Estimating protein isoform abundances with PAQu

A single gene can encode multiple versions of a protein, dubbed isoforms, with varying functionality. Cellular control of isoform abundances is critical for multiple aspects of biology and is only partially regulated by transcript levels. While long-read sequencing facilitates transcript quantification, quantifying the resulting protein isoforms on a large scale is a major challenge, complicating biological interpretation of transcript alterations. Standard “bottom up” mass spectrometry can assess only short portions of isoforms called peptides, and these peptides often map onto more than one isoform. We introduce PAQu (Protein isoform Abundance Quantification), a Bayesian method that leverages multiomic information from the peptidome and transcriptome to provide accurate estimates of isoform abundance even when peptide mapping is ambiguous. PAQu offers several advantages over existing methods in a unified framework. It provides uncertainty quantification, integrates multiomic information for improved accuracy, and provides a rigorous framework for hypothesis testing. Extensive simulations show that PAQu consistently outperforms competing methods in detecting differentially abundant protein isoforms and estimating their abundances. We use PAQu to investigate differences in isoform abundance levels between people with schizophrenia and control subjects, confirming a long-held hypothesis that levels of the C4A isoform of Complement Component 4 are increased in schizophrenia while C4B is not. These results demonstrate that PAQu can identify significant variations in isoform abundance levels not previously possible.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-16
DOI
https://doi.org/10.1073/pnas.2614319123
Primary Topic
Advanced Proteomics Techniques and Applications
Type
article
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article

Estimating protein isoform abundances with PAQu

Bernie Devlin, Anastasia K. Yocum, Matthew L. MacDonald, Lorenzo Testa et al.
Proceedings of the National Academy of Sciences
Advanced Proteomics Techniques and Applications
article

Estimating protein isoform abundances with PAQu

Bernie Devlin, Anastasia K. Yocum, Matthew L. MacDonald, Lorenzo Testa, Kathryn Roeder, David A. Lewis, Alesia Rengle, Lambertus Klei
article en

Abstract

A single gene can encode multiple versions of a protein, dubbed isoforms, with varying functionality. Cellular control of isoform abundances is critical for multiple aspects of biology and is only partially regulated by transcript levels. While long-read sequencing facilitates transcript quantification, quantifying the resulting protein isoforms on a large scale is a major challenge, complicating biological interpretation of transcript alterations. Standard “bottom up” mass spectrometry can assess only short portions of isoforms called peptides, and these peptides often map onto more than one isoform. We introduce PAQu (Protein isoform Abundance Quantification), a Bayesian method that leverages multiomic information from the peptidome and transcriptome to provide accurate estimates of isoform abundance even when peptide mapping is ambiguous. PAQu offers several advantages over existing methods in a unified framework. It provides uncertainty quantification, integrates multiomic information for improved accuracy, and provides a rigorous framework for hypothesis testing. Extensive simulations show that PAQu consistently outperforms competing methods in detecting differentially abundant protein isoforms and estimating their abundances. We use PAQu to investigate differences in isoform abundance levels between people with schizophrenia and control subjects, confirming a long-held hypothesis that levels of the C4A isoform of Complement Component 4 are increased in schizophrenia while C4B is not. These results demonstrate that PAQu can identify significant variations in isoform abundance levels not previously possible.

Proceedings of the National Academy of SciencesVol. 123(38)
Scuola Superiore Sant'Anna (IT), University of Pittsburgh (US), Rider University (US), IONICS Mass Spectrometry (Canada) (CA), Center for Neurosciences (US), Carnegie Mellon University (US)
Openalex Percentile: Top 21%
Advanced Proteomics Techniques and Applications
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