Abstract

The implementation of whole-exome sequencing in clinical diagnostics has generated a need for functional evaluation of genetic variants. In the field of inborn errors of metabolism (IEM), a diverse spectrum of targeted biochemical assays is employed to analyze a limited amount of metabolites. We now present a single-platform, high-resolution liquid chromatography quadrupole time of flight (LC-QTOF) method that can be applied for holistic metabolic profiling in plasma of individual IEM-suspected patients. This method, which we termed “next-generation metabolic screening” (NGMS), can detect >10,000 features in each sample. In the NGMS workflow, features identified in patient and control samples are aligned using the “various forms of chromatography mass spectrometry (XCMS)” software package. Subsequently, all features are annotated using the Human Metabolome Database, and statistical testing is performed to identify significantly perturbed metabolite concentrations in a patient sample compared with controls. We propose three main modalities to analyze complex, untargeted metabolomics data. First, a targeted evaluation can be done based on identified genetic variants of uncertain significance in metabolic pathways. Second, we developed a panel of IEM-related metabolites to filter untargeted metabolomics data. Based on this IEM-panel approach, we provided the correct diagnosis for 42 of 46 IEMs. As a last modality, metabolomics data can be analyzed in an untargeted setting, which we term “open the metabolome” analysis. This approach identifies potential novel biomarkers in known IEMs and leads to identification of biomarkers for as yet unknown IEMs. We are convinced that NGMS is the way forward in laboratory diagnostics of IEMs.

Highlights

  • The number of known inborn errors of metabolism (IEMs) has grown substantially in recent decades, amounting to ~1000 individual conditions, with accumulative incidence of ~1:1000 newborns

  • We here present next-generation metabolic screening (NGMS) as a single-platform, untargeted, highresolution liquid chromatography quadrupole time of flight (LC-quadrupole time-of-flight (QTOF)), metabolomic profiling method that can be applied in the diagnostic screening for IEMs in individual patients

  • We were able to show the capability of the NGMS setup for the diagnosis of 46 individual IEMs through relevant biomarkers

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Summary

Introduction

The number of known inborn errors of metabolism (IEMs) has grown substantially in recent decades, amounting to ~1000 individual conditions, with accumulative incidence of ~1:1000 newborns. There is a demand for a holistic approach to metabolite analysis in IEM screening, and technologies to fulfill this unmet clinical need are emerging: advanced, high-resolution mass spectrometry (MS) enable untargeted investigation of the metabolite profile, i.e. a holistic overview of small molecules with a mass

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