Interface-Resolved Proteomics of Cell-Cell Membranes Reveals Early Spatial Polarity in a Vertebrate Embryo
Zhou, F.; Nemes, P.
Show abstract
Cell-cell membrane interfaces are central sites of adhesion, signaling, and polarity establishment, yet they have remained inaccessible to proteome-wide analysis as discrete analytical units. Here, we report an interface-resolved proteomics workflow that isolates intact intercellular membrane segments from single, identified blastomeres and quantitatively profiles their protein composition. Using a microdissection-enabled strategy combined with optimized mild-detergent extraction and high-sensitivity high-resolution mass spectrometry, we achieve deep coverage of low-input membrane samples, identifying [~]3,000 proteins per interface type, including over 100 annotated plasma-membrane proteins. Applying this approach to defined dorsal-dorsal, dorsal-ventral, and ventral-ventral cell-cell interfaces in a 16-cell chordate embryo model, Xenopus laevis, reveals reproducible, interface-specific proteomic signatures that distinguish neighboring membrane contacts along the primary body axis. Region-enriched proteins include regulators of membrane trafficking, signaling, cytoskeletal organization, and metabolic pathways linked to early dorsal-ventral patterning. These results demonstrate that intercellular membrane interfaces exhibit molecular polarity at early developmental stages and establish interface-resolved proteomics as a general strategy for mapping spatially organized biochemical activities at cell-cell contacts.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Spatial-proteomics reveal in-vivo phospho-signaling dynamics at subcellular resolution 95%
- Parallel measurement of transcriptomes and proteomes from same single cells using nanodroplet splitting 94%
- High-throughput and high-efficiency sample preparation for single-cell proteomics using a nested nanowell chip 94%
Similar papers in this journal
- Subcellular Mass Spectrometry Reveals Proteome Remodeling in an Asymmetrically Dividing (Frog) Embryonic Stem Cell 95%
- Deep profiling of protease substrate specificity enabled by dual random and scanned human proteome substrate phage libraries 93%
- Driving Integrative Structural Modeling with Serial Capture Affinity Purification 93%