Dresden, Germany

Francesco Reddavide

USPTO Granted Patents = 2 


 

Average Co-Inventor Count = 4.8

ph-index = 1


Company Filing History:


Years Active: 2020-2022

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2 patents (USPTO):Explore Patents

Title: Francesco Reddavide: Innovator in Molecular Detection Technologies

Introduction

Francesco Reddavide is a notable inventor based in Dresden, Germany. He has made significant contributions to the field of molecular detection technologies, holding 2 patents that showcase his innovative approaches. His work focuses on methods for identifying high-affinity complexes and detecting binding events of molecules.

Latest Patents

Reddavide's latest patents include a "Method for identifying high-affinity complexes made of two ligands and one receptor" and a "Method and arrangement for detecting binding events of molecules." The first patent describes a sensitive method for identifying complexes formed by two ligands and one receptor. This involves contacting a diverse chemical library of ligands with a receptor in solution, followed by incubation to identify the resulting complexes. The second patent outlines a method for detecting binding events, where a second molecule covalently bound to a ligand interacts with a first molecule immobilized on a bioactive surface. This method allows for the reversible availability of specific ligands on the surface.

Career Highlights

Francesco Reddavide has worked with prominent organizations such as Dynabind GmbH and Technische Universität Dresden. His experience in these institutions has contributed to his expertise in molecular detection and innovative research.

Collaborations

Reddavide has collaborated with talented individuals, including Weilin Lin and Yixin Zhang. These partnerships have likely enhanced his research and development efforts in the field.

Conclusion

Francesco Reddavide is a distinguished inventor whose work in molecular detection technologies has led to valuable patents and collaborations. His innovative methods continue to advance the understanding of molecular interactions and binding events.

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