Source profileQuality 88/100Review permissions

K-Dense-AI/scientific-agent-skills/skills/pydeseq2/SKILL.md

pydeseq2

Differential gene expression analysis for bulk RNA-seq with PyDESeq2, including formulaic designs, Wald tests, FDR correction, LFC shrinkage, and result visualization.

Source repository stars
31,966
Declared platforms
0
Static risk flags
1
Last source update
2026-07-28
Source checked
2026-07-28

Decision brief

What it does—and where it fits

Differential gene expression analysis for bulk RNA-seq with PyDESeq2, including formulaic designs, Wald tests, FDR correction, LFC shrinkage, and result visualization.

Best for

  • Analyzing bulk RNA-seq count data for differential expression
  • Comparing gene expression between experimental conditions (e.g., treated vs control)
  • Performing multi-factor designs accounting for batch effects or covariates

Not for

  • Data Format Problems
  • Design Matrix Issues

Compatibility matrix

Platform support, with evidence labels

PlatformStatusEvidenceWhat to check
CodexNot declaredNo explicit evidencePortability before use
Claude CodeNot declaredNo explicit evidencePortability before use
CursorNot declaredNo explicit evidencePortability before use
Gemini CLINot declaredNo explicit evidencePortability before use
Open the compatibility checker

Installation

Inspect first. Install second.

The source command is displayed only when detected. A safe inspection prompt is always available so your agent can explain every action before execution.

Source-detected install commandSource
npx skills add https://github.com/K-Dense-AI/scientific-agent-skills --skill "skills/pydeseq2"
Safe inspection promptEditorial

Inspect the Agent Skill "pydeseq2" from https://github.com/K-Dense-AI/scientific-agent-skills/blob/e7ac42510774624f327003c95b6650e2883bc01d/skills/pydeseq2/SKILL.md at commit e7ac42510774624f327003c95b6650e2883bc01d. List every install step, command, network request, credential, file read/write, external action, and rollback step. Explain whether it fits my task. Do not install or execute anything until I approve.

Workflow

What the source asks the agent to do

  1. 01

    Quick Start Workflow

    For users who want to perform a standard differential expression analysis:

    For users who want to perform a standard differential expression analysis:python import pandas as pd from pydeseq2.dds import DeseqDataSet from pydeseq2.defaultinference import DefaultInference from pydeseq2.ds import DeseqStats
  2. 02

    Core Workflow Steps

    The six steps, with code, are in references/coreworkflowsteps.md:

    Data preparation — raw integer counts with genes as columns and samples as rows,Design specification — the design factors and the reference level for each.DESeq2 fitting — size factors, dispersions, and the GLM fit.
  3. 03

    Basic usage

    python scripts/rundeseq2analysis.py \ --counts counts.csv \ --metadata metadata.csv \ --design "condition" \ --contrast condition treated control \ --output results/

    python scripts/rundeseq2analysis.py \ --counts counts.csv \ --metadata metadata.csv \ --design "condition" \ --contrast condition treated control \ --output results/
  4. 04

    When to Use This Skill

    This skill should be used when: - Analyzing bulk RNA-seq count data for differential expression - Comparing gene expression between experimental conditions (e.g., treated vs control) - Performing multi-factor designs accounting for batch effects or covariates - Converting R-base…

    Analyzing bulk RNA-seq count data for differential expressionComparing gene expression between experimental conditions (e.g., treated vs control)Performing multi-factor designs accounting for batch effects or covariates
  5. 05

    1. Load data

    countsdf = pd.readcsv("counts.csv", indexcol=0).T Transpose to samples × genes metadata = pd.readcsv("metadata.csv", indexcol=0)

    countsdf = pd.readcsv("counts.csv", indexcol=0).T Transpose to samples × genes metadata = pd.readcsv("metadata.csv", indexcol=0)

Permission review

Static risk signals and limitations

Runs scripts

medium · line 85

The documentation asks the agent to run terminal commands or scripts.

python scripts/run_deseq2_analysis.py \

Runs scripts

medium · line 93

The documentation asks the agent to run terminal commands or scripts.

python scripts/run_deseq2_analysis.py \

Evidence record

Why each signal appears

EvidenceSourceComputedTestedEditorial
SignalValueEvidence typeMeaning
Quality score88/100ComputedDocumentation, specificity, maintenance, and trust rules
Repository stars31,966SourceRepository attention, not individual Skill quality
Compatibility0 platformsSourceDeclared in the catalog source record
Usage guideautomated source guideEditorialGenerated or reviewed according to the visible evidence level

Pinned source

Provenance and original SKILL.md

Repository
K-Dense-AI/scientific-agent-skills
Skill path
skills/pydeseq2/SKILL.md
Commit
e7ac42510774624f327003c95b6650e2883bc01d
License
MIT
Collected
2026-07-28
Default branch
main
View the original SKILL.md

PyDESeq2

Overview

PyDESeq2 is a Python implementation of DESeq2 for differential expression analysis with bulk RNA-seq data. Design and execute complete workflows from data loading through result interpretation, including formulaic single-factor and multi-factor designs, Wald tests with multiple testing correction, optional apeGLM shrinkage, and integration with pandas and AnnData.

When to Use This Skill

This skill should be used when:

  • Analyzing bulk RNA-seq count data for differential expression
  • Comparing gene expression between experimental conditions (e.g., treated vs control)
  • Performing multi-factor designs accounting for batch effects or covariates
  • Converting R-based DESeq2 workflows to Python
  • Integrating differential expression analysis into Python-based pipelines
  • Users mention "DESeq2", "differential expression", "RNA-seq analysis", or "PyDESeq2"

Quick Start Workflow

For users who want to perform a standard differential expression analysis:

import pandas as pd
from pydeseq2.dds import DeseqDataSet
from pydeseq2.default_inference import DefaultInference
from pydeseq2.ds import DeseqStats

# 1. Load data
counts_df = pd.read_csv("counts.csv", index_col=0).T  # Transpose to samples × genes
metadata = pd.read_csv("metadata.csv", index_col=0)

# 2. Filter low-count genes
genes_to_keep = counts_df.columns[counts_df.sum(axis=0) >= 10]
counts_df = counts_df[genes_to_keep]

# 3. Make the reference level explicit and fit DESeq2
metadata["condition"] = pd.Categorical(
    metadata["condition"], categories=["control", "treated"]
)
inference = DefaultInference(n_cpus=4)
dds = DeseqDataSet(
    counts=counts_df,
    metadata=metadata,
    design="~condition",
    refit_cooks=True,
    inference=inference,
)
dds.deseq2()

# 4. Perform statistical testing
ds = DeseqStats(
    dds,
    contrast=["condition", "treated", "control"],
    inference=inference,
)
ds.summary()

# 5. Access results
results = ds.results_df
significant = results[results.padj < 0.05]
print(f"Found {len(significant)} significant genes")

Core Workflow Steps

The six steps, with code, are in references/core_workflow_steps.md:

  1. Data preparation — raw integer counts with genes as columns and samples as rows, and matching metadata. Never feed normalized or transformed values to DESeq2.
  2. Design specification — the design factors and the reference level for each.
  3. DESeq2 fitting — size factors, dispersions, and the GLM fit.
  4. Statistical testing — Wald tests for a named contrast.
  5. Optional LFC shrinkage — for ranking and visualization.
  6. Result export — the results table with adjusted p-values.

Multi-factor designs, contrasts, and interaction terms are in references/analysis_patterns.md.

Using the Analysis Script

This skill includes a complete command-line script for standard analyses:

# Basic usage
python scripts/run_deseq2_analysis.py \
  --counts counts.csv \
  --metadata metadata.csv \
  --design "~condition" \
  --contrast condition treated control \
  --output results/

# With additional options
python scripts/run_deseq2_analysis.py \
  --counts counts.csv \
  --metadata metadata.csv \
  --design "~batch + condition" \
  --contrast condition treated control \
  --output results/ \
  --min-counts 10 \
  --alpha 0.05 \
  --n-cpus 4 \
  --shrink-coeff "condition[T.treated]" \
  --plots

Script features:

  • Automatic data loading and validation
  • Gene and sample filtering
  • Complete DESeq2 pipeline execution
  • Statistical testing with customizable parameters
  • Result export (CSV and portable AnnData/H5AD)
  • Explicit LFC shrinkage coefficient support for PyDESeq2 0.5.x
  • Optional visualization (volcano and MA plots)

Refer users to scripts/run_deseq2_analysis.py when they need a standalone analysis tool or want to batch process multiple datasets.

Result Interpretation

Identifying Significant Genes

# Filter by adjusted p-value
significant = ds.results_df[ds.results_df.padj < 0.05]

# Filter by both significance and effect size
sig_and_large = ds.results_df[
    (ds.results_df.padj < 0.05) &
    (abs(ds.results_df.log2FoldChange) > 1)
]

# Separate up- and down-regulated
upregulated = significant[significant.log2FoldChange > 0]
downregulated = significant[significant.log2FoldChange < 0]

print(f"Upregulated: {len(upregulated)}")
print(f"Downregulated: {len(downregulated)}")

Ranking and Sorting

# Sort by adjusted p-value
top_by_padj = ds.results_df.sort_values("padj").head(20)

# Sort by absolute fold change (use shrunk values)
ds.lfc_shrink(coeff="condition[T.treated]")
ds.results_df["abs_lfc"] = abs(ds.results_df.log2FoldChange)
top_by_lfc = ds.results_df.sort_values("abs_lfc", ascending=False).head(20)

# Sort by a combined metric
ds.results_df["score"] = -np.log10(ds.results_df.padj) * abs(ds.results_df.log2FoldChange)
top_combined = ds.results_df.sort_values("score", ascending=False).head(20)

Quality Metrics

# Check normalization (size factors should be close to 1)
print("Size factors:", dds.obs["size_factors"])

# Examine dispersion estimates
import matplotlib.pyplot as plt
plt.hist(dds.var["dispersions"], bins=50)
plt.xlabel("Dispersion")
plt.ylabel("Frequency")
plt.title("Dispersion Distribution")
plt.show()

# Check p-value distribution (should be mostly flat with peak near 0)
plt.hist(ds.results_df.pvalue.dropna(), bins=50)
plt.xlabel("P-value")
plt.ylabel("Frequency")
plt.title("P-value Distribution")
plt.show()

Visualization Guidelines

Volcano Plot

Visualize significance vs effect size:

import matplotlib.pyplot as plt
import numpy as np

results = ds.results_df.copy()
results["-log10(padj)"] = -np.log10(results.padj)

plt.figure(figsize=(10, 6))
significant = results.padj < 0.05

plt.scatter(
    results.loc[~significant, "log2FoldChange"],
    results.loc[~significant, "-log10(padj)"],
    alpha=0.3, s=10, c='gray', label='Not significant'
)
plt.scatter(
    results.loc[significant, "log2FoldChange"],
    results.loc[significant, "-log10(padj)"],
    alpha=0.6, s=10, c='red', label='padj < 0.05'
)

plt.axhline(-np.log10(0.05), color='blue', linestyle='--', alpha=0.5)
plt.xlabel("Log2 Fold Change")
plt.ylabel("-Log10(Adjusted P-value)")
plt.title("Volcano Plot")
plt.legend()
plt.savefig("volcano_plot.png", dpi=300)

MA Plot

Show fold change vs mean expression:

plt.figure(figsize=(10, 6))

plt.scatter(
    np.log10(results.loc[~significant, "baseMean"] + 1),
    results.loc[~significant, "log2FoldChange"],
    alpha=0.3, s=10, c='gray'
)
plt.scatter(
    np.log10(results.loc[significant, "baseMean"] + 1),
    results.loc[significant, "log2FoldChange"],
    alpha=0.6, s=10, c='red'
)

plt.axhline(0, color='blue', linestyle='--', alpha=0.5)
plt.xlabel("Log10(Base Mean + 1)")
plt.ylabel("Log2 Fold Change")
plt.title("MA Plot")
plt.savefig("ma_plot.png", dpi=300)

Troubleshooting Common Issues

Data Format Problems

Issue: "Index mismatch between counts and metadata"

Solution: Ensure sample names match exactly

print("Counts samples:", counts_df.index.tolist())
print("Metadata samples:", metadata.index.tolist())

# Take intersection if needed
common = counts_df.index.intersection(metadata.index)
counts_df = counts_df.loc[common]
metadata = metadata.loc[common]

Issue: "All genes have zero counts"

Solution: Check if data needs transposition

print(f"Counts shape: {counts_df.shape}")
# If genes > samples, transpose is needed
if counts_df.shape[1] < counts_df.shape[0]:
    counts_df = counts_df.T

Design Matrix Issues

Issue: "Design matrix is not full rank"

Cause: Confounded variables (e.g., all treated samples in one batch)

Solution: Remove confounded variable or add interaction term

# Check confounding
print(pd.crosstab(metadata.condition, metadata.batch))

# Either simplify design or add interaction
design = "~condition"  # Remove batch
# OR
design = "~condition + batch + condition:batch"  # Model interaction

No Significant Genes

Diagnostics:

# Check dispersion distribution
plt.hist(dds.var["dispersions"], bins=50)
plt.show()

# Check size factors
print(dds.obs["size_factors"])

# Look at top genes by raw p-value
print(ds.results_df.nsmallest(20, "pvalue"))

Possible causes:

  • Small effect sizes
  • High biological variability
  • Insufficient sample size
  • Technical issues (batch effects, outliers)

Reference Documentation

For comprehensive details beyond this workflow-oriented guide:

  • API Reference (references/api_reference.md): Complete documentation of PyDESeq2 classes, methods, and data structures. Use when needing detailed parameter information or understanding object attributes.

  • Workflow Guide (references/workflow_guide.md): In-depth guide covering complete analysis workflows, data loading patterns, multi-factor designs, troubleshooting, and best practices. Use when handling complex experimental designs or encountering issues.

Load these references into context when users need:

  • Detailed API documentation: Read references/api_reference.md
  • Comprehensive workflow examples: Read references/workflow_guide.md
  • Troubleshooting guidance: Read references/workflow_guide.md (see Troubleshooting section)

Key Reminders

  1. Data orientation matters: Count matrices typically load as genes × samples but need to be samples × genes. Always transpose with .T if needed.

  2. Sample filtering: Remove samples with missing metadata before analysis to avoid errors.

  3. Gene filtering: Filter low-count genes (e.g., < 10 total reads) to improve power and reduce computational time.

  4. Design formula order: Put adjustment variables before the variable of interest (e.g., "~batch + condition" not "~condition + batch").

  5. LFC shrinkage timing: Apply shrinkage after statistical testing and only for visualization/ranking purposes. P-values remain based on unshrunken estimates.

  6. Result interpretation: Use padj < 0.05 for significance, not raw p-values. The Benjamini-Hochberg procedure controls false discovery rate.

  7. Contrast specification: The format is [variable, test_level, reference_level] where test_level is compared against reference_level.

  8. Save intermediate objects: Prefer dds.to_picklable_anndata().write_h5ad("dds_result.h5ad") for portable outputs. Only load pickle files that you created yourself and trust.

Installation and Requirements

uv pip install pydeseq2==0.5.4

System requirements:

  • Python 3.11+
  • PyDESeq2 0.5.4
  • pandas 2.2.0+
  • numpy 2.0.0+
  • scipy 1.12.0+
  • scikit-learn 1.4.0+
  • anndata 0.11.0+
  • formulaic 1.0.2+ and formulaic-contrasts 0.2.0+

Optional for visualization:

  • matplotlib
  • seaborn

Additional Resources

Alternatives

Compare before choosing