Encoded and non-genetic protein variants expand human functional proteome

Nature正文已收录本站
  • Article
  • Published:
  • Tehila Leiman1,
  • David Morgenstern2,
  • Yishai Levin2,
  • Omer Asraf1,
  • Orna Dahan1,
  • Dvir Dahary1 &
  • …
  • Yitzhak Pilpel  ORCID: orcid.org/0000-0003-3200-93441 

Nature (2026) Cite this article

We’re sharing this article early to provide faster access to peer-reviewed, accepted research. It is citable and carries a permanent DOI. This version is subject to further edits and will be replaced automatically by the final Version of Record. All legal disclaimers apply.

Abstract

Each stage of the Central Dogma contributes to proteome diversity through mechanisms such as heterozygosity, somatic mutations, transcriptional errors, and translational errors. As a result, a diverse array of protein variants can coexist within a single proteome, such as that of humans. However, until now, methods to detect, quantify, and evaluate the functional consequences of these variants have been lacking. Here we examined a large-scale proteogenomic dataset from 29 healthy human tissues and uncovered 13,910 confidently localized variants representing 7,215 unique single amino acid substitutions co-existing alongside their corresponding reference proteoforms 1.We found that the abundance of both genetic (SNP’s, somatic mutations) and mistranslated protein variants mirrors their allele frequencies in the human population. Moreover, we show that non-genetic substitutions may provide a distinct route for exploring protein sequence space, circumventing the mutational constraints imposed by the genetic code. In addition, we provide experimental validation of non-genetic substitution on selected purified proteins. We demonstrate specific and recurring non-genetic variation patterns upon amino acid starvation in proteome-wide analyses of cancer-derived cell lines and identify hundreds of substituted non-genetic proteoforms that recur consistently in multiple healthy individuals or map to annotated protein functional sites. We propose that these substitutions constitute a novel class of functional protein phenotypic variants. Collectively, our findings indicate that non-genetic amino acid substitutions in human proteins provide an abundant source to expanding the functional proteome.

This is a preview of subscription content, access via your institution

Access options

Access through your institution

Access Nature and 54 other Nature Portfolio journals

Get Nature+, our best-value online-access subscription

27,99 € / 30 days

cancel any time

Subscription info for Chinese customers

We have a dedicated website for our Chinese customers. Please go to naturechina.com to subscribe to this journal.

Rent or buy this article

Prices vary by article type

from$1.95

to$39.95

Prices may be subject to local taxes which are calculated during checkout

Author information

Authors and Affiliations

  1. Department of Molecular Genetics, Weizmann Institute of Science, Rehovot, Israel

    Vyacheslav Tretyachenko, Tehila Leiman, Omer Asraf, Orna Dahan, Dvir Dahary & Yitzhak Pilpel

  2. Nancy and Stephen Grand Israel National Center for Personalized Medicine G-INCPM, Weizmann Institute of Science, Rehovot, Israel

    David Morgenstern & Yishai Levin

Authors

  1. Vyacheslav Tretyachenko
  2. Tehila Leiman
  3. David Morgenstern
  4. Yishai Levin
  5. Omer Asraf
  6. Orna Dahan
  7. Dvir Dahary
  8. Yitzhak Pilpel

Corresponding authors

Correspondence to Vyacheslav Tretyachenko or Yitzhak Pilpel.

Supplementary information

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Tretyachenko, V., Leiman, T., Morgenstern, D. et al. Encoded and non-genetic protein variants expand human functional proteome. Nature (2026). https://doi.org/10.1038/s41586-026-11124-z

Download citation

  • Received:

  • Accepted:

  • Published:

  • DOI: https://doi.org/10.1038/s41586-026-11124-z