San Diego, CA, United States of America

Kenny C Mok


Average Co-Inventor Count = 4.0

ph-index = 1


Company Filing History:


Years Active: 2008

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1 patent (USPTO):Explore Patents

Title: Kenny C Mok: Innovator in Quorum Sensing Research

Introduction

Kenny C Mok is a prominent inventor based in San Diego, CA. He has made significant contributions to the field of quorum sensing, particularly through his innovative research on small RNAs and bacterial strains. His work has implications for understanding bacterial communication and gene expression synchronization.

Latest Patents

Kenny C Mok holds a patent related to small RNAs and bacterial strains involved in quorum sensing. The patent describes how quorum-sensing bacteria communicate using extracellular signal molecules called autoinducers. This invention identifies the protein Hfq as a mediator of interactions between small regulatory RNAs (sRNAs) and specific messenger RNA (mRNA) targets. The patent provides nucleic acids encoding these sRNAs, strains with various deletions and mutations of qrr genes, and methods for identifying quorum-sensing regulators. Additionally, it relates to an isolated Hfq protein and conservative amino acid substitutions, along with nucleic acids encoding those proteins, recombinant methods for producing them, and antibodies against those proteins. Kenny C Mok has 1 patent.

Career Highlights

Kenny C Mok is affiliated with Princeton University, where he conducts his research. His work has garnered attention for its innovative approach to understanding bacterial communication and its potential applications in biotechnology and medicine.

Collaborations

Kenny has collaborated with notable colleagues, including Derrick H Lenz and Ned Scott Wingreen. These collaborations have further enriched his research and contributed to advancements in the field of quorum sensing.

Conclusion

Kenny C Mok is a distinguished inventor whose research on quorum sensing has opened new avenues for understanding bacterial communication. His contributions are vital to the ongoing exploration of gene expression synchronization and its applications.

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