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R. V. van Es

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Open access Aug 2026

Single-Cell Inference of Structural States Of Ribosomes

Protein synthesis is dynamically regulated to control cell growth, differentiation, and stress responses. Recent single-cell sequencing methods can map ribosome positions on individual transcripts1–4, but cannot capture the global translational states that coordinate protein synthesis across the transcriptome. In contrast, methods that measure the global translational landscape, such as polysome profiling and cryogenic electron tomography5, lack either single-cell resolution or throughput. Here we introduce SCISSOR (Single-Cell Inference of Structural States of Ribosomes), a strategy that infers global translation activity in individual cells from the differential protection of ribosomal RNA (rRNA) against nuclease digestion. By integrating these protection signatures with the structure of the ribosome, SCISSOR resolves multiple ribosomal states and quantifies their abundance across thousands of individual cells. Applying SCISSOR reveals systematic variation in global translation across the cell cycle in human cells, as well as during the differentiation of murine intestinal stem cells into distinct epithelial lineages. These findings uncover principles of global translational regulation that are invisible to transcriptomic or ribosome-profiling assays, establishing a framework for studying global translation control at single-cell resolution.

Euan Joly-Smith, Michael VanInsberghe, Kseniia Sarieva et al. · 0 citations
Open access Aug 2026

Proteomics of human cancer-associated T cells identifies regulators of T cell functionality

Integrated multi-omic profiling of human tumor-infiltrating T cells reveals cell-intrinsic regulators of T cell dysfunction that are missed by transcriptomic analyses alone, highlighting an additional layer of regulatory control.

Kaspar Bresser, Zan Hozjan, N. Servaas et al. · 0 citations

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