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Presented By:

DCM&B Tools and Technology Seminar

Matt Raymond, "From Proteins to Nanoparticles: Domain-Agnostic Machine Learning for the Nanoscale"

Although challenging, the accurate and rapid prediction of nanoscale interactions has broad applications for numerous biological processes and material properties. While several models have been developed to predict the interaction of specific biological components, they use system-specific information that hinders their application to more general materials. Here we present NeCLAS, a general and efficient machine learning pipeline that predicts the location of nanoscale interactions, providing human-intelligible predictions. NeCLAS outperforms current nanoscale prediction models for generic nanoparticles up to 10–20 nm, reproducing interactions for biological and non-biological systems. Two aspects contribute to these results: a low-dimensional representation of nanoparticles and molecules (to reduce the effect of data uncertainty), and environmental features (to encode the physicochemical neighborhood at multiple scales). This framework has several applications, from basic research to rapid prototyping and design in nanobiotechnology.

Associated article: https://nature.com/articles/s43588-023-00438-x

This presentation will be held in 2036 Palmer Commons. There will also be a remote viewing option via Zoom.

Livestream Information

 Livestream
March 27, 2025 (Thursday) 12:00pm

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