Agent skill

Volcano Plot Script

by aipoch in aipoch/medical-research-skills

Generate R/Python code for volcano plots from DEG (Differentially Expressed Genes) analysis results.

MITAuto-check passedResearch & Science

Install Volcano Plot Script

skills CLI
$ npx skills add aipoch/medical-research-skills --skill volcano-plot-script -a claude-code

Project install by default; add -g for ~/.claude/skills/.

GitHub CLI
$ gh skill install aipoch/medical-research-skills volcano-plot-script --agent claude-code

Project scope by default; add --scope user for a personal install. Needs GitHub CLI 2.90.0 or later (public preview).

Manual copy
$ git clone --depth 1 https://github.com/aipoch/medical-research-skills.git skills-src && mkdir -p .claude/skills && cp -r skills-src/'scientific-skills/Data Analysis/volcano-plot-script' .claude/skills/volcano-plot-script && rm -rf skills-src

Use ~/.claude/skills/ instead of .claude/skills for a personal install. The folder must contain SKILL.md.

Claude Code skills documentation · loads skills from .claude/skills/

Facts

Skill name
volcano-plot-script
GitHub stars
2k
Token cost
~2.5k tokens
SKILL.md length
1,090 words
Files
8 (incl. scripts, references, assets)
Skills in repo
567
Repo updated
First seen
Licence
MIT

At a glance

Generate R/Python code for volcano plots from DEG (Differentially Expressed Genes) analysis results.

  • Works in 4 steps: Confirm the user input, output path, and… → Edit the in-file CONFIG block or… → Run python scripts/main.py with the… → …
  • Needs visualization of gene expression data
  • SKILL.md covers When to Use, Key Features, Dependencies and Example Usage, plus 21 more sections
  • Runs R and Python scripts from its folder; calls python

What it does

Volcano Plot Script is an agent skill from aipoch/medical-research-skills. Generate R/Python code for volcano plots from DEG (Differentially Expressed Genes) analysis results. Triggered when user needs visualization of gene expression data, p-value vs fold-change scatter plots, publication-ready figures for bioinformatics analysis.

Its SKILL.md is about 2.5k tokens, which your agent loads only when the skill is triggered. The skill folder holds 10 other files, including scripts, reference files and assets (for example `references/best_practices.md`, `scripts/main.py` and `volcano-plot-script_audit_result_v2.json`).

It sits in Research & Science, covering Bioinformatics and Statistics. It works with Python. The repository describes itself as: Hundreds of agent skills for medical research, including protocol design, data analysis, evidence insights, and academic writing. The licence is MIT.

When your agent uses it

  • Needs visualization of gene expression data
  • P-value vs fold-change scatter plots
  • Publication-ready figures for bioinformatics analysis

Example prompts

  • “/volcano-plot-script”

Requirements

  • Python 3

Workflow steps

4 steps, taken from the first numbered list in SKILL.md.

  1. Confirm the user input, output path, and any required config values.
  2. Edit the in-file CONFIG block or documented parameters if the script uses fixed settings.
  3. Run python scripts/main.py with the validated inputs.
  4. Review the generated output and return the final artifact with any assumptions called out.

What it can do on your machine

Read from SKILL.md and the folder at commit 686e09d. It shows what the files ask for, not the result of running them.

  • Tool permissions

    Pre-approves nothing: there is no allowed-tools line, so your agent's usual permission prompts apply.

    From allowed-tools in the SKILL.md frontmatter.

  • Runs code

    Ships 1 file in scripts/ (R and Python), which the agent can run.

    Shell commands in SKILL.md call:

    • python

    From the folder's file list and the shell code blocks in SKILL.md.

  • Network

    No URLs in SKILL.md.

    From URLs in SKILL.md, links to its own repository left out.

  • Credentials

    Names no API keys, tokens, secrets or passwords.

    From names ending in _API_KEY, _TOKEN, _SECRET, _KEY or _PASSWORD in SKILL.md.

Context cost

Volcano Plot Script loads about 2.5k tokens when it runs, and up to ~3.4k if it reads all its reference files. Until then it costs about 70 tokens; SKILL.md has 1,090 words of instructions outside code blocks.

Always · name and description, kept in context so the agent knows when to use it
~70
When it runs · the whole SKILL.md, loaded when a task matches
~2.5k
With references · SKILL.md plus every file in references/, read only if the agent opens them
~3.4k

Estimates: characters ÷ 4, the usual rule of thumb; real counts depend on the model's tokenizer. Scripts and assets cost tokens only if the agent reads them.

Safety

Auto-check passed

The automated check found no risky patterns in SKILL.md.

Automated static check — not a guarantee. Review scripts before installing. It scans the text of SKILL.md for risky patterns (piping downloads into a shell, reading credential files, hidden Unicode, destructive commands); the scripts in this folder are not scanned.

SKILL.md

The full file from aipoch/medical-research-skills at commit 686e09d, republished under its MIT licence (© aipoch). 1,090 words, ~2,489 tokens.

Download SKILL.mdSave it as .claude/skills/volcano-plot-script/SKILL.md (or your agent's skills folder). This skill also uses 7 other files; get the full folder from GitHub.
name
volcano-plot-script
description
Generate R/Python code for volcano plots from DEG (Differentially Expressed Genes) analysis results. Triggered when user needs visualization of gene expression data, p-value vs fold-change scatter plots, publication-ready figures for bioinformatics analysis.
license
MIT
author
AIPOCH

Source: https://github.com/aipoch/medical-research-skills

Volcano Plot Script Generator

A skill for generating publication-ready volcano plots from differential gene expression analysis results.

When to Use

  • Use this skill when the task is to Generate R/Python code for volcano plots from DEG (Differentially Expressed Genes) analysis results. Triggered when user needs visualization of gene expression data, p-value vs fold-change scatter plots, publication-ready figures for bioinformatics analysis.
  • Use this skill for data analysis tasks that require explicit assumptions, bounded scope, and a reproducible output format.
  • Use this skill when you need a documented fallback path for missing inputs, execution errors, or partial evidence.

Key Features

  • Scope-focused workflow aligned to: Generate R/Python code for volcano plots from DEG (Differentially Expressed Genes) analysis results. Triggered when user needs visualization of gene expression data, p-value vs fold-change scatter plots, publication-ready figures for bioinformatics analysis.
  • Packaged executable path(s): scripts/main.py.
  • Reference material available in references/ for task-specific guidance.
  • Reusable packaged asset(s), including assets/example_volcano.R.
  • Structured execution path designed to keep outputs consistent and reviewable.

Dependencies

Example Usage

See ## Usage above for related details.

bash
cd "20260318/scientific-skills/Data Analytics/volcano-plot-script"
python -m py_compile scripts/main.py
python scripts/main.py --help

Example run plan:

  1. Confirm the user input, output path, and any required config values.
  2. Edit the in-file CONFIG block or documented parameters if the script uses fixed settings.
  3. Run python scripts/main.py with the validated inputs.
  4. Review the generated output and return the final artifact with any assumptions called out.

Implementation Details

See ## Workflow above for related details.

  • Execution model: validate the request, choose the packaged workflow, and produce a bounded deliverable.
  • Input controls: confirm the source files, scope limits, output format, and acceptance criteria before running any script.
  • Primary implementation surface: scripts/main.py.
  • Reference guidance: references/ contains supporting rules, prompts, or checklists.
  • Packaged assets: reusable files are available under assets/.
  • Parameters to clarify first: input path, output path, scope filters, thresholds, and any domain-specific constraints.
  • Output discipline: keep results reproducible, identify assumptions explicitly, and avoid undocumented side effects.

Quick Check

Use this command to verify that the packaged script entry point can be parsed before deeper execution.

bash
python -m py_compile scripts/main.py

Audit-Ready Commands

Use these concrete commands for validation. They are intentionally self-contained and avoid placeholder paths.

bash
python -m py_compile scripts/main.py
python scripts/main.py --help
python scripts/main.py --input "Audit validation sample with explicit symptoms, history, assessment, and next-step plan."

Workflow

  1. Confirm the user objective, required inputs, and non-negotiable constraints before doing detailed work.
  2. Validate that the request matches the documented scope and stop early if the task would require unsupported assumptions.
  3. Use the packaged script path or the documented reasoning path with only the inputs that are actually available.
  4. Return a structured result that separates assumptions, deliverables, risks, and unresolved items.
  5. If execution fails or inputs are incomplete, switch to the fallback path and state exactly what blocked full completion.

Overview

Volcano plots visualize the relationship between statistical significance (p-values) and magnitude of change (fold changes) in gene expression data. This skill generates customizable R or Python scripts for creating high-quality figures suitable for publications.

Use Cases

  • Visualize RNA-seq DEG analysis results
  • Identify significantly upregulated and downregulated genes
  • Highlight genes of interest (markers, pathways)
  • Generate publication-quality figures for manuscripts
  • Compare multiple experimental conditions

Input Requirements

Required input data format:

  • Gene identifier (gene symbol or ENSEMBL ID)
  • Log2 fold change values
  • Adjusted or raw p-values
  • Optional: gene annotations, pathways

Output

  • Publication-ready volcano plot (PNG/PDF/SVG)
  • Customizable R or Python script
  • Optional: labeled significant gene lists

Usage

python

# Example: Run the volcano plot generator
python scripts/main.py --input deg_results.csv --output volcano_plot.png

Parameters

ParameterDescriptionDefault
--inputPath to DEG results CSV/TSVrequired
--outputOutput plot file pathvolcano_plot.png
--log2fc-colColumn name for log2 fold changelog2FoldChange
--pvalue-colColumn name for p-valuepadj
--gene-colColumn name for gene IDsgene
--log2fc-threshLog2 FC threshold for significance1.0
--pvalue-threshP-value threshold0.05
--label-genesFile with genes to labelNone
--top-nLabel top N significant genes10
--color-upColor for upregulated genes#E74C3C
--color-downColor for downregulated genes#3498DB
--color-nsColor for non-significant genes#95A5A6

Technical Difficulty

Medium - Requires understanding of:

  • DEG analysis concepts (fold change, p-values, FDR)
  • Data visualization principles
  • Matplotlib/ggplot2 plotting libraries
Python
  • pandas
  • matplotlib
  • seaborn
  • numpy
R
  • ggplot2
  • dplyr
  • ggrepel (for label positioning)
Show full SKILL.md (440 more words)Show less

References

Author

Auto-generated skill for bioinformatics visualization.

Risk Assessment

Risk IndicatorAssessmentLevel
Code ExecutionPython/R scripts executed locallyMedium
Network AccessNo external API callsLow
File System AccessRead input files, write output plotsMedium
Instruction TamperingStandard prompt guidelinesLow
Data ExposureOutput files saved to workspaceLow

Security Checklist

  • No hardcoded credentials or API keys
  • Input file paths validated (no ../ traversal)
  • Output directory restricted to workspace
  • Script execution in sandboxed environment
  • Error messages sanitized (no stack traces exposed)
  • Dependencies audited (pandas, matplotlib, seaborn, numpy)

Prerequisites

text

# Python dependencies
pip install -r requirements.txt

# R dependencies (if using R)
install.packages(c("ggplot2", "dplyr", "ggrepel"))

Evaluation Criteria

Success Metrics
  • Successfully generates executable Python/R script
  • Output plot is publication-ready quality
  • Correctly identifies significant genes based on thresholds
  • Handles missing or malformed data gracefully
  • Color scheme is accessible (colorblind-friendly)
Test Cases
  1. Basic DEG Visualization: Input standard DESeq2 results → Valid volcano plot
  2. Custom Thresholds: Adjust log2FC and p-value thresholds → Correct gene classification
  3. Gene Labeling: Specify genes to label → Labels appear correctly
  4. Large Dataset: Input 20,000+ genes → Performance remains acceptable
  5. Malformed Data: Input with missing values → Graceful error handling

Lifecycle Status

  • Current Stage: Draft
  • Next Review Date: 2026-03-06
  • Known Issues: None
  • Planned Improvements:
    • Add interactive plot option (Plotly)
    • Support for multiple comparison groups
    • Integration with pathway enrichment tools

Output Requirements

Every final response should make these items explicit when they are relevant:

  • Objective or requested deliverable
  • Inputs used and assumptions introduced
  • Workflow or decision path
  • Core result, recommendation, or artifact
  • Constraints, risks, caveats, or validation needs
  • Unresolved items and next-step checks

Error Handling

  • If required inputs are missing, state exactly which fields are missing and request only the minimum additional information.
  • If the task goes outside the documented scope, stop instead of guessing or silently widening the assignment.
  • If scripts/main.py fails, report the failure point, summarize what still can be completed safely, and provide a manual fallback.
  • Do not fabricate files, citations, data, search results, or execution outcomes.

Input Validation

This skill accepts requests that match the documented purpose of volcano-plot-script and include enough context to complete the workflow safely.

Do not continue the workflow when the request is out of scope, missing a critical input, or would require unsupported assumptions. Instead respond:

volcano-plot-script only handles its documented workflow. Please provide the missing required inputs or switch to a more suitable skill.

Response Template

Use the following fixed structure for non-trivial requests:

  1. Objective
  2. Inputs Received
  3. Assumptions
  4. Workflow
  5. Deliverable
  6. Risks and Limits
  7. Next Checks

If the request is simple, you may compress the structure, but still keep assumptions and limits explicit when they affect correctness.

© aipoch, MIT. Rendered from Markdown: HTML in the file is shown as text, images as links, and headings moved down two levels. Raw file

Files

SKILL.md and 7 other files (scripts, references, assets) in scientific-skills/Data Analysis/volcano-plot-script of aipoch/medical-research-skills.

  • SKILL.md
  • assets/example_volcano.R
  • references/best_practices.md
  • references/example_deg_data.csv
  • references/markers.txt
  • requirements.txt
  • scripts/main.py
  • volcano-plot-script_audit_result_v2.json

Open the folder on GitHubat commit 686e09d

Compare with similar skills

Volcano Plot Script next to the 5 skills that share the most tags, products or categories with it. Stars are the repository's; “used in” counts other GitHub owners with a copy.

Volcano Plot Script compared with similar skills
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Volcano Plot Script this skillaipoch/medical-research-skills2k—~2.5kAutomated safety check: PassMIT
PyDESeq2 Differential Expressiondavila7/claude-code-templates32k12 repos~4kAutomated safety check: PassMIT
Tooluniverse Epigenomicswu-yc/LabClaw1.1k2 repos~14kAutomated safety check: PassNone
Bio Population Genetics Linkage DisequilibriumGPTomics/bioSkills1.2k1 repos~4.7kAutomated safety check: PassMIT
Bio Temporal Genomics Temporal GrnGPTomics/bioSkills1.2k1 repos~5kAutomated safety check: PassMIT
Bio Workflows Timecourse PipelineGPTomics/bioSkills1.2k1 repos~6kAutomated safety check: PassMIT

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Works with

Questions about Volcano Plot Script

What does Volcano Plot Script do?

Generate R/Python code for volcano plots from DEG (Differentially Expressed Genes) analysis results. Volcano Plot Script is an agent skill from aipoch/medical-research-skills. Generate R/Python code for volcano plots from DEG (Differentially Expressed Genes) analysis results.

When should I use Volcano Plot Script?

Volcano Plot Script fits situations like: needs visualization of gene expression data; P-value vs fold-change scatter plots; publication-ready figures for bioinformatics analysis.

How do I install Volcano Plot Script in Claude Code?

Run `npx skills add aipoch/medical-research-skills --skill volcano-plot-script -a claude-code`. Or copy the skill folder (scientific-skills/Data Analysis/volcano-plot-script in aipoch/medical-research-skills) into .claude/skills/volcano-plot-script in your project. Claude Code loads it when a task matches its description.

How do I install Volcano Plot Script in Codex?

Run `npx skills add aipoch/medical-research-skills --skill volcano-plot-script -a codex`. Or copy the skill folder (scientific-skills/Data Analysis/volcano-plot-script in aipoch/medical-research-skills) into .agents/skills/volcano-plot-script in your project. Codex loads it when a task matches its description.

Can I use Volcano Plot Script in Cursor, Gemini CLI or GitHub Copilot?

Cursor, Gemini CLI, GitHub Copilot and OpenCode also load SKILL.md folders. With the skills CLI, run `npx skills add aipoch/medical-research-skills --skill volcano-plot-script -a cursor` (or -a gemini-cli, github-copilot or opencode for the others). To copy it by hand, put the folder in .cursor/skills/volcano-plot-script, .gemini/skills/volcano-plot-script, .github/skills/volcano-plot-script and .opencode/skills/volcano-plot-script in your project.

What does Volcano Plot Script need to run?

Going by SKILL.md and its folder, Volcano Plot Script needs R and Python for the scripts in its folder and the command-line tools its instructions call (python). Our summary lists: Python 3.

Does Volcano Plot Script access the network?

SKILL.md contains no URLs. Any network use would come from the scripts or tools the agent runs. This is read from the text; nothing was executed.

Is Volcano Plot Script safe to install?

Our automated static check of SKILL.md found no risky patterns, such as piping downloads into a shell, reading credential files or hidden Unicode. It is not a guarantee. The check reads SKILL.md only: the scripts in the folder are not scanned, so read them before running anything.

What licence does Volcano Plot Script use?

Volcano Plot Script is published under the MIT licence (declared in SKILL.md). It allows redistribution, so the full SKILL.md is shown on this page.

How many tokens does Volcano Plot Script use?

About 2.5k tokens (SKILL.md is roughly 10k characters). Agents keep only the skill's name and description in context until a task matches; then they load SKILL.md in full. Its references folder adds about 918 tokens, read only when the agent opens those files.

What are the alternatives to Volcano Plot Script?

Skills that share tags, products or a category with Volcano Plot Script: PyDESeq2 Differential Expression (davila7/claude-code-templates, 32k stars), Tooluniverse Epigenomics (wu-yc/LabClaw, 1.1k stars), Bio Population Genetics Linkage Disequilibrium (GPTomics/bioSkills, 1.2k stars) and Bio Temporal Genomics Temporal Grn (GPTomics/bioSkills, 1.2k stars). The comparison table on this page puts their stars, adoption, token cost, safety result and licence side by side.

Who maintains Volcano Plot Script?

aipoch (a GitHub organization) maintains it in aipoch/medical-research-skills, which has 1,973 GitHub stars. The repository holds 567 skills in this directory. The repository was last updated on September 17, 2026.

Source: aipoch/medical-research-skills on GitHub. Facts on this page come from the repository at the commit we read; the author's words are quoted as theirs.