What is boltz?
Structure prediction for protein, nucleic-acid, and small-molecule complexes with Boltz-2 (Passaro & Wohlwend et al. 2025, github.
xuzhougeng/wisp-science
Structure prediction for protein, nucleic-acid, and small-molecule complexes with Boltz-2 (Passaro & Wohlwend et al. 2025, github.com/jwohlwend/boltz). Reach for this skill to validate designed binders against a target, to co-fold a protein with a SMILES or CCD ligand, or to get an open-source AlphaFold3 alternative with optional binding-affinity prediction.
npx skills add https://github.com/xuzhougeng/wisp-science --skill "skills/boltz"Quick start
Install it or open the source, trigger it with a clear task, then follow the source workflow.
npx skills add https://github.com/xuzhougeng/wisp-science --skill "skills/boltz"Use boltz to help me with: [describe your task]. Before you begin, tell me what input you need, the steps you will follow, and the expected output.
No structured workflow was detected; follow the original SKILL.md below.
Continue to the workflowDirect answers
Structure prediction for protein, nucleic-acid, and small-molecule complexes with Boltz-2 (Passaro & Wohlwend et al. 2025, github.
It is relevant to workflows involving the tasks described in the upstream documentation.
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SkillSignal brief
Structure prediction for protein, nucleic-acid, and small-molecule complexes with Boltz-2 (Passaro & Wohlwend et al. 2025, github.
Useful in these contexts
Core capabilities
Quality breakdown
Based on traceable docs and repository signals; stars are not treated as quality.
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When the user wants to plan, design, or implement an A/B test or experiment, or build a growth experimentation program. Also use when the user mentions "A/B test," "split test," "experiment," "test this change," "variant copy," "multivariate test," "hypothesis," "should I test this," "which version is better," "test two versions," "statistical significance," "how long should I run this test," "growth experiments," "experiment velocity," "experiment backlog," "ICE score," "experimentation program
When the user wants to reduce churn, build cancellation flows, set up save offers, recover failed payments, or implement retention strategies. Also use when the user mentions 'churn,' 'cancel flow,' 'offboarding,' 'save offer,' 'dunning,' 'failed payment recovery,' 'win-back,' 'retention,' 'exit survey,' 'pause subscription,' 'involuntary churn,' 'people keep canceling,' 'churn rate is too high,' 'how do I keep users,' or 'customers are leaving.' Use this whenever someone is losing subscribers o
Grounded design brief from the adopted corpus — style, WCAG-checked color tokens, typography, layout pattern, anti-patterns. Use on ui-design-brief or any which-style/palette/font/chart decision.
Write and maintain DESIGN.md + PRODUCT.md — captures visual decisions and interaction patterns so design tasks stay consistent across sessions without re-scanning past work.
Use BEFORE writing or editing any non-trivial UI — inventories components, design tokens, shadcn primitives, and reusable patterns into state.ui_audit. Hard gate for the ui directive set.
Boltz-2 is the open-weights diffusion co-folder closest in surface to
AlphaFold3: a YAML describing protein, DNA, RNA, and ligand chains in, mmCIF
plus pTM/ipTM/pLDDT confidences out, with an optional small-molecule affinity
head. Among our four co-fold skills it is the default for binder-validation
campaigns — fully open MIT weights and the fastest sampler; pick chai1 when
you want a second independent model for consensus, openfold3 when AF3-faithful
settings matter, and esmfold2 when you can live without an MSA. Code and
weights are MIT (PyPI boltz, github.com/jwohlwend/boltz).
# complex.yaml
version: 1
sequences:
- protein:
id: A
sequence: MVTPEGNVSLVDESLLVGVTDEDRAVRS... # target
- protein:
id: B
sequence: AIQRTPKIQVYSRHPAENG... # binder
- ligand:
id: L
smiles: 'N[C@@H](Cc1ccc(O)cc1)C(=O)O' # or ccd: SAH
boltz predict complex.yaml \
--use_msa_server --out_dir out/ --recycling_steps 3 --diffusion_samples 5
Each protein chain needs an MSA; without one the run exits before the model
loads. --use_msa_server queries api.colabfold.com (expect a 30–90 s pause
per chain) and is the right default unless you already have an .a3m to name
under msa: in the YAML. Setting msa: empty forces single-sequence mode —
that is an accuracy sacrifice, not a speed or memory optimization, because the
MSA search runs on CPU before the GPU stage starts.
Per input the output lands at out/boltz_results_complex/predictions/complex/.
Read confidence_complex_model_0.json first: iptm > 0.5 is the community
pass line for an interface, complex_plddt > 0.7 for the fold itself, and
confidence_score is the weighted aggregate the structures are ranked by.
Structures themselves are complex_model_{0..N-1}.cif (or .pdb with
--output_format pdb).
Add a properties: block naming one ligand chain as the binder and Boltz-2
predicts protein–small-molecule binding affinity alongside the structure:
properties:
- affinity:
binder: L # the ligand chain id, not the protein
Output gains affinity_complex.json next to the confidence file:
affinity_pred_value is log10(IC50 in μM) — lower is tighter (≈0 → 1 μM,
−3 → 1 nM); affinity_probability_binary is the 0–1 binder-vs-non-binder
score and is what to rank hits by. One affinity ligand per input; the binder
must be a ligand chain (no protein–protein affinity), and Boltz v2.2.x caps
affinity ligands at 128 atoms. FASTA inputs cannot request affinity at all.
msa: empty is an accuracy hit, not a memory saveSingle-sequence mode has been suggested elsewhere as a way to fit smaller GPUs.
It does not help: the MSA search is CPU-side, so --use_msa_server versus
msa: empty changes nothing about peak VRAM. If you OOM, lower
--diffusion_samples or --max_parallel_samples, or move to an 80 GB tier;
do not trade away the MSA for it.
ImportError for cuequivariance_ops_torch or its libcue_ops.so means the
compiled triangle-kernel package is not on the loader path. --no_kernels
falls back to the reference PyTorch path — roughly 2× slower, numerically
identical, so it is the right unblock for a one-off and the wrong choice for a
campaign.
Use python only for bounded interactive checks. For a long or GPU-backed
workload, require a selected and probed ssh:<alias> context and load
remote-compute-ssh. Put the documented invocation in a self-contained project
script, activate the remote environment explicitly, stage only small files with
input_paths, and make the command write to a known absolute remote result
path. Submit it with run_in_context and register that exact ssh:// path in
output_specs. Call monitor_run once when waiting is needed, get_run once
for a snapshot, or cancel_run to stop. Do not send a scheduler submission
through the SSH-direct runner.
| You see | It means / do this |
|---|---|
Missing MSA's in input and --use_msa_server flag not set | A protein chain has no MSA — add --use_msa_server or set msa: to an .a3m path in the YAML. |
ImportError: ... cuequivariance_ops_torch / libcue_ops.so | Fast-kernel wheel not visible — add --no_kernels (slower, correct) or fix the env's LD_LIBRARY_PATH. |
KeyError: 'iptm' reading the confidence JSON | Single-chain input — ipTM is interface-only; read ptm instead. |
No affinity_*.json in output | Used FASTA input, or the YAML is missing the properties: block — see Affinity head above. |
Next: compute clash and interface metrics on passing complexes, or feed
them back to proteinmpnn for another design round.