数据与复现临床医学与医药FreedomIntelligence/OpenClaw-Medical-Skills数据与复现
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tcr-pmhc-prediction-agent

维护者 FreedomIntelligence · 最近更新 2026年4月1日

Predict TCR-pMHC binding affinity and selectivity for TCR therapy design.

OpenClawNanoClaw分析处理复现实验tcr-pmhc-prediction-agent🧠 bioos extended suiteimmunology & cell therapypredict

原始来源

FreedomIntelligence/OpenClaw-Medical-Skills

https://github.com/FreedomIntelligence/OpenClaw-Medical-Skills/tree/main/skills/tcr-pmhc-prediction-agent

维护者
FreedomIntelligence
许可
MIT
最近更新
2026年4月1日

技能摘要

来自 SKILL.md 的关键信息

2 min

核心说明

  • TCR-pMHC Prediction Agent predicts T-cell receptor interactions ,支持 peptide-MHC complexes ,使用 AlphaFold3-based structural modeling 、 深度学习. Accurate TCR-pMHC prediction enables therapeutic TCR discovery,neoantigen vaccine validation,、 identification of immunogenic epitopes ,用于 cancer 、 infectious disease applications。
  • When predicting which peptides TCR will recognize。
  • 用于 validating neoantigen immunogenicity computationally。
  • To screen therapeutic TCR candidates against target antigens。
  • When assessing cross-reactivity of TCRs ,支持 self-peptides。

原始文档

SKILL.md 摘录

Core Capabilities

  1. Binding Prediction: Predict TCR-pMHC binding affinity/probability.

  2. Structural Modeling: Generate TCR-pMHC complex structures with AlphaFold3.

  3. Epitope Specificity: Determine which epitopes a TCR recognizes.

  4. Cross-Reactivity Assessment: Predict off-target self-peptide binding.

  5. Immunogenicity Scoring: Rank peptide immunogenicity.

  6. Therapeutic TCR Screening: Screen TCRs for desired specificity.

Prediction Approaches

ApproachMethodStrengths
AlphaFold3Structure predictionHigh accuracy, interpretable
TCR-BERTSequence transformerFast, large-scale
ERGO-IIRNN-basedEstablished benchmark
pMTnetMulti-task learningGeneralizable
NetTCRCNN-basedHLA-specific
TITANAttention-basedState-of-art sequence

Workflow

  1. Input: TCR sequence (alpha/beta CDR3), peptide, HLA allele.

  2. Structure Prediction: Generate pMHC and TCR structures.

  3. Docking: Model TCR-pMHC complex.

  4. Scoring: Calculate binding probability/affinity.

  5. Cross-Reactivity: Screen against self-peptide database.

  6. Validation Features: Extract structural determinants.

  7. Output: Binding predictions, structures, safety assessment.

适用场景

  • When predicting which peptides TCR will recogni。

不适用场景

  • Do not rely on this catalog entry alone ,用于 installation 或 maintenance details。

上游相关技能

  • TCR_Repertoire_Analysis_Agent - Repertoire analysis
  • Neoantigen_Prediction_Agent - Neoantigen identification
  • HLA_Typing_Agent - HLA determination
  • CART_Design_Optimizer_Agent - TCR-based therapy

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