skills/etetoolkit/SKILL.md
Analyze, manipulate, compare, annotate, and visualize phylogenetic or other hierarchical trees with ETE 4. Use for Newick/Nexus tree I/O, topology edits and pattern matching, Robinson-Foulds comparisons, gene-tree evolutionary events and reconciliation, NCBI/GTDB taxonomy, SmartView exploration, and publication rendering. Do not use it to infer trees from raw sequences; align sequences and infer a tree first.
npx skillsauth add K-Dense-AI/claude-scientific-skills etetoolkitInstall this skill globally with one command. Works with Claude Code, Cursor, and Windsurf.
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Use ETE 4 to work with an existing tree:
TreePatternPhyloTreeETE does not replace sequence alignment or phylogenetic inference software. For raw sequences, first use MAFFT or another aligner and IQ-TREE 2, FastTree, or another inference tool; then load the resulting tree into ETE.
This skill targets ETE 4.4.0, released September 3, 2025 and verified as the current PyPI release on July 23, 2026.
Use https://etetoolkit.github.io/ete/ for ETE 4 documentation. The
etetoolkit.org/docs/latest pages are legacy ETE 3 documentation despite the
URL name.
Do not silently translate these examples back to ETE 3:
ete4, not ete3parser=, not format=props, add_prop(), and add_props()leaves(), descendants(), and related methods return iteratorsnode.is_leaf and node.is_root are properties, not methodstree["name"], not tree & "name"For porting older code, load
references/migration-ete3-to-ete4.md.
Install the pinned base package:
uv pip install "ete4==4.4.0"
Add only the visualization extra required by the workflow:
# SmartView static PNG screenshots
uv pip install "ete4[render-sm]==4.4.0"
# Legacy Qt renderer for PNG, PDF, and SVG
uv pip install "ete4[treeview]==4.4.0"
Confirm the active environment:
uv run --with "ete4==4.4.0" python -c "import ete4; print(ete4.__version__)"
No credentials are required. NCBI and GTDB workflows download public taxonomy
data and can consume substantial disk space; see
references/taxonomy.md before the first update.
from pathlib import Path
from ete4 import Tree
# Use an open file object for files; reserve strings for Newick text.
with Path("tree.nw").open(encoding="utf-8") as handle:
tree = Tree(handle, parser=1) # parser 1: internal node names
print(tree.to_str(props=["name", "dist"], compact=True))
print("Leaves:", list(tree.leaf_names()))
# Search and annotate.
focal = tree["species1"]
focal.add_props(host="human", status="focal")
# Keep selected tips while preserving pairwise branch-length distances.
tree.prune(
["species1", "species2", "species3"],
preserve_branch_length=True,
)
# Root and serialize explicitly.
tree.set_midpoint_outgroup()
tree.write(
outfile="processed.nw",
parser=1,
props=["host", "status"],
)
Choose the parser deliberately. A parser mismatch is the most common cause of
NewickError, lost internal labels, or support values being read as names.
See references/api_reference.md.
from ete4 import Tree
tree = Tree("((A:1,B:1)CladeAB:0.4,C:2)Root;", parser=1)
for node in tree.traverse("preorder"):
label = node.name if node.name is not None else node.id
print(label, node.level, node.is_leaf, node.dist)
tree["A"].add_prop("group", "case")
tree["B"].add_prop("group", "control")
mrca = tree.common_ancestor("A", "B")
print(mrca.name)
tree.write(
outfile="annotated.nhx",
parser=1,
props=["group"],
format_root_node=True,
)
Node names need not be unique. tree["A"] returns the first match; use
list(tree.search_nodes(name="A")) and validate the count when duplicates are
possible.
from ete4 import Tree
tree_a = Tree("((A,B),(C,D));")
tree_b = Tree("((A,C),(B,D));")
(
rf,
max_rf,
common_leaves,
edges_a,
edges_b,
discarded_a,
discarded_b,
) = tree_a.robinson_foulds(tree_b)
normalized_rf = rf / max_rf if max_rf else 0.0
print(rf, max_rf, normalized_rf, sorted(common_leaves))
RF comparison uses shared leaf labels and requires meaningful, preferably unique names. Decide explicitly whether rooted or unrooted comparison is scientifically appropriate.
from ete4 import PhyloTree
gene_tree = PhyloTree(
"((Hsa|g1,Ptr|g1),(Hsa|g2,Mmu|g1));",
sp_naming_function=lambda name: name.split("|", 1)[0],
)
for event in gene_tree.get_descendant_evol_events(sos_thr=0.0):
relationship = "speciation/orthology" if event.etype == "S" else "duplication/paralogy"
print(relationship, sorted(event.in_seqs), sorted(event.out_seqs))
Species-overlap calls are inferences from the supplied topology and naming
function, not independent evidence of orthology. Pass the naming function
explicitly, and use a rooted, fully bifurcating gene tree. For strict
reconciliation, use a curated species tree and
gene_tree.reconcile(species_tree).
from ete4 import NCBITaxa
ncbi = NCBITaxa()
names = ["Homo sapiens", "Pan troglodytes", "Mus musculus"]
name_to_taxids = ncbi.get_name_translator(names)
missing = [name for name in names if name not in name_to_taxids]
if missing:
raise ValueError(f"Names not resolved by NCBI taxonomy: {missing}")
taxids = [name_to_taxids[name][0] for name in names]
taxonomy_tree = ncbi.get_topology(taxids)
print(taxonomy_tree.to_str(props=["sci_name", "rank"]))
ETE 4 also provides GTDBTaxa for genome-centric bacterial and archaeal
taxonomy. Do not mix NCBI numeric TaxIDs and GTDB string identifiers.
Interactive SmartView:
from ete4 import Tree
tree = Tree("((A:1,B:1)90:0.2,C:1);", parser="support")
tree.explore()
Static SmartView screenshot:
tree.render_sm("tree.png", w=1200, h=800)
render_sm() produces PNG screenshot data; use the Qt treeview renderer when
the deliverable must be vector PDF or SVG. Load
references/visualization.md for layouts,
faces, remote exploration, and renderer selection.
Run from this skill directory. The commands below use a pinned, isolated ETE 4
runtime through uv run --with.
uv run --with "ete4==4.4.0" python scripts/tree_operations.py \
stats tree.nw --parser 1
uv run --with "ete4==4.4.0" python scripts/tree_operations.py \
ascii tree.nw --parser 1 --props name,dist
uv run --with "ete4==4.4.0" python scripts/tree_operations.py \
convert tree.nw output.nw \
--input-parser 1 --output-parser 1
uv run --with "ete4==4.4.0" python scripts/tree_operations.py \
reroot tree.nw rooted.nw \
--parser 1 --midpoint
uv run --with "ete4==4.4.0" python scripts/tree_operations.py \
prune tree.nw pruned.nw \
--parser 1 --keep species1 species2 species3
uv run --with "ete4==4.4.0" python scripts/tree_operations.py \
compare tree_a.nw tree_b.nw
Use --keep-file taxa.txt instead of --keep ... for one taxon per line.
The script refuses ambiguous or missing requested names rather than silently
producing a partial tree.
# Interactive SmartView
uv run --with "ete4==4.4.0" python scripts/quick_visualize.py \
tree.nw --parser 1
# SmartView PNG (requires ete4[render-sm])
uv run --with "ete4[render-sm]==4.4.0" python scripts/quick_visualize.py \
tree.nw tree.png \
--parser support --mode circular --show-support --color-by-support
# Vector output via Qt treeview (requires ete4[treeview])
uv run --with "ete4[treeview]==4.4.0" python scripts/quick_visualize.py \
tree.nw tree.svg \
--parser 1 --engine treeview --title "Species phylogeny"
Before reporting a result:
get_cached_content() for repeated
descendant-content queries.Load only the reference needed for the task:
references/api_reference.md — ETE 4 core
classes, parsers, properties, traversal, I/O, topology, and comparisonreferences/workflows.md — complete analysis
patterns, validation, reconciliation, batching, and large-tree workreferences/visualization.md — SmartView,
layouts/faces, PNG screenshots, and Qt vector renderingreferences/taxonomy.md — NCBI and GTDB setup,
translation, topology, annotation, and reproducibilityreferences/migration-ete3-to-ete4.md
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