Related Experiment Video
Updated: Aug 21, 2026

Cell-Lineage Guided Mass Spectrometry Proteomics in the Developing (Frog) Embryo
Published on: April 21, 2022
Single-cell foundation modeling with species-native protein tokens links regenerative competence across frog and
Abstract:
Appendage regenerative capacity varies dramatically across species, developmental stages, and anatomical sites, yet comparing functional transitions across organisms remains difficult because gene vocabularies diverge. Cross-species single-cell analysis conventionally collapses divergent genomes to one-to-one orthologs-a reduction that is not neutral. Here, we construct a species-native input representation for allotetraploid Xenopus laevis that preserves duplicated L and S homeologs (96.39% feature coverage versus 53.14% under symbol collapse) within a frozen universal cell embedding (UCE). A causally validated tail-organizer contrast defines a portable vector competence ruler. While baseline representations (direct expression, SVD, Harmony) recover organizer identity, only species-native UCE preserves the stage-52-versus-stage-58 limb competence transition, which ortholog collapse reverses. Applied without refitting, the ruler distinguishes regenerative from fibrotic digit repair in adult mice and resolves an aligned component in state-balanced macrophages, an ordering reproduced by simpler representations. Preserving species-native gene vocabularies carries functional contrasts across evolutionary and genomic boundaries.

