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2025-03-18

🔍使AI助手能够通过简单的MCP接口搜索和访问MedRxiv论文。

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medRxiv MCP Server

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🔍 Enable AI assistants to search and access medRxiv papers through a simple MCP interface.

The medRxiv MCP Server provides a bridge between AI assistants and medRxiv's preprint repository through the Model Context Protocol (MCP). It allows AI models to search for health sciences preprints and access their content in a programmatic way.

🤝 Contribute • 📝 Report Bug

✨ Core Features

  • 🔎 Paper Search: Query medRxiv papers with custom search strings or advanced search parameters ✅
  • 🚀 Efficient Retrieval: Fast access to paper metadata ✅
  • 📊 Metadata Access: Retrieve detailed metadata for specific papers using DOI ✅
  • 📊 Research Support: Facilitate health sciences research and analysis ✅
  • 📄 Paper Access: Download and read paper content 📝
  • 📋 Paper Listing: View all downloaded papers 📝
  • 🗃️ Local Storage: Papers are saved locally for faster access 📝
  • 📝 Research Prompts: A set of specialized prompts for paper analysis 📝

🚀 Quick Start

Installing via Smithery

To install medRxiv Server for Claude Desktop automatically via Smithery:

claude

npx -y @smithery/cli@latest install @JackKuo666/medrxiv-mcp-server --client claude --config "{}"

Cursor

Paste the following into Settings → Cursor Settings → MCP → Add new server:

  • Mac/Linux
npx -y @smithery/cli@latest run @JackKuo666/medrxiv-mcp-server --client cursor --config "{}" 

Windsurf

npx -y @smithery/cli@latest install @JackKuo666/medrxiv-mcp-server --client windsurf --config "{}"

CLine

npx -y @smithery/cli@latest install @JackKuo666/medrxiv-mcp-server --client cline --config "{}"

Installing Manually

Install using uv:

uv tool install medRxiv-mcp-server

For development:

# Clone and set up development environment
git clone https://github.com/JackKuo666/medRxiv-MCP-Server.git
cd medRxiv-MCP-Server

# Create and activate virtual environment
uv venv
source .venv/bin/activate
uv pip install -r requirements.txt

📊 Usage

Start the MCP server:

python medrxiv_server.py

Once the server is running, you can use the provided MCP tools in your AI assistant or application. Here are some examples of how to use the tools:

Example 1: Search for papers using keywords

result = await mcp.use_tool("search_medrxiv_key_words", {
    "key_words": "COVID-19 vaccine efficacy",
    "num_results": 5
})
print(result)

Example 2: Perform an advanced search

result = await mcp.use_tool("search_medrxiv_advanced", {
    "term": "COVID-19",
    "author1": "MacLachlan",
    "start_date": "2020-01-01",
    "end_date": "2023-12-31",
    "num_results": 3
})
print(result)

Example 3: Get metadata for a specific paper

result = await mcp.use_tool("get_medrxiv_metadata", {
    "doi": "10.1101/2025.03.09.25323517"
})
print(result)

These examples demonstrate how to use the three main tools provided by the medRxiv MCP Server. Adjust the parameters as needed for your specific use case.

🛠 MCP Tools

The medRxiv MCP Server provides the following tools:

search_medrxiv_key_words

Search for articles on medRxiv using key words.

Parameters:

  • key_words (str): Search query string
  • num_results (int, optional): Number of results to return (default: 10)

Returns: List of dictionaries containing article information

search_medrxiv_advanced

Perform an advanced search for articles on medRxiv.

Parameters:

  • term (str, optional): General search term
  • title (str, optional): Search in title
  • author1 (str, optional): First author
  • author2 (str, optional): Second author
  • abstract_title (str, optional): Search in abstract and title
  • text_abstract_title (str, optional): Search in full text, abstract, and title
  • section (str, optional): Section of medRxiv
  • start_date (str, optional): Start date for search range (format: YYYY-MM-DD)
  • end_date (str, optional): End date for search range (format: YYYY-MM-DD)
  • num_results (int, optional): Number of results to return (default: 10)

Returns: List of dictionaries containing article information

get_medrxiv_metadata

Fetch metadata for a medRxiv article using its DOI.

Parameters:

  • doi (str): DOI of the article

Returns: Dictionary containing article metadata

Usage with Claude Desktop

Add this configuration to your claude_desktop_config.json:

(Mac OS)

{
  "mcpServers": {
    "medrxiv": {
      "command": "python",
      "args": ["-m", "medrxiv-mcp-server"]
      }
  }
}

(Windows version):

{
  "mcpServers": {
    "medrxiv": {
      "command": "C:\\Users\\YOUR_USERNAME\\AppData\\Local\\Programs\\Python\\Python311\\python.exe",
      "args": [
        "-m",
        "medrxiv-mcp-server"
      ]
    }
  }
}

Using with Cline

{
  "mcpServers": {
    "medrxiv": {
      "command": "bash",
      "args": [
        "-c",
        "source /home/YOUR/PATH/mcp-server-medRxiv/.venv/bin/activate && python /home/YOUR/PATH/mcp-server-medRxiv/medrxiv_server.py"
      ],
      "env": {},
      "disabled": false,
      "autoApprove": []
    }
  }
}

After restarting Claude Desktop, the following capabilities will be available:

Searching Papers

You can ask Claude to search for papers using queries like:

Can you search medRxiv for recent papers about genomics?

The search will return basic information about matching papers including:

• Paper title

• Authors

• DOI

Getting Paper Details

Once you have a DOI, you can ask for more details:

Can you show me the details for paper 10.1101/003541?

This will return:

• Full paper title

• Authors

• Publication date

• Paper abstract

• Links to available formats (PDF/HTML)

📝 TODO

download_paper

Download a paper and save it locally.

read_paper

Read the content of a downloaded paper.

list_papers

List all downloaded papers.

📝 Research Prompts

The server offers specialized prompts to help analyze academic papers:

Paper Analysis Prompt

A comprehensive workflow for analyzing academic papers that only requires a paper ID:

result = await call_prompt("deep-paper-analysis", {
    "paper_id": "2401.12345"
})

This prompt includes:

  • Detailed instructions for using available tools (list_papers, download_paper, read_paper, search_papers)
  • A systematic workflow for paper analysis
  • Comprehensive analysis structure covering:
    • Executive summary
    • Research context
    • Methodology analysis
    • Results evaluation
    • Practical and theoretical implications
    • Future research directions
    • Broader impacts

📁 Project Structure

  • medrxiv_server.py: The main MCP server implementation using FastMCP
  • medrxiv_web_search.py: Contains the web scraping logic for searching medRxiv

🔧 Dependencies

  • Python 3.10+
  • FastMCP
  • asyncio
  • logging
  • requests (for web scraping, used in medrxiv_web_search.py)
  • beautifulsoup4 (for web scraping, used in medrxiv_web_search.py)

You can install the required dependencies using:

pip install FastMCP requests beautifulsoup4

🤝 Contributing

Contributions are welcome! Please feel free to submit a Pull Request.

📄 License

This project is licensed under the MIT License.

🙏 Acknowledgements

This project is inspired by and built upon the work done in the arxiv-mcp-server project.

⚠️ Disclaimer

This tool is for research purposes only. Please respect medRxiv's terms of service and use this tool responsibly.

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    Reviews

    3 (1)
    Avatar
    user_8QuhoMFD
    2025-04-16

    I've been using the medRxiv-MCP-Server by JackKuo666 extensively, and it has significantly streamlined my research process. The interface is user-friendly, making navigation straightforward even for those new to MCP applications. The server efficiently manages large datasets and provides reliable results, saving me valuable time. Highly recommend it to fellow researchers! Check it out at https://github.com/JackKuo666/mcp-server-medRixv.