Continued studies will deepen scientistsâ understanding of virus-host interactions at the molecular level and also pave the way for developing better drugs to fight emerging viruses.
PNNL researchers have published their paper, âIntroducing Molecular Hypernetworks for Discovery in Multidimensional Metabolomics Data,â in the Journal of Proteome Research.
The Center for Continuum Computing at PNNL aims to integrate cloud platforms, high-performance computing, and edge devices into a seamless ecosystem that accelerates scientific discovery.
Formal mathematics both reveals whatâs inside the black box of AI algorithms and pushes the boundary of whatâs possible within math as a discipline.
Researchers at PNNL are pursuing new approaches to understand, predict and control the phenomeâthe collection of biological traits within an organism shaped by its genes and interactions with the environment.
Armed with some of the worldâs most advanced instrumentation, researchers at PNNL are working to analyze huge amounts of data and uncover hidden biological connections.
For PNNLâs Jonathan Evarts, Hope Lackey, and Erik Reinhart, this partnership with WSU opened doors and provided opportunities for their scientific careers to flourish.
By combining computational modeling with experimental research, scientists identified a promising composition that reduces the need for a critical material in an alloy that can withstand extreme environments.
Four engineers at PNNL received awards for nuclear science presentations related to Hanford Site cleanup at the annual meeting of the world's leading organization for chemical engineering professionals.
Controlling the nanostructure of silk fibroinâa protein found in silkâis a key step toward designing and fabricating electronics that leverage the materialâs promising mechanical, optical and biocompatible properties.