expand

Experimental structure from RCSB PDB | Powered by Mol*

🧠 GTEx v10 Brain ExpressionJSON

Median TPM across 13 brain regions for ULK1 from GTEx v10.

Cerebellum108 Cerebellar Hemisphere89.4 Nucleus accumbens basal ganglia84.7 Cortex54.5 Caudate basal ganglia50.2 Frontal Cortex BA944.0 Putamen basal ganglia36.9 Anterior cingulate cortex BA2432.4 Hippocampus25.7 Amygdala24.0 Hypothalamus23.9 Substantia nigra14.3 Spinal cord cervical c-110.9median TPM (GTEx v10)

💉 Clinical Trials (1)Relevance: 60%

0
Active
0
Completed
0
Total Enrolled
Unknown·

No curated ClinVar variants loaded for this hypothesis.

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

🔍 Search ClinVar for ULK1 →

No DepMap CRISPR Chronos data found for ULK1.

Run python3 scripts/backfill_hypothesis_depmap.py to populate.

💰 Estimated Development
Cost
$0
Timeline
5.5 years

🏆 Tournament

🏆 Arenas / Elo

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📊 Market Indicators

7d Trend
Stable
7d Momentum
▼ 1.1%
Volatility
Medium
0.0236
Events (7d)
4
Price History
▼23.9%

💾 Resource Usage

LLM Tokens
15,664
$0.0940
Total Cost
$0.0940

🔮 Predictions

🔎 Predictions vs Observations2 predictions · 0 with recorded observations
PredictionPredictedObservedStatusConf
IF ULK1 is genetically knocked down or pharmacologically inhibited in iPSC-derived neurons subjected to proteostatic stress (htt-polyQ expression), THEN autophagic flux will decrease significantly (p<At least 50% reduction in LC3-II/LC3-I ratio and 2-fold increase in p62/SQSTM1 protein levels, indicating impaired autophagic clearance of protein aggregates.— no observation —pending0.78
IF TFEB is overexpressed while ULK1 is pharmacologically inhibited (MRT68921) in neurons under chronic oxidative stress, THEN mitochondrial protein turnover will NOT increase beyond ULK1 inhibition alTFEB overexpression will fail to rescue mitophagy deficits caused by ULK1 inhibition; mtDNA copy number will remain 40-60% below baseline, and mitochondrial pro— no observation —pending0.71
🔮 Falsifiable Predictions (2)
pendingconf —
IF ULK1 is genetically knocked down or pharmacologically inhibited in iPSC-derived neurons subjected to proteostatic stress (htt-polyQ expression), THEN autophagic flux will decrease significantly (p<0.01) and misfolded protein aggregates will accumulate, using human iPSC-derived neurons with induci
Predicted outcome: At least 50% reduction in LC3-II/LC3-I ratio and 2-fold increase in p62/SQSTM1 protein levels, indicating impaired autophagic clearance of protein agg
Falsification: If ULK1 inhibition does NOT reduce autophagic flux or if protein aggregates are still cleared normally, this would disprove the hypothesis that ULK1 is required for TFEB-independent autophagy bypass a
pendingconf —
IF TFEB is overexpressed while ULK1 is pharmacologically inhibited (MRT68921) in neurons under chronic oxidative stress, THEN mitochondrial protein turnover will NOT increase beyond ULK1 inhibition alone, using primary cortical neurons exposed to rotenone (10 nM, 7 days).
Predicted outcome: TFEB overexpression will fail to rescue mitophagy deficits caused by ULK1 inhibition; mtDNA copy number will remain 40-60% below baseline, and mitocho
Falsification: If TFEB overexpression COMPLETELY rescues mitochondrial turnover and function despite ULK1 inhibition, this would disprove the TFEB-independence claim and suggest TFEB can bypass ULK1 requirements for

📖 References (6)

  1. BIN1 deficiency enhances ULK3-dependent autophagic flux and reduces dendritic size in mouse hippocampal neurons.
    Jin Y et al.. Autophagy (2025)
  2. Trehalose induces autophagy via lysosomal-mediated TFEB activation in models of motoneuron degeneration.
    Rusmini P et al.. Autophagy (2019)
  3. AMPK and mTOR regulate autophagy through direct phosphorylation of Ulk1.
    Nature cell biology (2011)
  4. AMPK promotes TFEB transcriptional activity through dephosphorylation at both MTORC1-dependent and -independent sites.
    Negoita F et al.. Autophagy (2026)
  5. Macrophage PD-1 regulates energy expenditure and metabolic dysfunction under immune checkpoint blockade.
    Wu MM et al.. Cell Metab (2026)
  6. The Human Autophagy Core Complexes.
    Hurley JH. Annu Rev Biochem (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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