Proteoforms in Disease: Biomedical Applications of Top‐Down Proteomics

The proteome is a dynamic landscape of proteoforms arising from genetic mutations, alternative splicing, and post-translational modifications (PTMs), which collectively drive biological function and disease phenotypes. Mass spectrometry (MS)-based proteomics has emerged as an essential technique for elucidating this molecular complexity. Although bottom-up proteomics enables deep protein identification and quantification through peptide-level analysis, it disrupts molecular connectivity and introduces a peptide-to-protein inference problem, which is suboptimal for proteoform analysis. Top-down proteomics (TDP) offers a complementary approach by analyzing intact proteins, preserving molecular connectivity, and enabling direct characterization and quantification of proteoforms. This capability is increasingly vital for understanding heterogeneous human diseases. Here, we review the evolving role of TDP in biomedical research, highlighting studies that revealed proteoform-level alterations, identified candidate biomarkers, and advanced our understanding of the roles of proteoforms in human diseases.

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Publication Details

Journal
Mass Spectrometry Reviews
Published
2026-09-04
DOI
https://doi.org/10.1002/mas.70042
Primary Topic
Advanced Proteomics Techniques and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Proteoforms in Disease: Biomedical Applications of Top‐Down Proteomics

Holden T. Rogers, Julia Chamot‐Rooke, Ying Ge, Zachery R. Gregorich et al.
Mass Spectrometry Reviews
Advanced Proteomics Techniques and Applications
article

Proteoforms in Disease: Biomedical Applications of Top‐Down Proteomics

Holden T. Rogers, Julia Chamot‐Rooke, Ying Ge, Zachery R. Gregorich, Megan S. Gant, Zhan Gao
article en

Abstract

The proteome is a dynamic landscape of proteoforms arising from genetic mutations, alternative splicing, and post-translational modifications (PTMs), which collectively drive biological function and disease phenotypes. Mass spectrometry (MS)-based proteomics has emerged as an essential technique for elucidating this molecular complexity. Although bottom-up proteomics enables deep protein identification and quantification through peptide-level analysis, it disrupts molecular connectivity and introduces a peptide-to-protein inference problem, which is suboptimal for proteoform analysis. Top-down proteomics (TDP) offers a complementary approach by analyzing intact proteins, preserving molecular connectivity, and enabling direct characterization and quantification of proteoforms. This capability is increasingly vital for understanding heterogeneous human diseases. Here, we review the evolving role of TDP in biomedical research, highlighting studies that revealed proteoform-level alterations, identified candidate biomarkers, and advanced our understanding of the roles of proteoforms in human diseases.

Mass Spectrometry Reviews
Centre National de la Recherche Scientifique (FR), University of Wisconsin System (US), University of Wisconsin–Madison (US), Institut Pasteur (FR), Université Paris Cité (FR)
National Institutes of Health
Openalex Percentile: Top 21%
Advanced Proteomics Techniques and Applications
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Proteoforms in Disease: Biomedical Applications of Top‐Down Proteomics — Holden T. Rogers, Julia Chamot‐Rooke, et al. · Mass Spectrometry Reviews (2026) | TGRS Research Map | TGRS