Sun Prairie, WI, United States of America

Charles D Page

USPTO Granted Patents = 1 


 

Average Co-Inventor Count = 5.0

ph-index = 1

Forward Citations = 1(Granted Patents)


Company Filing History:


Years Active: 2021

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1 patent (USPTO):Explore Patents

Title: Innovations of Charles D Page in Neural Toxicity Screening

Introduction

Charles D Page is an accomplished inventor based in Sun Prairie, Wisconsin. He has made significant contributions to the field of developmental neuroscience through his innovative work on human pluripotent stem cell-based models. His research focuses on creating advanced methods for screening neurotoxic agents, which is crucial for understanding developmental neural toxicity.

Latest Patents

Charles D Page holds a patent for "Human pluripotent stem cell-based models for predictive developmental neural toxicity." This invention relates to the development of three-dimensional (3D) tissue constructs that can be utilized to screen for neurotoxic agents. The methods provided in this patent enable the production of complex, highly uniform human tissue models that comprise physiologically relevant human cells. These tissue models possess the necessary degree of sample uniformity and reproducibility required for quantitative high-throughput screening applications.

Career Highlights

Charles D Page is associated with the Wisconsin Alumni Research Foundation, where he continues to advance his research in neural toxicity. His work is pivotal in bridging the gap between basic research and practical applications in toxicology and developmental biology.

Collaborations

Throughout his career, Charles has collaborated with notable scientists, including James A Thomson and William Leo Murphy. These collaborations have further enriched his research and contributed to the advancement of knowledge in the field.

Conclusion

Charles D Page's innovative work in developing human pluripotent stem cell-based models represents a significant advancement in the screening of neurotoxic agents. His contributions are vital for enhancing our understanding of developmental neural toxicity and improving safety assessments in pharmaceuticals and environmental health.

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