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AI Bioinformatics Start
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ML Agent 1 Molecular and Protein Encoders
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MPNN_CNN_BindingBD Model
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DeepPurpose Harvard Univ, Georgia Tech
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Knowledge Graph Agent 2
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Search Agent 3 on scientific papers
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Pre-print "DrugAgent: Explainable Drug Repurposing Agent"
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CODE DrugAgent GitHub
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Pre-print Genesis: Automation of System Biology Research
Description:
Learn about groundbreaking AI research in a 23-minute video that explores medical substance repurposing through a sophisticated multi-agent system. Dive into the technical implementation of three parallel AI agents working together to revolutionize drug discovery: a biomolecular-trained AI agent utilizing message passing and convolutional neural networks for drug-target interaction prediction, a knowledge graph agent analyzing biomedical databases, and a search agent processing scientific literature. Explore practical implementations including the MPNN_CNN_BindingBD Model, DeepPurpose framework from Harvard University and Georgia Tech, and examine real-world applications through the DrugAgent project. Understand how this innovative approach combines machine learning, knowledge graphs, and text analysis to accelerate drug development while potentially reducing costs. Based on research from "DrugAgent: Explainable Drug Repurposing Agent with Large Language Model-Based Reasoning" and "Genesis: Towards the Automation of Systems Biology Research," the video includes access to GitHub code repositories and detailed technical explanations of the system's architecture. Read more

AI-Driven Drug Repurposing: Multi-Agent Approach in Bioinformatics

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