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Quantitative liquid chromatography-mass spectrometry (LC-MS)-based metabolomics is becoming an important approach for studying complex biological systems but presents several technical challenges that limit its widespread use. Computing metabolite concentrations using standard curves generated from standard mixtures of known concentrations is a labor-intensive process that is often performed manually. Currently, there are few options for open-source software tools that can automatically calculate metabolite concentrations. Herein, we introduce SCALiR (standard curve application for determining linear ranges), a new web-based software tool specifically built for this task, which allows users to automatically transform LC-MS signals into absolute quantitative data (https://www.lewisresearchgroup.org/software). SCALiR uses an algorithm that automatically finds the equation of the line of best fit for each standard curve and uses this equation to calculate compound concentrations from the LC-MS signal. Using a standard mix containing 77 metabolites, we show a close correlation between the concentrations calculated by SCALiR and the expected concentrations of each compound ( = 0.99 for a = curve fitting). Moreover, we demonstrate that SCALiR reproducibly calculates concentrations of midrange standards across ten analytical batches (average coefficient of variation 0.091). SCALiR can be used to calculate metabolite concentrations either using external calibration curves or by using internal standards to correct for matrix effects. This open-source and vendor agnostic software offers users several advantages in that (1) it requires only 10 s of analysis time to compute concentrations of >75 compounds, (2) it facilitates automation of quantitative workflows, and (3) it performs deterministic evaluations of compound quantification limits. SCALiR therefore provides the metabolomics community with a simple and rapid tool that enables rigorous and reproducible quantitative metabolomics studies.
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http://dx.doi.org/10.1021/acs.analchem.3c04988 | DOI Listing |
Circ Genom Precis Med
September 2025
Clinical Pharmacology and Precision Medicine, William Harvey Research Institute, London, United Kingdom (W.J.Y., M.M.S., J.R., S.v.D., H.R.W., A.T., P.B.M.).
Background: There is a higher prevalence of heart rate corrected QT (QTc) prolongation in patients with diabetes and metabolic syndrome. QT interval genome-wide association studies have identified candidate genes for cardiac energy metabolism, and experimental studies suggest that polyunsaturated fatty acids have direct effects on ion channel function. Despite this, there has been limited study of metabolite concentration relationships with QT intervals.
View Article and Find Full Text PDFJ Am Chem Soc
September 2025
Institute for Molecules and Materials, Radboud University, Heyendaalseweg 135, 6525 AJ Nijmegen, The Netherlands.
Non-hydrogenative para-hydrogen-induced polarization (nhPHIP) has proven a powerful tool for the enhanced NMR detection of several classes of metabolites in complex mixtures. Particularly, compounds carrying an α-amino acid motif have been previously detected and quantified in biological samples and natural extracts at submicromolar concentrations using 2D nhPHIP NMR spectroscopy. This technique is here applied for the first time in a semi-targeted metabolomics NMR study on urine from patients suffering from Pyridoxine-Dependent Epilepsy (PDE), currently diagnosed by the presence of dilute unique biomarkers.
View Article and Find Full Text PDFBiomed Chromatogr
October 2025
Department of Rehabilitation, Nan'ao People's Hospital, Shenzhen, China.
Chrysotobibenzyl, a bioactive ingredient from Dendrobium chrysotoxum, exhibits potent anti-tumor activity. However, its metabolic profiles remain unelucidated. This study aimed to disclose the metabolic fates of chrysotobibenzyl using human liver fractions.
View Article and Find Full Text PDFJ Immunother Cancer
September 2025
National Engineering Laboratory for Internet Medical Systems and Applications, The First Affiliated Hospital of Zhengzhou University, Zhengzhou, Henan, China
Background: Improving the efficacy of anti-programmed death 1 (PD-1) monoclonal antibody (mAb) therapy remains a major challenge for cancer immunotherapy in non-small cell lung cancer (NSCLC). Gut microbial metabolites can influence immunotherapy efficacy.
Methods: ELISA was used to compare the serum 5-hydroxyindoleacetic acid (5-HIAA) level in patients with NSCLC.
Arch Biochem Biophys
September 2025
Department of Chemistry and Biochemistry, Howard College of Arts and Sciences, Samford University, 800 Lakeshore Drive, Birmingham, AL, USA, 35229. Electronic address:
Tetrahydrodipicolinate N-succinyltransferase (DapD) catalyzes the reaction of tetrahydrodipicolinate (THDP) and succinyl-CoA to form (S)-2-(3-carboxypropanamido)-6-oxoheptanedioic acid and coenzyme A. The enzyme is in the diaminopimelate-lysine biosynthesis pathway which produces two metabolites necessary for the survival and growth of pathogenic bacteria. Since lysine is an essential amino acid to humans, DapD is a potentially safe target for antibiotic therapies.
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