While non-mammalian embryos often rely on spatial pre-patterning, mammalian development has long been thought to begin with equivalent blastomeres. However, emerging evidence challenges this. Here, using multiplexed and label-free single-cell proteomics, we identify over 300 asymmetrically abundant proteins-many involved in protein degradation and transport-dividing mouse 2-cell-stage blastomeres into two distinct clusters, which we term alpha and beta. These proteomic asymmetries are detectable as early as the zygote stage, intensify by the 4-cell stage, and correlate with the sperm entry site, implicating fertilization as a symmetry-breaking event. Splitting 2-cell-stage embryos into halves reveals that beta blastomeres possess greater developmental potential than alpha blastomeres. Similar clustering and protein enrichment patterns found in human 2-cell embryos suggest this early asymmetry might be conserved. These findings uncover a previously unrecognized proteomic pre-patterning triggered by fertilization in mammalian embryos, with important implications for understanding totipotency and early lineage bias.
Fertilization triggers early proteomic symmetry breaking in mammalian embryos.
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作者:Iwamoto-Stohl Lisa K, Petelski Aleksandra A, Quan Baiyi, Meglicki Maciej, Fu Audrey, Nakagawa Shoma, McMahon Breanna, Wang Ting-Yu, Khan Saad, Specht Harrison, Huffman Gray, Derks Jason, Junyent Sergi, Weatherbee Bailey A T, Weberling Antonia, Gantner Carlos W, Mandelbaum Rachel S, Paulson Richard J, Lam Lisa, Chou Tsui-Fen, Slavov Nikolai, Zernicka-Goetz Magdalena
| 期刊: | Cell | 影响因子: | 42.500 |
| 时间: | 2025 | 起止号: | 2025 Dec 24; 188(26):7428-7444 |
| doi: | 10.1016/j.cell.2025.11.006 | ||
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