cytotoxicity-assay-analyzer
Nanotoxicology skill for in vitro cytotoxicity assessment and cell viability analysis
Best use case
cytotoxicity-assay-analyzer is best used when you need a repeatable AI agent workflow instead of a one-off prompt.
Nanotoxicology skill for in vitro cytotoxicity assessment and cell viability analysis
Teams using cytotoxicity-assay-analyzer should expect a more consistent output, faster repeated execution, less prompt rewriting.
When to use this skill
- You want a reusable workflow that can be run more than once with consistent structure.
When not to use this skill
- You only need a quick one-off answer and do not need a reusable workflow.
- You cannot install or maintain the underlying files, dependencies, or repository context.
Installation
Claude Code / Cursor / Codex
Manual Installation
- Download SKILL.md from GitHub
- Place it in
.claude/skills/cytotoxicity-assay-analyzer/SKILL.mdinside your project - Restart your AI agent — it will auto-discover the skill
How cytotoxicity-assay-analyzer Compares
| Feature / Agent | cytotoxicity-assay-analyzer | Standard Approach |
|---|---|---|
| Platform Support | Not specified | Limited / Varies |
| Context Awareness | High | Baseline |
| Installation Complexity | Unknown | N/A |
Frequently Asked Questions
What does this skill do?
Nanotoxicology skill for in vitro cytotoxicity assessment and cell viability analysis
Where can I find the source code?
You can find the source code on GitHub using the link provided at the top of the page.
SKILL.md Source
# Cytotoxicity Assay Analyzer
## Purpose
The Cytotoxicity Assay Analyzer skill provides comprehensive in vitro toxicity assessment of nanomaterials, enabling systematic evaluation of cell viability, determination of safe exposure levels, and identification of toxicity mechanisms.
## Capabilities
- MTT/MTS/WST assay analysis
- Live/dead staining quantification
- IC50/EC50 calculation
- Dose-response curve fitting
- Cell morphology analysis
- Apoptosis/necrosis detection
## Usage Guidelines
### Cytotoxicity Assessment
1. **Assay Selection**
- Choose appropriate viability assay
- Consider nanoparticle interference
- Include proper controls
2. **Data Analysis**
- Calculate percent viability
- Fit dose-response curves
- Determine IC50/EC50
3. **Result Interpretation**
- Compare to benchmark materials
- Assess mechanism of toxicity
- Report with appropriate context
## Process Integration
- Nanomaterial Safety Assessment Pipeline
- Nanoparticle Drug Delivery System Development
## Input Schema
```json
{
"nanomaterial": "string",
"cell_line": "string",
"assay_type": "mtt|mts|wst|live_dead|ldh",
"concentrations": ["number"],
"exposure_time": "number (hours)"
}
```
## Output Schema
```json
{
"viability_data": [{
"concentration": "number",
"viability": "number (%)",
"std_dev": "number"
}],
"dose_response": {
"ic50": "number",
"ic50_unit": "string",
"hill_slope": "number",
"r_squared": "number"
},
"toxicity_classification": "string",
"mechanism_indicators": ["string"]
}
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