SKILL·B00F03

genomic-intelligence

K-Dense-AI
Aktualisiert 1 month ago
6 Ansichten
40,620
3,761
40,620
Auf GitHub ansehen
Entwicklungaiapimcpautomation

Über

Diese Fähigkeit bietet API-Zugriff auf gehostete DNA-Sprachmodelle zur Vorhersage von Genstruktur, regulatorischen Elementen und Expressionsniveaus direkt aus Sequenzdaten. Sie bietet sechs Kernaufgaben – einschließlich Promoter-Identifikation, Erkennung von Splice-Stellen und Expressionsvorhersage – über eine REST-API oder einen gehosteten MCP-Server. Nutzen Sie sie, wenn Sie eine DNA-Sequenz, ein Gen-Symbol oder eine genomische Region haben und diese Vorhersagen benötigen, ohne lokale Modelle oder GPU-Ressourcen verwalten zu müssen.

Schnellinstallation

Claude Code

Empfohlen
Primär
npx skills add K-Dense-AI/claude-scientific-skills -a claude-code
Plugin-BefehlAlternativ
/plugin add https://github.com/K-Dense-AI/claude-scientific-skills
Git CloneAlternativ
git clone https://github.com/K-Dense-AI/claude-scientific-skills.git ~/.claude/skills/genomic-intelligence

Kopieren Sie diesen Befehl und fügen Sie ihn in Claude Code ein, um diese Fähigkeit zu installieren

Dokumentation

Genomic Intelligence — DNA Sequence Models

Genomic Intelligence (GI) serves transformer DNA language models over six sequence-analysis tasks on managed GPUs. Give it a gene symbol, a genomic region, or a DNA/FASTA sequence; it returns structured predictions — promoter regions, splice sites, enhancer activity, chromatin state, expression (log TPM), and de-novo gene annotation. Nothing runs locally: no model weights, no GPU, no heavy Python stack. It is a thin client over a hosted, versioned inference API.

Official docs: docs.genomicintelligence.ai · REST contract at api.genomicintelligence.ai/v1/openapi.json · hosted MCP server at https://mcp.genomicintelligence.ai/mcp

When to use this skill

Use GI when the user has DNA and wants a model prediction:

  • Find promoters in a genomic region (promoter)
  • Predict splice donor/acceptor sites (splice)
  • Score enhancer activity — developmental & housekeeping (enhancer)
  • Annotate chromatin state across hundreds of tracks (chromatin)
  • Predict expression as log(TPM+1) from a sequence + cell-type context (expression)
  • Annotate genes/transcripts de novo, no reference needed (annotation)
  • Find the genes in a region and predict each one's expression (composite)

Not for local alignment, variant calling, or file I/O — use a local tool (BioPython, bcftools) for those. GI is for model inference from sequence.

For research and development use, not clinical or diagnostic decisions.

Two ways to call GI

Hosted MCP server (best for AI agents — keyless)

GI hosts an MCP server at https://mcp.genomicintelligence.ai/mcp (Streamable HTTP). When your agent host supports MCP, prefer it: it works keyless against a capped public demo quota (zero setup), and an optional gi_ bearer key raises the quota. It exposes acquisition tools that return a sequence handle (sequence_ref) and predict_* tools that take that handle — so large sequences never bloat the context. See MCP workflow below and references/mcp.md.

REST API (universal)

Plain HTTP with requests against https://api.genomicintelligence.ai/v1. The REST path requires a GI_API_KEY (a gi_ bearer). Use it on any host, in scripts, or when you need the raw envelope. See Core REST workflow.

Access and authentication

  1. The hosted MCP demo is keyless — try it with nothing set.
  2. The REST /v1 API needs a key, sent as Authorization: Bearer <key>. Request one at [email protected].
  3. Never hardcode the key. Read it from the GI_API_KEY environment variable (or a .env via python-dotenv). Never commit keys.
export GI_API_KEY="gi_yourkeyhere"     # optional for MCP; required for REST
export GI_BASE_URL="https://api.genomicintelligence.ai"   # override for staging

Keys are scoped to a partner tier with concurrency and per-minute caps. A 429 means you hit a cap — back off and retry, or ask GI to raise your tier.

The six tasks

All REST tasks share one shape: POST /v1/tasks/{task}/predict with body {sequence, sequence_name, model?, options?}, returning a {data, meta} envelope. What differs per task:

TaskModeLength boundNotes
promotersync1–500,000 bpsliding-window promoter regions
splicesync1–500,000 bpdonor/acceptor sites (long-context BigBird)
enhancersync1–500,000 bpdev + housekeeping scores (DeepSTARR, Drosophila)
chromatinsync1–500,000 bphundreds of tracks (DeepSEA)
expressionsyncexactly 9,198 bplog(TPM+1); needs a cell-type description
annotationasync1–500,000 bpde-novo transcripts; submit + poll

Omit model and the API uses the task's default — that is the recommended call. Default model IDs are intentionally not documented here: defaults change and retired IDs fail hard, so never hardcode one. To pin a model, or to pick a non-human one (Drosophila, yeast, and Arabidopsis models exist for several tasks), discover IDs at call time with GET /v1/tasks/{task}/models (REST) or list_models (MCP) — and never invent one. Full per-task output shapes are in references/tasks.md.

Two hard rules the model enforces:

  • expression needs exactly 9,198 bp, a window centred on the TSS (4,599 upstream + TSS + 4,598 downstream). Any other length is rejected. Use the acquisition helpers below to build it — do not truncate by hand.
  • expression needs a description — a cell-type / assay string (e.g. "K562 cells"), passed as options.description.

Sequence acquisition

You rarely start from a raw 9,198 bp string. Acquire sequence first:

  • From a gene symbol → MCP fetch_ensembl_sequence(gene=...); from coordinatesfetch_region(region=...). Both fetch public Ensembl reference sequence (no key). REST users can query Ensembl REST directly. (find_genes is the annotation task, not an acquisition tool.)
  • For expression → use the TSS-centred fetch so the window is exactly 9,198 bp. MCP: fetch_gene_for_expression (handles the centring). Do not build the window by hand.
  • From a local FASTA → MCP store_inline_sequence, or read the file yourself for REST. (load_local_fasta exists only in local deployments, not on the hosted server.)
  • A demo sequence → MCP load_demo_sequence(name=...) returns a ready handle (great for a keyless smoke test); name is required.

See references/sequence-acquisition.md for the exact Ensembl calls and the expression-window math.

Core REST workflow

Sync tasks (promoter, splice, enhancer, chromatin, expression) are one call:

import os, requests

BASE = os.environ.get("GI_BASE_URL", "https://api.genomicintelligence.ai")
HEADERS = {"Authorization": f"Bearer {os.environ['GI_API_KEY']}"}

def predict(task, sequence, sequence_name, model=None, options=None):
    body = {"sequence": sequence, "sequence_name": sequence_name}
    if model:   body["model"] = model
    if options: body["options"] = options
    r = requests.post(f"{BASE}/v1/tasks/{task}/predict", headers=HEADERS, json=body)
    r.raise_for_status()          # 400 invalid; 401 no/bad key; 413 too long; 429 rate limit
    return r.json()               # {"data": {...}, "meta": {...}}

# Promoter:
out = predict("promoter", seq, "TP53_region")
print(out["data"]["summary"])

# Expression — exactly 9,198 bp + a cell-type description:
out = predict("expression", tss_window_9198bp, "HBB",
              options={"description": "K562 cells"})
print(out["data"]["prediction"]["expression_log_tpm"])

Async: annotation

annotation is submit-then-poll. Send Prefer: respond-async, get a job_id, poll until terminal:

import time

r = requests.post(f"{BASE}/v1/tasks/annotation/predict",
                  headers={**HEADERS, "Prefer": "respond-async"},
                  json={"sequence": seq, "sequence_name": "TP53"})
r.raise_for_status()              # 202 Accepted
job_id = r.json()["data"]["job_id"]

while True:
    j = requests.get(f"{BASE}/v1/tasks/jobs/{job_id}", headers=HEADERS)
    if j.status_code == 200:      # terminal: body is the final {data, meta}
        break
    j.raise_for_status()          # 202 = still running (2xx, won't raise)
    time.sleep(5)                 # ~20 s typical for ~20 kb
transcripts = j.json()["data"]["transcripts"]

MCP workflow (handle-based)

On an MCP host, acquire a handle, then predict against it — sequences stay out of the context:

# 1. Acquire a sequence handle (each returns a sequence_ref):
load_demo_sequence(name="promoter_tp53")  # keyless smoke test; `name` is REQUIRED
fetch_ensembl_sequence(gene="TP53")       # gene symbol or Ensembl ID -> handle
fetch_region(region="chr11:5,225,000-5,235,000")   # coordinates -> handle
fetch_gene_for_expression(gene="HBB")     # TSS-centred 9,198 bp handle for expression

# 2. Predict against the handle:
predict_promoter(sequence_ref=<ref>)
predict_expression(sequence_ref=<ref>, description="K562 cells")
predict_splice(sequence_ref=<ref>)        # + predict_enhancer / predict_chromatin

# 3. Annotation on MCP is `find_genes` (there is no predict_annotation).
#    It takes a handle, not a region, and runs async internally:
find_genes(sequence_ref=<ref>)            # wait=True (default) returns the result
find_genes(sequence_ref=<ref>, wait=False)  # -> job_id; poll get_job(job_id)

# Discover models with list_models(task); reference context lives in the
# gi://models, gi://docs/tasks, and gi://account MCP resources.

Composite: find genes, then predict expression

To answer "what genes are in this region and how are they expressed?", use the composite:

  • MCP: find_genes_and_predict_expression(sequence_ref=..., description=...) — takes a handle, not a region (acquire one with fetch_region first); description is required. Finds genes in the sequence and returns an expression prediction for each.
  • REST: call gene discovery, then loop expression per gene (build each TSS-centred 9,198 bp window via the acquisition helpers).

Errors

CodeMeaningAction
400Invalid request / bad sequenceCheck the body; expression must be exactly 9,198 bp and carry description
401Missing/invalid key (REST)Set GI_API_KEY; or use the keyless MCP demo
413Sequence too longStay within the task's length bound (≤500,000 bp)
429Rate / concurrency capBack off and retry; ask GI to raise your tier
422Validation failed (validation_failed)The most common failure: expression not exactly 9,198 bp, or a sequence below the model's minimum length
5xxServer errorRetry; if persistent, contact support

Reference files

  • references/tasks.md — per-task output shapes, model registries, the async annotation contract.
  • references/api-and-auth.md — REST endpoints, the {data, meta} envelope, auth, base-URL override, tiers.
  • references/mcp.md — the hosted MCP tool list, the handle-based flow, and the gi:// resources.
  • references/sequence-acquisition.md — Ensembl fetch calls and the expression-window (9,198 bp, TSS-centred) math.

GitHub Repository

K-Dense-AI/claude-scientific-skills
Pfad: skills/genomic-intelligence
0
agent-skillsai-scientistbioinformaticschemoinformaticsclaudeclaude-skills
FAQ

Häufig gestellte Fragen

Was ist der Skill genomic-intelligence?

genomic-intelligence ist ein Claude Skill von K-Dense-AI. Skills bündeln Anweisungen und Ressourcen, die Claude bei Bedarf lädt, um Aufgaben rund um genomic-intelligence ohne zusätzliche Eingaben auszuführen.

Wie installiere ich genomic-intelligence?

Verwende die Installationsbefehle auf dieser Seite: Füge genomic-intelligence als Plugin zu Claude Code hinzu oder klone das Repository in dein Skills-Verzeichnis. Starte Claude danach neu, damit der Skill geladen wird.

Zu welcher Kategorie gehört genomic-intelligence?

genomic-intelligence gehört zur Kategorie Entwicklung.

Kann ich genomic-intelligence kostenlos nutzen?

Ja. genomic-intelligence ist auf AIMCP gelistet und kann kostenlos installiert werden.

Verwandte Skills

qmd
Entwicklung

qmd ist ein lokales Such- und Indexierungs-CLI-Tool, das Entwicklern ermöglicht, lokale Dateien mittels Hybridsuche zu indexieren und zu durchsuchen, die BM25, Vektoreinbettungen und Neuordnung kombiniert. Es unterstützt sowohl die Kommandozeilennutzung als auch den MCP-Modus (Model Context Protocol) zur Integration mit Claude. Das Tool verwendet Ollama für Einbettungen und speichert Indizes lokal, was es ideal für die direkte Suche in Dokumentationen oder Codebasen vom Terminal aus macht.

Skill ansehen
subagent-driven-development
Entwicklung

Diese Fähigkeit führt Implementierungspläne aus, indem für jede unabhängige Aufgabe ein neuer Subagent bereitgestellt wird, mit Code-Review zwischen den Aufgaben. Sie ermöglicht schnelle Iterationen, während Qualitätssicherungsschritte durch diesen Review-Prozess gewahrt bleiben. Nutzen Sie sie, wenn Sie überwiegend unabhängige Aufgaben innerhalb derselben Sitzung bearbeiten, um kontinuierlichen Fortschritt mit integrierten Qualitätsprüfungen zu gewährleisten.

Skill ansehen
mcporter
Entwicklung

Die mcporter-Skill ermöglicht es Entwicklern, Model Context Protocol (MCP)-Server direkt aus Claude heraus zu verwalten und aufzurufen. Sie bietet Befehle, um verfügbare Server aufzulisten, deren Tools mit Argumenten aufzurufen sowie Authentifizierung und Daemon-Lebenszyklus zu handhaben. Nutzen Sie diese Skill, um MCP-Server-Funktionalität in Ihren Entwicklungs-Workflow zu integrieren und zu testen.

Skill ansehen
adk-deployment-specialist
Entwicklung

Diese Fähigkeit stellt Vertex AI ADK-Agenten über das A2A-Protokoll bereit und orchestriert sie, verwaltet die AgentCard-Erkennung, Aufgabenübermittlung und unterstützende Tools wie die Code Execution Sandbox und Memory Bank. Sie ermöglicht den Aufbau von Multi-Agenten-Systemen mit sequenziellen, parallelen oder Schleifen-Orchestrierungsmustern in Python, Java oder Go. Verwenden Sie sie, wenn Sie aufgefordert werden, ADK-Agenten bereitzustellen oder Agenten-Workflows auf Google Cloud zu orchestrieren.

Skill ansehen