Mountain View, CA, United States of America

Nathan Higginson-Scott


Average Co-Inventor Count = 4.0

ph-index = 1


Company Filing History:


Years Active: 2020

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1 patent (USPTO):Explore Patents

Title: Innovations by Nathan Higginson-Scott: A Look at His Contribution to Extracellular Vesicle Profiling

Introduction: Nathan Higginson-Scott, an innovative inventor based in Mountain View, California, is making significant strides in the field of biomedicine. His work focuses on developing methods for profiling extracellular vesicles, a crucial aspect of understanding cellular communication and disease mechanisms.

Latest Patents: Nathan holds a patent for "Methods for profiling extracellular vesicles from combinatorial phage display libraries." This groundbreaking method encompasses a series of steps including the incubation of isolated extracellular vesicles (EV) with a phage display library, isolating the EV-bound phage, and sequencing nucleic acids to identify specific sequences that can distinguish between EV from various sources. His innovation holds the potential for advancing research in diagnostics and therapeutics.

Career Highlights: Nathan Higginson-Scott is a key member of Verily Life Sciences LLC., where he has been contributing to pioneering research that bridges technology and healthcare. His expertise in phage display libraries and extracellular vesicle profiling positions him at the forefront of scientific innovation in the biomedicine sector.

Collaborations: Throughout his career, Nathan has collaborated with esteemed colleagues such as Alberto Clemente Vitari and Joshua Simon Klein. Their collective efforts reflect a commitment to advancing knowledge in their field and enhancing the utility of EVs in clinical applications.

Conclusion: Nathan Higginson-Scott's innovative approach to profiling extracellular vesicles through phage display libraries showcases the intersection of biology and technology. His patent represents a significant contribution to the understanding of EVs, which could lead to breakthroughs in medical diagnostics and therapies. As research in this area progresses, Nathan's work is poised to have a lasting impact on the future of biomedicine.

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