clinical_pharmacology_report

Clinical Pharmacology Report - Generate clinical pharmacology report: PK, PD, mechanism, drug interactions, and special populations. Use this skill for clinical pharmacology tasks involving get pharmacokinetics by drug name get pharmacodynamics by drug name get mechanism of action by drug name get drug interactions by drug name get geriatric use info by drug name. Combines 5 tools from 1 SCP server(s).

157 stars

Best use case

clinical_pharmacology_report is best used when you need a repeatable AI agent workflow instead of a one-off prompt.

Clinical Pharmacology Report - Generate clinical pharmacology report: PK, PD, mechanism, drug interactions, and special populations. Use this skill for clinical pharmacology tasks involving get pharmacokinetics by drug name get pharmacodynamics by drug name get mechanism of action by drug name get drug interactions by drug name get geriatric use info by drug name. Combines 5 tools from 1 SCP server(s).

Teams using clinical_pharmacology_report should expect a more consistent output, faster repeated execution, less prompt rewriting.

When to use this skill

  • You want a reusable workflow that can be run more than once with consistent structure.

When not to use this skill

  • You only need a quick one-off answer and do not need a reusable workflow.
  • You cannot install or maintain the underlying files, dependencies, or repository context.

Installation

Claude Code / Cursor / Codex

$curl -o ~/.claude/skills/clinical_pharmacology_report/SKILL.md --create-dirs "https://raw.githubusercontent.com/InternScience/DrClaw/main/drclaw/local_skill_hub/science/drug/clinical_pharmacology_report/SKILL.md"

Manual Installation

  1. Download SKILL.md from GitHub
  2. Place it in .claude/skills/clinical_pharmacology_report/SKILL.md inside your project
  3. Restart your AI agent — it will auto-discover the skill

How clinical_pharmacology_report Compares

Feature / Agentclinical_pharmacology_reportStandard Approach
Platform SupportNot specifiedLimited / Varies
Context Awareness High Baseline
Installation ComplexityUnknownN/A

Frequently Asked Questions

What does this skill do?

Clinical Pharmacology Report - Generate clinical pharmacology report: PK, PD, mechanism, drug interactions, and special populations. Use this skill for clinical pharmacology tasks involving get pharmacokinetics by drug name get pharmacodynamics by drug name get mechanism of action by drug name get drug interactions by drug name get geriatric use info by drug name. Combines 5 tools from 1 SCP server(s).

Where can I find the source code?

You can find the source code on GitHub using the link provided at the top of the page.

SKILL.md Source

# Clinical Pharmacology Report

**Discipline**: Clinical Pharmacology | **Tools Used**: 5 | **Servers**: 1

## Description

Generate clinical pharmacology report: PK, PD, mechanism, drug interactions, and special populations.

## Tools Used

- **`get_pharmacokinetics_by_drug_name`** from `fda-drug-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug`
- **`get_pharmacodynamics_by_drug_name`** from `fda-drug-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug`
- **`get_mechanism_of_action_by_drug_name`** from `fda-drug-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug`
- **`get_drug_interactions_by_drug_name`** from `fda-drug-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug`
- **`get_geriatric_use_info_by_drug_name`** from `fda-drug-server` (streamable-http) - `https://scp.intern-ai.org.cn/api/v1/mcp/14/Origene-FDADrug`

## Workflow

1. Get pharmacokinetics
2. Get pharmacodynamics
3. Get mechanism of action
4. Get drug interactions
5. Get geriatric use data

## Test Case

### Input
```json
{
    "drug_name": "metformin"
}
```

### Expected Steps
1. Get pharmacokinetics
2. Get pharmacodynamics
3. Get mechanism of action
4. Get drug interactions
5. Get geriatric use data

## 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 = {
    "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["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 pharmacokinetics
    result_1 = await sessions["fda-drug-server"].call_tool("get_pharmacokinetics_by_drug_name", arguments={})
    data_1 = parse(result_1)
    print(f"Step 1 result: {json.dumps(data_1, indent=2, ensure_ascii=False)[:500]}")

    # Step 2: Get pharmacodynamics
    result_2 = await sessions["fda-drug-server"].call_tool("get_pharmacodynamics_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 mechanism of action
    result_3 = await sessions["fda-drug-server"].call_tool("get_mechanism_of_action_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 drug interactions
    result_4 = await sessions["fda-drug-server"].call_tool("get_drug_interactions_by_drug_name", arguments={})
    data_4 = parse(result_4)
    print(f"Step 4 result: {json.dumps(data_4, indent=2, ensure_ascii=False)[:500]}")

    # Step 5: Get geriatric use data
    result_5 = await sessions["fda-drug-server"].call_tool("get_geriatric_use_info_by_drug_name", arguments={})
    data_5 = parse(result_5)
    print(f"Step 5 result: {json.dumps(data_5, indent=2, ensure_ascii=False)[:500]}")

    # Cleanup
    print("Workflow complete!")

if __name__ == "__main__":
    asyncio.run(main())
```

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