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lipidomic approaches, health status can be assessed by surveying a complete, unbiased biochemical profile in biofluids (urine, plasma/serum), tissues and cells. This project focuses on the development
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. The development of specific genome editing technologies leads to the emerging of epigenetic editing, which now allows the epigenetic editing at specific loci and enables direct study of functional relevance
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applications such as microbe strain identification in cases of bioterrorism. Projects focus on the development of NGS assays, bioinformatic methods, and data interpretation models for forensic applications
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for the development of robust quantum materials, future computing architectures, and the dissemination of new metrology standards. We invite motivated candidates to join us in bridging the gap between basic discovery
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using novel analytical approaches. Specifically, this research will focus on (1) development of laboratory methods to produce controlled-size micro- and nanoplastics; (2) development of field-flow
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the last 2 decades.[1] However, corresponding development of robust and reproducible in vitro assays for evaluating the critical quality attributes and/or the biological responses of these nano-enabled drug
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weakness and vulnerability datasets and multidimensional vulnerability classifications. It also enables the development of new algorithms for code analysis and the use of AI models and formal methods
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@nist.gov 301.975.4663 Description We are developing novel neutron detectors and spectrometers for applications in homeland security, radiation protection, and basic research. Development of sensitive neutron
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challenging measurement. Our goal is to develop advanced methods for rapidly, accurately and quantitatively measuring the viability of mixed microbial populations. This project will focus on the development
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evolution. The Group aims to advance fundamental understanding, improve predictability for design, ensure reproducibility and comparability, and facilitate scalability for real-world applications