数据与复现临床医学与医药FreedomIntelligence/OpenClaw-Medical-Skills数据与复现
PD

pdx-model-analysis-agent

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

Patient-derived xenograft model analysis for drug efficacy and biomarker discovery.

OpenClawNanoClaw分析处理复现实验pdx-model-analysis-agent🧠 bioos extended suiteoncology & precision medicine agentspatient

原始来源

FreedomIntelligence/OpenClaw-Medical-Skills

https://github.com/FreedomIntelligence/OpenClaw-Medical-Skills/tree/main/skills/pdx-model-analysis-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

  • PDX Model Analysis Agent provides AI-driven analysis of patient-derived xenograft models ,用于 preclinical drug testing,translational research,、 personalized oncology. It correlates PDX drug responses ,支持 patient outcomes 、 molecular profiles ,用于 treatment selection。
  • When selecting drug treatments based on PDX drug response data。
  • To correlate PDX molecular profiles ,支持 patient tumor characteristics。
  • 用于 analyzing PDX-patient concordance in drug sensitivity。
  • When designing preclinical drug combination studies。

原始文档

SKILL.md 摘录

Core Capabilities

  1. PDX-Patient Concordance: Analyze molecular similarity between PDX and donor tumor.

  2. Drug Response Modeling: ML models correlating PDX drug sensitivity to patient outcomes.

  3. Biomarker Discovery: Identify molecular features predicting drug response in PDX panels.

  4. Combination Screening: Analyze synergy in PDX drug combination studies.

  5. Translational Prediction: Project PDX findings to patient treatment selection.

  6. Quality Assessment: Evaluate PDX fidelity and stability across passages.

PDX Quality Metrics

MetricThresholdInterpretation
Genetic concordance>90%Variants maintained
Expression correlation>0.85Transcriptome preserved
CNV fidelity>85%Copy number stable
Tumor take rateVariableEngraftment success
Passage stability<P5 recommendedMinimal drift

Workflow

  1. Input: PDX molecular data, drug response curves, patient tumor data.

  2. Concordance Analysis: Compare PDX to donor tumor at molecular level.

  3. Drug Response Processing: Calculate IC50, AUC, TGI from growth curves.

  4. Biomarker Analysis: Correlate molecular features with drug sensitivity.

  5. Patient Prediction: Project findings to patient treatment recommendations.

  6. Quality Assessment: Flag PDX models with significant drift.

  7. Output: Drug rankings, biomarker associations, treatment recommendations.

适用场景

  • When selecting drug treatments based on PDX drug response data。
  • To correlate PDX molecular profiles ,支持 patient tumor characteristics。

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

  • Drug_Repurposing - For alternative drug identification
  • Multi_Omics_Integration - For PDX characterization
  • Clinical_Trials - For trial matching

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