How to Apply Supervised Machine Learning Tools to MS Imaging Files: Case Study with Cancer Spheroids Undergoing Treatment with the Monoclonal Antibody Cetuximab.


Journal

Journal of the American Society for Mass Spectrometry
ISSN: 1879-1123
Titre abrégé: J Am Soc Mass Spectrom
Pays: United States
ID NLM: 9010412

Informations de publication

Date de publication:
01 Jul 2020
Historique:
pubmed: 30 5 2020
medline: 24 4 2021
entrez: 30 5 2020
Statut: ppublish

Résumé

As the field of mass spectrometry imaging continues to grow, so too do its needs for optimal methods of data analysis. One general need in image analysis is the ability to classify the underlying regions within an image, as healthy or diseased, for example. Classification, as a general problem, is often best accomplished by supervised machine learning strategies; unfortunately, conducting supervised machine learning on MS imaging files is not typically done by mass spectrometrists because a high degree of specialized knowledge is needed. To address this problem, we developed a fully open-source approach that facilitates supervised machine learning on MS imaging files, and we demonstrated its implementation on sets of cancer spheroids that either had or had not undergone chemotherapy treatment. These supervised machine learning studies demonstrated that metabolic changes induced by the monoclonal antibody, Cetuximab, are detectable but modest at 24 h, and by 72 h, the drug induces a larger and more diverse metabolic response.

Identifiants

pubmed: 32469221
doi: 10.1021/jasms.0c00010
pmc: PMC7685566
mid: NIHMS1644499
doi:

Substances chimiques

Cetuximab PQX0D8J21J

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1350-1357

Subventions

Organisme : NIGMS NIH HHS
ID : R01 GM110406
Pays : United States
Organisme : NIGMS NIH HHS
ID : R35 GM130354
Pays : United States

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Auteurs

David Hua (D)

Department of Chemistry, University of Kansas, Lawrence, Kansas 66045, United States.

Xin Liu (X)

Department of Chemistry and Biochemistry and the Comprehensive Cancer Center, The Ohio State University, Columbus, Ohio 43210, United States.

Eden P Go (EP)

Department of Chemistry, University of Kansas, Lawrence, Kansas 66045, United States.

Yijia Wang (Y)

Department of Chemistry and Biochemistry and the Comprehensive Cancer Center, The Ohio State University, Columbus, Ohio 43210, United States.

Amanda B Hummon (AB)

Department of Chemistry and Biochemistry and the Comprehensive Cancer Center, The Ohio State University, Columbus, Ohio 43210, United States.

Heather Desaire (H)

Department of Chemistry, University of Kansas, Lawrence, Kansas 66045, United States.

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Classifications MeSH