Recent Updates
Recently added Catalysts
NAUT Positive Sentiment

PTMs are pixels – Proteoforms are screenshots

Key Takeaway: The article discusses the importance of proteoform analysis over isolated post-translational modifications (PTMs) in understanding protein function. It highlights how proteoforms, as single-molecule variants, provide clearer mechanistic insights into biological processes. The Nautilus Proteome Analysis Platform is presented as a key technology for advancing proteoform research, enabling higher throughput and more precise analyses.
Price reaction · baseline $2.75 (2024-10-22T15:49:00.000Z) · hit during market hours · clean, no other NAUT news in the window
day 0 close · peak
+1.1%

Market Sentiment Analysis

POSITIVE FACTORS

  • Proteoform analysis provides deeper insights into protein function.
  • Technological advancements in proteomics are improving research accessibility.
  • The Nautilus Platform enhances the understanding of proteoforms.

BiopharmaWatch Analysis

From our catalyst data and publicly available data · not financial advice
Cash runway
~29 mo
Minimal dilution risk
Lead asset
MDMA
Phase 2 · Post-Traumatic Stress Disorder

Full Press Release Details

Proteoform Analysis
Tyler Ford
October 22, 2024
Organisms must be dynamic to survive in ever-changing environments. At the molecular level, organisms can respond to their surroundings through the creation of proteoforms – the single-molecule variants of proteins found in biological systems. These are defined by their full sets of alterations whether they come from genetic variation, alternative splicing, post-translational modifications (PTMs), or any other source ( Smith and Kelleher 2013 ). Such alterations work together to change protein structure and function, and by identifying proteoforms as opposed to individual alterations or PTMs, researchers can gain mechanistic insights into biological processes.
Read our preprint to discover how we use Iterative Mapping to analyze proteoforms.

It is essential to study proteoforms as opposed to PTMs

PTMs and other isolated protein alterations can be misleading if studied in isolation. To understand why, consider a single phosphorylation event. To say this event activates or inhibits a protein may only be true for a certain isoform in the context of other PTMs. Thus, it is patterns of modification to single protein molecules that define their structures and functions. In other words, protein structure and function can be identified at the proteoform level but not the PTM level. Studying PTMs is like looking at isolated pixels on a monitor and attempting to discover what webpage is displayed. Studying proteoforms is like looking at screenshot – you get far more information that can lead to clear conclusions.

Examples of mechanistic insights derived from targeted proteoform analysis

Studies of EGFR showcase how proteoform analyses reveal information obscured in analyses of isolated PTMs. Upon EGF binding, EGFR autophosphorylates a subset of its tyrosine residues. Autophosphorylation of a particular EGFR tyrosine can be associated with either proliferative signaling or EGFR internalization and degradation. It all depends on whether a second tyrosine is also phosphorylated. When the first residue is phosphorylated in the absence of the second, the Grb2 protein is recruited and mediates proliferative signaling. When the second residue is also phosphorylated, Grb2 and this phosphosite cooperate to recruit a ubiquitin ligase that drives EGFR internalization and degradation ( Sigismund et al. 2013 ).
These are just two of the many possible outcomes of EGFR signaling, but if one were to measure either of these phosphosites in isolation, even their associations with proliferative signaling and degradation would be difficult to interpret. They only become clear upon examining EGFR proteoforms. Furthermore, while it would be difficult to use either isolated phosphosite as a biomarker, EGFR proteoforms may effectively report on EGFR activity and downstream signaling.
The key is proteoforms can provide mechanistic understanding in instances where PTMs cannot. This is likely true for many, if not all proteins, and a few additional examples include:
• Histone modifications – one histone modification can enable another, and dynamic histone proteoforms cause epigenetic alterations to gene expression ( Jain et al. 2023 , Zhao et al. 2021 ).
• Enzyme kinetics – varying degrees of phosphorylation alter enzyme activity ( Favelyukis et al. 2001 ).
• Neurodegenerative disease – Accumulated modifications to the tau protein correlate with increasing Alzheimer’s severity and may be involved in the mechanisms of tau aggregation ( Wesseling et al. 2020 ).
Check out this episode of the Translating Proteomics podcast for a fascinating discussion of proteoforms.

The need for technologies that measure proteoforms and not just PTMs

Our current knowledge of proteoforms and their impacts often comes from low-throughput analyses involving protein purification and synthesis of defined proteoforms. In the last few decades, this work has advanced and researchers have begun to employ top-down proteomics to unambiguously associate proteoforms with specific phenotypes in a higher throughput manner ( Melani et al. 2022 ). Nonetheless, techniques for measuring proteoforms as opposed to PTMs are rare, difficult to use, and unscalable. This must change if we hope to move beyond confusing catalogues of PTMs and ambiguous impacts on protein function.
Indeed, we must develop technologies that make proteoform analyses far more accessible so we can better understand how biological processes work and develop biomarkers that unambiguously report on their activity. With these technologies, we will additionally gain the incredible power to drug proteoforms with a precision that protein-targeted drugs do not have.
The Nautilus TM Proteome Analysis Platform is uniquely suited to proteoform studies because single-molecule analysis lies at its technological core. The platform is designed to probe single protein molecules multiple times, discern their patterns of modification, and quantify proteoforms. Thus, we hope the platform will open the world of proteoforms to many more researchers and provide them with clear pictures of the active variants of proteins in biological systems. Learn more about proteoform analyses on the Nautilus Platform in this animation .
Share this Article
Stay up-to-date on all things Nautilus
World-class articles, delivered weekly
MORE ARTICLES
What are proteoforms?
The patterns of modification to individual proteins create proteoforms, defined protein variants that can have drastically different functions.
Read more
Targeted proteoform studies on the Nautilus Platform
Learn how targeted proteoform studies on the Nautilus Proteome Analysis Platform can help unlock cellular functions.
Read more
Proteoforms, the Future of Proteomics? – Translating Proteomics Episode 7
In this episode of Translating Proteomics, Parag and Andreas discuss proteoforms. What they are, why they're important, and how to measure them.
Read more
Stay up-to-date on all things Nautilus

Subscribe to our Newsletter

Frequently Asked Questions

What are proteoforms?

Proteoforms are single-molecule variants of proteins that result from various alterations.

Why study proteoforms instead of PTMs?

Proteoforms provide clearer insights into protein functions than isolated PTMs.

How does the Nautilus Platform aid in proteoform analysis?

The Nautilus Platform enables high-throughput analysis of proteoforms through single-molecule technology.

What insights can proteoform analysis provide?

Proteoform analysis reveals mechanistic insights that isolated PTMs cannot clarify.

What advancements are needed in proteoform research?

Technologies for measuring proteoforms need to be more accessible and scalable.

Last updated: Oct 22, 2024