ID: h-immunity-50f8d4f4
Hypothesis

CD8+ T-Cell Perforin Pathway as Driver of Neuronal Pyramid Loss

CD8+ T-Cell Perforin Pathway as Driver of Neuronal Pyramid Loss starts from the claim that modulating GZMB, PRF1, HLA-E, NKG2D within the disease context of Alzheimer's disease, Parkinson's disease can redirect a disease-relevant process.
🧬 GZMB, PRF1, HLA-E, NKG2D🩺 alzheimers-disease-parkinsons🎯 Composite 70%💱 $0.55▼22.2%open
EvidenceStrong (65%)📖 5 cit🗣 1 debates 5 support 1 oppose
Mechanistic 0.70 (15%) Evidence 0.71 (15%) Novelty 0.50 (12%) Feasibility 0.50 (12%) Impact 0.50 (12%) Druggability 0.00 (10%) Safety 0.00 (8%) Competition 0.00 (6%) Data Avail. 0.00 (5%) Reproducible 0.68 (5%) KG Connect 0.50 (8%) 0.699 composite

🧪 Overview

Mechanistic Overview


CD8+ T-Cell Perforin Pathway as Driver of Neuronal Pyramid Loss starts from the claim that modulating GZMB, PRF1, HLA-E, NKG2D within the disease context of Alzheimer's disease, Parkinson's disease can redirect a disease-relevant process. The original description reads: "## Mechanistic Overview CD8+ T-Cell Perforin Pathway as Driver of Neuronal Pyramid Loss starts from the claim that modulating GZMB, PRF1, HLA-E, NKG2D within the disease context of Alzheimer's disease, Parkinson's disease can redirect a disease-relevant process. The original description reads: "## Mechanistic Overview CD8+ T-Cell Perforin Pathway as Driver of Neuronal Pyramid Loss starts from the claim that Stressed neurons upregulate NKG2D ligands (MICA/B) engaging NKG2D on infiltrating CD8+ T-cells, triggering perforin/granzyme cytotoxicity. This targets large projection neurons with high metabolic demand. Prediction: NKG2D blockade or perforin inhibition will protect dopaminergic neurons in alpha-synuclein models without compromising immune surveillance.

...

🧬 Mechanism

🧬 Curated Mechanism Pathway

Curated pathway from expert analysis

flowchart TD
    A["GZMB<br/>Primary Target"]
    B["Biological Process 1<br/>Mechanistic Step A"]
    C["Biological Process 2<br/>Mechanistic Step B"]
    D["Output Phenotype<br/>Disease Effect"]
    A --> B
    B --> C
    C --> D
    style A fill:#1a237e,stroke:#4fc3f7,color:#4fc3f7
    style D fill:#b71c1c,stroke:#ef9a9a,color:#ef9a9a

⚖️ Evidence

⚖️ Evidence Matrix3 supports0 contradicts
Supports
Entorhinal cortex epigenome-wide association study highlights four novel loci showing differential methylation in Alzheimer's disease.
Alzheimers Res Ther2023PMID:37149695medium
Supports
[Identification of Peripheral Blood GZMK (+) CD8 (+) T Cells As Biomarkers of Alzheimer's Disease Based on Single-Cell Transcriptome].
Sichuan Da Xue Xue Bao Yi Xue Ban2023PMID:37866940medium
Supports
[Bioinformatics analysis of genes related to pathogenesis of major depression disorder].
Sheng Li Xue Bao2018PMID:30112561medium
📖 Linked Papers

No linked papers recorded for this hypothesis yet.

🏥 Translation

🧬 3D Protein Structure — GZMB

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

🧠 GTEx v10 Brain ExpressionJSON

Median TPM across 13 brain regions for GZMB, PRF1, HLA-E, NKG2D from GTEx v10.

Spinal cord cervical c-10.7 Hypothalamus0.6 Substantia nigra0.5 Putamen basal ganglia0.4 Frontal Cortex BA90.3 Hippocampus0.3 Caudate basal ganglia0.3 Amygdala0.3 Cortex0.3 Nucleus accumbens basal ganglia0.3 Anterior cingulate cortex BA240.3 Cerebellar Hemisphere0.2 Cerebellum0.2median 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 GZMB, PRF1, HLA-E, NKG2D →

No DepMap CRISPR Chronos data found for GZMB, PRF1, HLA-E, NKG2D.

Run python3 scripts/backfill_hypothesis_depmap.py to populate.

🏆 Tournament

🏆 Arenas / Elo

No arena matches recorded yet. Browse Arenas →

📊 Market Indicators

7d Trend
Stable
7d Momentum
▼ 0.8%
Volatility
Medium
0.0327
Events (7d)
3
Price History
▼22.2%

💾 Resource Usage

No resource usage or linked notebooks recorded for this hypothesis yet.

📖 References (2)

  1. Polysaccharide-Based Coating with Excellent Antibiofilm and Repeatable Antifouling-Bactericidal Properties for Treating Infected Hernia.
    ["Li et al.. Biomacromolecules (2024)
  2. Deep-Learning-Based Microfluidic Droplet Classification for Multijet Monitoring.
    ["Choi et al.. ACS applied materials & interfaces (2022)
Metadatasource: v1_phase_c_backfill · origin_type: immune_atlas_analysis
sourcev1_phase_c_backfill
origin_typeimmune_atlas_analysis
_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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