This inventor holds 1 USPTO granted patent. Top assignee: University of Washington. Active years: 2025.
Company Filing History:
Years Active: 2025
Title: The Innovations of Matthew Noakes
Introduction
Matthew Noakes is an accomplished inventor based in Seattle, WA. He has made significant contributions to the field of nanopore-based analysis of nucleic acids. His innovative work has led to the development of a patented technology that enhances the understanding of polymer analytes.
Latest Patents
Matthew Noakes holds a patent for "Systems and methods for improved nanopore-based analysis of nucleic acids." This patent describes a computer-implemented method for determining the identity of one or more monomer subunit residues of a polymer analyte. The method involves generating a raw current signal by using a variable voltage to translocate the polymer analyte through a nanopore. Change points are detected in the raw current signal to determine a series of states. Capacitance compensation is performed on the raw current signal for each state to create an ionic current-vs-voltage curve. The ionic current-vs-voltage curves are then converted to conductance-vs-voltage curves. Filtering is performed for the series of states to create a series of filtered states, ultimately determining the identity of the monomer subunit residues based on these filtered states.
Career Highlights
Matthew Noakes is affiliated with the University of Washington, where he continues to advance his research and innovations. His work has garnered attention for its potential applications in various scientific fields, particularly in genetics and molecular biology.
Collaborations
Matthew has collaborated with notable colleagues, including Jens H Gundlach and Henry Brinkerhoff. These partnerships have further enriched his research and contributed to the development of cutting-edge technologies in his field.
Conclusion
Matthew Noakes exemplifies the spirit of innovation through his groundbreaking work in nanopore-based analysis. His contributions are paving the way for advancements in the understanding of nucleic acids and polymer analytes.
