This inventor holds 2 USPTO granted patents and 1 EPO patent. Top assignees: The State University of New York, Other. Active years: 2010-2012.
Company Filing History:

Years Active: 2010-2012
Title: The Innovative Contributions of Rosemary Dziak
Introduction
Rosemary Dziak is a notable inventor based in Amherst, NY (US). She has made significant contributions to the field of biomedical engineering, particularly in the development of tissue implants and calcium sulfate-based materials. With a total of 2 patents, her work has the potential to impact medical practices related to tissue repair and regeneration.
Latest Patents
Dziak's latest patents include innovative technologies that enhance tissue formation. One of her key inventions is a biocompatible, biodegradable calcium sulfate matrix that contains activated platelets. This invention is particularly useful in stimulating hard tissue formation, such as bone. The matrices can also incorporate growth factors or transfectable genes to further promote tissue growth. Another significant patent involves a method for repairing bone using hemihydrate calcium sulfate particles. This method entails mixing the particles with an aqueous solution to create a paste, which is then applied to the damaged area of bone, allowing it to set and facilitate repair.
Career Highlights
Throughout her career, Rosemary Dziak has worked at the State University of New York, where she has contributed to various research initiatives. Her expertise in tissue engineering and material science has positioned her as a valuable asset in her field.
Collaborations
Dziak has collaborated with esteemed colleagues, including YoungBum Park and Robert J Genco. These partnerships have fostered innovation and have led to advancements in the applications of her patented technologies.
Conclusion
Rosemary Dziak's contributions to the field of biomedical engineering through her patents and collaborations highlight her role as an influential inventor. Her work continues to pave the way for advancements in tissue repair and regeneration.