Resolve Biosciences offers a Molecular Cartography platform that utilizes multi-analyte, highly multiplex spatial analysis technology to provide subcellular resolution of molecular interactions. This technology enables researchers to obtain detailed transcriptomic data and interrogate hundreds of genes simultaneously, addressing the complexities of biological research in oncology, neuroscience, and infectious diseases.
Funding
$95M raised to dateRaised to date based on public sources. This may differ from the amount the company actually raised and is based only on what is publicly available on the internet.
Founders
Product
Problem
Traditional methods of spatial biology analysis lack the resolution and multiplexing capabilities needed to fully understand complex biological systems. Researchers struggle to simultaneously analyze multiple analytes at subcellular resolution while preserving tissue integrity, hindering advancements in fields like oncology, neuroscience, and infectious diseases.
Solution
Resolve Biosciences offers the Molecular Cartography platform, a multi-analyte, highly multiplex spatial analysis technology that provides subcellular resolution of molecular interactions. This platform enables researchers to gain detailed transcriptomic data and interrogate hundreds of genes simultaneously within a single run, addressing the complexities of biological research. The technology preserves the sample tissue while producing deep contextual datasets that illuminate molecular interactions at the subcellular level. Future solutions will add DNA, protein, and metabolomic data layers.
Target Audience
The primary users are researchers in oncology, neuroscience, and infectious diseases seeking detailed spatial analysis of molecular interactions within cells and tissues.
Features
- Multi-analyte spatial analysis for simultaneous detection of RNA, DNA, protein, and metabolites
- High-resolution imaging at the subcellular level
- Highly multiplexed analysis, enabling interrogation of hundreds of genes in a single run
- Preserves sample tissue integrity for accurate spatial mapping
- Produces deep contextual datasets to illuminate molecular interactions