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Deciphering Protein Secretion from the Brain to Cerebrospinal Fluid for Biomarker Discovery

Authors :
Waury, K
de WIt, Renske
Verberk, IMW
Teunissen, CE
Abeln, S
Waury, K
de WIt, Renske
Verberk, IMW
Teunissen, CE
Abeln, S
Source :
Journal of Proteome Research vol.22 (2023) date: 2023-08-31 nr.9 p.3068-3080 [ISSN 1535-3893]
Publication Year :
2023

Abstract

Cerebrospinal fluid (CSF) is an essential matrix for the discovery of neurological disease biomarkers. However, the high dynamic range of protein concentrations in CSF hinders the detection of the least abundant protein biomarkers by untargeted mass spectrometry. It is thus beneficial to gain a deeper understanding of the secretion processes within the brain. Here, we aim to explore if and how the secretion of brain proteins to the CSF can be predicted. By combining a curated CSF proteome and the brain elevated proteome of the Human Protein Atlas, brain proteins were classified as CSF or non-CSF secreted. A machine learning model was trained on a range of sequence-based features to differentiate between CSF and non-CSF groups and effectively predict the brain origin of proteins. The classification model achieves an area under the curve of 0.89 if using high confidence CSF proteins. The most important prediction features include the subcellular localization, signal peptides, and transmembrane regions. The classifier generalized well to the larger brain detected proteome and is able to correctly predict novel CSF proteins identified by affinity proteomics. In addition to elucidating the underlying mechanisms of protein secretion, the trained classification model can support biomarker candidate selection.

Details

Database :
OAIster
Journal :
Journal of Proteome Research vol.22 (2023) date: 2023-08-31 nr.9 p.3068-3080 [ISSN 1535-3893]
Notes :
DOI: 10.1021/acs.jproteome.3c00366, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1445831889
Document Type :
Electronic Resource