Mining PubMed & PMC literature (NCBI E-utilities)
SkillDev toolsLets your agent search PubMed and fetch biomedical abstracts and citations for conditions or drugs.
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Then ask your AI: use the Mining PubMed & PMC literature (NCBI E-utilities) skill
About this capability
Searches and fetches PubMed and PMC via NCBI E-utilities (ESearch then EFetch/ESummary) to gather biomedical evidence and build text corpora. Use when the user wants citations for a condition or drug, abstracts to summarize, MeSH-based searches, or a corpus of literature to run NER over. Trigger key
What this skill tells your AI
The instructions your AI receives, as published by maziyarpanahi/openmed in skills/mining-pubmed-literature/SKILL.md and read by ahel’s review.
Search PubMed (citations/abstracts) and PMC (full text) programmatically
with NCBI E-utilities — the stable HTTP interface to Entrez. The core pattern
is two steps: ESearch returns matching record IDs (PMIDs), then EFetch (or
ESummary) downloads the records. The Entrez History server (usehistory=y)
lets you chain the two without re-sending thousands of IDs.
E-utilities are public. No key is required, but a free API key raises your limit from 3 to 10 requests/second and is strongly recommended for batch work.
When to use
- OpenMed extracted a diagnosis, drug, or gene and you want supporting literature.
- You need abstracts to summarize or to assemble a corpus for biomedical NER.
- You want MeSH-anchored, reproducible searches (date ranges, article types).
For ClinicalTrials.gov use searching-clinicaltrials; this skill is for the
published literature.
Quick start (real E-utilities calls)
Base URL: https://eutils.ncbi.nlm.nih.gov/entrez/eutils/. JSON for ESearch/
ESummary via retmode=json; EFetch returns text or XML (no JSON for PubMed).
import requests, time
BASE = "https://eutils.ncbi.nlm.nih.gov/entrez/eutils"
API_KEY = None # set to your free NCBI key to get 10 req/s instead of 3
def _params(**kw):
if API_KEY:
kw["api_key"] = API_KEY
return kw
def esearch(term: str, retmax: int = 50) -> dict:
"""Find PMIDs; usehistory=y stores them on the Entrez History server."""
r = requests.get(f"{BASE}/esearch.fcgi", params=_params(
db="pubmed", term=term, retmax=retmax,
usehistory="y", retmode="json"), timeout=30)
r.raise_for_status()
res = r.json()["esearchresult"]
return {"count": int(res["count"]), "ids": res["idlist"],
"webenv": res["webenv"], "query_key": res["querykey"]}
def efetch_abstracts(webenv: str, query_key: str, retmax: int = 50) -> str:
"""Pull abstracts by reference to the stored result set (no ID list needed)."""
r = requests.get(f"{BASE}/efetch.fcgi", params=_params(
db="pubmed", WebEnv=webenv, query_key=query_key,
retmax=retmax, rettype="abstract", retmode="text"), timeout=60)
r.raise_for_status()
return r.text
hits = esearch('("type 2 diabetes"[MeSH]) AND metformin AND 2023:2025[pdat]')
print(hits["count"], "papers")
abstracts = efetch_abstracts(hits["webenv"], hits["query_key"])
Equivalent cURL (search then fetch one PMID's abstract):
curl "https://eutils.ncbi.nlm.nih.gov/entrez/eutils/esearch.fcgi?db=pubmed&term=metformin&retmode=json"
curl "https://eutils.ncbi.nlm.nih.gov/entrez/eutils/efetch.fcgi?db=pubmed&id=38000000&rettype=abstract&retmode=text"
ESummary for structured metadata
When you need titles/authors/journal/date as JSON (not the full abstract), use ESummary — it returns one record per ID:
def esummary(ids: list[str]) -> dict:
r = requests.get(f"{BASE}/esummary.fcgi", params=_params(
db="pubmed", id=",".join(ids), retmode="json"), timeout=30)
r.raise_for_status()
return r.json()["result"] # keyed by PMID: title, pubdate, source, authors…
For PMC full text, repeat with db=pmc and EFetch rettype=""/retmode=xml
(JATS XML). Respect each article's license before redistributing full text.
Workflow
- Build the query. Combine OpenMed-extracted terms with MeSH tags and field
filters:
"<disease>"[MeSH] AND <drug>[tiab] AND 2020:2025[pdat]. Use[tiab](title/abstract),[au](author),[pdat](publication date). - ESearch with
usehistory=yto captureWebEnv+query_keyand the count. - Batch-fetch with EFetch/ESummary in pages of ≤ ~200 IDs (or by history), sleeping to stay under your rate limit.
- Parse abstracts/metadata; store PMID, title, journal, date, abstract text.
- NER the abstracts with
openmed.analyze_textto extract diseases, drugs, genes, and oncology entities for downstream synthesis.
Hand-off to / from OpenMed
- OpenMed facts → query.
openmed.analyze_text(note)yields Disease, Pharmaceutical, Genomics, and Oncology entities. Turn the top spans into the ESearchterm(optionally grounded: ICD-10 label, RxNorm ingredient, gene symbol) to retrieve targeted evidence. - Abstracts → OpenMed. Feed fetched abstracts straight into
openmed.analyze_text(abstract, model_name="disease_detection_superclinical")(or a Genomics/Oncology model) to structure the literature into entities for evidence tables or knowledge-graph edges. - Queries and abstracts are public literature, not PHI. Still run locally and never embed patient text in a search term.
Edge cases & gotchas
- Rate limits. 3 req/s without a key, 10 with one — exceed it and NCBI returns
HTTP 429. Add
api_key, throttle, and retry with backoff. NCBI also requests atool=andemail=parameter identifying your application. - EFetch has no JSON for PubMed. Use
retmode=text(human-readable) orretmode=xml(PubMedArticle XML) and parse XML for structured fields. - History expires.
WebEnv/query_keyare session-scoped — fetch promptly after searching, or re-run ESearch. - Large result sets. Page with
retstart/retmax(or history) rather than pulling everything at once; cap total fetches. - MeSH lag. Very recent articles may not yet be MeSH-indexed — include
[tiab]term variants so you do not miss them. - Full-text licensing. PMC full text carries per-article licenses; many are not redistributable. Store PMIDs/abstracts freely; check the license before republishing full text.
Standards & references
- E-utilities In-Depth (parameters & syntax) — https://www.ncbi.nlm.nih.gov/books/NBK25499/
- E-utilities Quick Start — https://www.ncbi.nlm.nih.gov/books/NBK25497/
- General introduction & policies — https://www.ncbi.nlm.nih.gov/books/NBK25501/
- API keys & rate limits — https://support.nlm.nih.gov/kbArticle/?pn=KA-05317
- PubMed search field tags — https://pubmed.ncbi.nlm.nih.gov/help/
- MeSH browser — https://meshb.nlm.nih.gov/
Signals
- GitHub stars
- 5k
- Forks
- 666
- Last commit
- Sep 2026
Advanced
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mining-pubmed-literature- Source
- github.com/maziyarpanahi/openmed