Proteomics

Dataset Information

0

Heterogeneity Assessment and Protein Pathway Prediction via Spatial Lipidomic and Proteomic Correlation: Advancing Dry Proteomics concept for Human Glioblastoma Prognosis


ABSTRACT: Prediction of proteins and associated biological pathways from lipid analyses via MALDI MSI is a pressing chal-lenge. We introduced "dry proteomics," using MALDI MSI to validate spatial localization of identified optimal clusters in lipid or protein imaging. Consistent cluster appearance across omics images suggests association with specific lipid and protein pathways, forming the basis of dry proteomics. The methodology was refined using rat brain tissue as a model, then applied to human glioblastoma, a highly heterogeneous cancer. Sequen-tial tissue sections underwent omics MALDI MSI and unsupervised clustering. Differentiated lipid and protein clusters, with distinct spatial locations, were identified. Spatial omics analysis facilitated lipid and protein charac-terization, leading to a predictive model identifying clusters in any tissue based on unique lipid signatures and predicting associated protein pathways. Application to rat brain slices revealed diverse tissue subpopulations, including successfully predicted cerebellum areas. Similar analysis on 50 glioblastoma patients confirmed lipid-protein associations, correlating with patient prognosis.

INSTRUMENT(S):

ORGANISM(S): Rattus Norvegicus (rat)

TISSUE(S): Brain

SUBMITTER: laurine lagache  

LAB HEAD: Salzet Michel

PROVIDER: PXD054488 | Pride | 2025-05-07

REPOSITORIES: Pride

Dataset's files

Source:
Action DRS
Brown1.d.zip Other
Brown2.d.zip Other
Brown3.d.zip Other
GL1.d.zip Other
GL2.d.zip Other
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Publications

Predicting Protein Pathways Associated to Tumor Heterogeneity by Correlating Spatial Lipidomics and Proteomics: The Dry Proteomic Concept.

Lagache Laurine L   Zirem Yanis Y   Le Rhun Émilie É   Fournier Isabelle I   Salzet Michel M  

Molecular & cellular proteomics : MCP 20241205 1


Prediction of proteins and associated biological pathways from lipid analyses via matrix-assisted laser desorption/ionization (MALDI) MSI is a pressing challenge. We introduced "dry proteomics," using MALDI MSI to validate spatial localization of identified optimal clusters in lipid imaging. Consistent cluster appearance across omics images suggests association with specific lipid and protein in distinct biological pathways, forming the basis of dry proteomics. The methodology was refined using  ...[more]

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