'Drug Warning Intelligence Report - Generate drug warning report: ChEMBL
Scanned 9/11/2026
Install to Claude Code
npx -y skills add InternScience/DrClaw --skill drug_warning_report --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: drug_warning_report
description: 'Drug Warning Intelligence Report - Generate drug warning report: ChEMBL
drug warnings, FDA boxed warnings, adverse reactions, and environmental warnings.
Use this skill for pharmacovigilance tasks involving get drug warning by id get
boxed warning info by drug name get adverse reactions by drug name get environmental
warning by drug name. Combines 4 tools from 2 SCP server(s).'
i18n:
zh:
description: 生成药物警告情报报告。
---
# Drug Warning Intelligence Report
**Discipline**: Pharmacovigilance | **Tools Used**: 4 | **Servers**: 2
## Description
Generate drug warning report: ChEMBL drug warnings, FDA boxed warnings, adverse reactions, and environmental warnings.
## Tools Used
- **`get_drug_warning_by_id`** from `chembl-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/4/Origene-ChEMBL`
- **`get_boxed_warning_info_by_drug_name`** from `fda-drug-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug`
- **`get_adverse_reactions_by_drug_name`** from `fda-drug-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug`
- **`get_environmental_warning_by_drug_name`** from `fda-drug-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug`
## Workflow
1. Get ChEMBL drug warnings
2. Get FDA boxed warnings
3. Get adverse reactions
4. Get environmental warnings
## Test Case
### Input
```json
{
"drug_name": "rosiglitazone",
"warning_id": 1
}
```
### Expected Steps
1. Get ChEMBL drug warnings
2. Get FDA boxed warnings
3. Get adverse reactions
4. Get environmental warnings
## Usage Example
> **Note:** Replace `<YOUR_SCP_HUB_API_KEY>` with your own SCP Hub API Key. You can obtain one from the [SCP Platform](https://scphub.intern-ai.org.cn).
```python
import asyncio
import json
from mcp import ClientSession
from mcp.client.streamable_http import streamablehttp_client
from mcp.client.sse import sse_client
SERVERS = {
"chembl-server": "https://scp.intern-ai.org.cn/api/v1/mcp/4/Origene-ChEMBL",
"fda-drug-server": "https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug"
}
async def connect(url, transport_type):
transport = streamablehttp_client(url=url, headers={"SCP-HUB-API-KEY": "<YOUR_SCP_HUB_API_KEY>"})
read, write, _ = await transport.__aenter__()
ctx = ClientSession(read, write)
session = await ctx.__aenter__()
await session.initialize()
return session, ctx, transport
def parse(result):
try:
if hasattr(result, 'content') and result.content:
c = result.content[0]
if hasattr(c, 'text'):
try: return json.loads(c.text)
except: return c.text
return str(result)
except: return str(result)
async def main():
# Connect to required servers
sessions = {}
sessions["chembl-server"], _, _ = await connect("https://scp.intern-ai.org.cn/api/v1/mcp/4/Origene-ChEMBL", "streamable-http")
sessions["fda-drug-server"], _, _ = await connect("https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug", "streamable-http")
# Execute workflow steps
# Step 1: Get ChEMBL drug warnings
result_1 = await sessions["chembl-server"].call_tool("get_drug_warning_by_id", arguments={})
data_1 = parse(result_1)
print(f"Step 1 result: {json.dumps(data_1, indent=2, ensure_ascii=False)[:500]}")
# Step 2: Get FDA boxed warnings
result_2 = await sessions["fda-drug-server"].call_tool("get_boxed_warning_info_by_drug_name", arguments={})
data_2 = parse(result_2)
print(f"Step 2 result: {json.dumps(data_2, indent=2, ensure_ascii=False)[:500]}")
# Step 3: Get adverse reactions
result_3 = await sessions["fda-drug-server"].call_tool("get_adverse_reactions_by_drug_name", arguments={})
data_3 = parse(result_3)
print(f"Step 3 result: {json.dumps(data_3, indent=2, ensure_ascii=False)[:500]}")
# Step 4: Get environmental warnings
result_4 = await sessions["fda-drug-server"].call_tool("get_environmental_warning_by_drug_name", arguments={})
data_4 = parse(result_4)
print(f"Step 4 result: {json.dumps(data_4, indent=2, ensure_ascii=False)[:500]}")
# Cleanup
print("Workflow complete!")
if __name__ == "__main__":
asyncio.run(main())
```
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