ColocML: machine learning quantifies co-localization between mass spectrometry images.
Journal
Bioinformatics (Oxford, England)
ISSN: 1367-4811
Titre abrégé: Bioinformatics
Pays: England
ID NLM: 9808944
Informations de publication
Date de publication:
01 05 2020
01 05 2020
Historique:
received:
04
09
2019
revised:
22
01
2020
accepted:
04
02
2020
pubmed:
13
2
2020
medline:
30
10
2020
entrez:
13
2
2020
Statut:
ppublish
Résumé
Imaging mass spectrometry (imaging MS) is a prominent technique for capturing distributions of molecules in tissue sections. Various computational methods for imaging MS rely on quantifying spatial correlations between ion images, referred to as co-localization. However, no comprehensive evaluation of co-localization measures has ever been performed; this leads to arbitrary choices and hinders method development. We present ColocML, a machine learning approach addressing this gap. With the help of 42 imaging MS experts from nine laboratories, we created a gold standard of 2210 pairs of ion images ranked by their co-localization. We evaluated existing co-localization measures and developed novel measures using term frequency-inverse document frequency and deep neural networks. The semi-supervised deep learning Pi model and the cosine score applied after median thresholding performed the best (Spearman 0.797 and 0.794 with expert rankings, respectively). We illustrate these measures by inferring co-localization properties of 10 273 molecules from 3685 public METASPACE datasets. https://github.com/metaspace2020/coloc. Supplementary data are available at Bioinformatics online.
Identifiants
pubmed: 32049317
pii: 5734647
doi: 10.1093/bioinformatics/btaa085
pmc: PMC7214035
doi:
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
3215-3224Informations de copyright
© The Author(s) 2020. Published by Oxford University Press.
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