Orbitrap noise structure and method for noise unbiased multivariate analysis
Abstract
Abstract Orbitrap mass spectrometry is widely used in the life-sciences. However, like all mass spectrometers, non-uniform (heteroscedastic) noise introduces bias in multivariate analysis complicating data interpretation. Here, we study the noise structure of an Orbitrap mass analyser integrated into a secondary ion mass spectrometer (OrbiSIMS). Using a stable primary ion beam to provide a well-controlled source of ions from a silver sample, we find that noise has three characteristic regimes: at low signals the Orbitrap detector noise and a censoring algorithm dominates; at intermediate signals counting noise specific to the ion emission process is most significant; and at high signals additional sources of measurement variation become important. Using this understanding, we developed a generative model for Orbitrap data that accounts for the noise distribution and introduce a scaling method, termed WSoR, to reduce the effects of noise bias in multivariate analysis. We compare WSoR performance with no-scaling and existing scaling methods for three biological imaging data sets including drosophila central nervous system, mouse testis and a desorption electrospray ionisation (DESI) image of a rat liver. WSoR consistently performed best at discriminating chemical information from noise. The performance of the other methods varied on a case-by-case basis, complicating the analysis.
Article Details
Authors (18)
Michael R. Keenan
Gustavo F. Trindade
Alexander Pirkl
Clare L. Newell
Yuhong Jin
Konstantin Aizikov
Andreas Dannhorn
Junting Zhang
Jiangsu Key Laboratory of Drug Discovery and Translational Research for Brain Diseases, Institute of Neuroscience, Soochow University
Lidija Matjačić
Henrik Arlinghaus
Anya Eyres
Rasmus Havelund
Richard J. A. Goodwin
Integrated BioAnalysis, Clinical Pharmacology and Safety Sciences, R&D, AstraZeneca
Zoltan Takats
Department of Metabolism, Digestion and Reproduction, Faculty of Medicine, Imperial College London
Josephine Bunch
Alex P. Gould
Alexander Makarov
Ian S. Gilmore