Active Cells, Biochemistry & Physiology Genetics & Molecular Biology

Transforming spatial and structural biology: Native ambient mass spectrometry

In plain English

AI plain-English summary

A new mass spectrometry technique lets scientists identify and map individual proteins directly from human tissue, without needing to label them first. Current methods for studying proteins in tissue—like immunohistochemistry—require researchers to know in advance which proteins they are looking for, and they cannot easily show how those proteins are folded or interacting with other molecules. This technique, called native ambient mass spectrometry (NAMS), captures proteins in their natural, folded state and records their spatial location simultaneously. It can detect protein-drug complexes and protein assemblies that other methods miss entirely. If NAMS becomes the gold standard, it could transform two areas. In molecular pathology, it would allow pathologists to see not just which proteins are present in a diseased tissue sample, but how they are behaving—whether they are misfolded, aggregated, or bound to a drug. In drug discovery, it could reveal where a candidate drug actually lands in tissue and which proteins it touches, without needing fluorescent tags or prior assumptions. The research is engineering-focused: it aims to boost the technique’s sensitivity and protein-identification confidence to make it reliable enough for routine clinical and pharmaceutical use.

View original technical description
Native ambient mass spectrometry (NAMS) is a novel tool, pioneered by our laboratory, which allows detection, identification and imaging of intact proteins in their native state directly from their physiological environment, i.e., from tissue. NAMS is an innovative approach which enables label-free in situ structural characterisation and spatial mapping (imaging) of folded proteins, protein assemblies, and protein-ligand (including protein-drug) complexes. It affords significant advantages over techniques such as immunohistochemistry as it enables spatially-resolved interrogation of protein interactions without the need for any prior knowledge of the proteins involved. NAMS offers unprecedented potential for integration of spatial and structural biology, and therefore promises to revolutionise the understanding of human health. The aim of this proposal is to transform NAMS from an emerging technology to the gold standard for integrated structural and spatial biology by addressing the key challenges of sensitivity and high-confidence protein identification, and thus delivering major advances in two key application areas: molecular pathology and drug discovery.

View the original record at the funder ↗

Researchers

Helen Cooper (EPMC Awardee)Iain Styles (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Native ambient mass spectrometry for membrane proteins
NAMS: Native ambient mass spectrometry
A laser mass spectrometry platform for in situ analysis of proteins and their complexes in tissue
Developing new mass spectrometry methodologies for the determination of structures of heterogeneous protein complexes
A new tool to support drug discovery: Native LESA mass spectrometry (NESA)

Original classification

Discovery Award

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.