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SKU:E6458Hu

Human Gamma-Aminobutyric Acid Type B Receptor Subunit 2,GABBR2 ELISA Kit

Human Gamma-Aminobutyric Acid Type B Receptor Subunit 2,GABBR2 ELISA Kit

Regular price $458.00 USD
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Introducing the HUMAN GAMMA-AMINOBUTYRIC ACID TYPE B RECEPTOR SUBUNIT 2, GABBR2 ELISA KIT, a cutting-edge solution designed to facilitate accurate and efficient detection of the GABBR2 protein in human samples. This advanced ELISA kit is meticulously crafted to cater to the needs of researchers and scientists in the field of neuroscience and molecular biology.

The HUMAN GAMMA-AMINOBUTYRIC ACID TYPE B RECEPTOR SUBUNIT 2, GABBR2 ELISA KIT boasts a comprehensive and reliable methodology, ensuring precise quantification of GABBR2 protein levels. With its high sensitivity and specificity, this kit enables researchers to unravel the intricate mechanisms underlying GABBR2-related processes, ultimately contributing to a deeper understanding of neurological disorders and therapeutic interventions.

Crafted with utmost precision, the HUMAN GAMMA-AMINOBUTYRIC ACID TYPE B RECEPTOR SUBUNIT 2, GABBR2 ELISA KIT guarantees exceptional reproducibility and accuracy, empowering researchers to obtain consistent and robust results. Its user-friendly nature allows for seamless integration into laboratory workflows, streamlining experimental procedures and saving valuable time.

This ELISA kit is meticulously validated and optimized to ensure optimal performance, providing researchers with the utmost confidence in their experimental outcomes. Its comprehensive package includes all necessary components, meticulously prepared and quality-controlled, to facilitate a hassle-free and efficient experimental setup.

The HUMAN GAMMA-AMINOBUTYRIC ACID TYPE B RECEPTOR SUBUNIT 2, GABBR2 ELISA KIT represents a breakthrough in the field of neuroscience research, offering a reliable and precise tool for the detection and quantification of GABBR2 protein. With its exceptional performance and user-friendly design, this kit is an indispensable asset for researchers seeking to unravel the complexities of GABBR2-related processes and contribute to advancements in neurological science.

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