4.8 Article

Multi-omic single-cell snapshots reveal multiple independent trajectories to drug tolerance in a melanoma cell line

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NATURE COMMUNICATIONS
卷 11, 期 1, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-020-15956-9

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资金

  1. NIH [U54 CA199090, U01 CA217655, P01 CA168585, R35 CA197633, U54CA209971]
  2. Dr. Robert Vigen Memorial Fund
  3. Ressler Family Fund
  4. Jean Perkins Foundation
  5. ISB Innovator Award
  6. V Foundation-Gil Nickel Family Endowed Fellowship
  7. SEOM
  8. National Cancer Institute of the National Institutes of Health [F99 CA212231]
  9. Stanford University's Diversifying Academia, Recruiting Excellence Fellowship
  10. Andy Hill CARE Fund

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The determination of individual cell trajectories through a high-dimensional cell-state space is an outstanding challenge for understanding biological changes ranging from cellular differentiation to epigenetic responses of diseased cells upon drugging. We integrate experiments and theory to determine the trajectories that single BRAF(V600E) mutant melanoma cancer cells take between drug-naive and drug-tolerant states. Although single-cell omics tools can yield snapshots of the cell-state landscape, the determination of individual cell trajectories through that space can be confounded by stochastic cell-state switching. We assayed for a panel of signaling, phenotypic, and metabolic regulators at points across 5 days of drug treatment to uncover a cell-state landscape with two paths connecting drug-naive and drug-tolerant states. The trajectory a given cell takes depends upon the drug-naive level of a lineage-restricted transcription factor. Each trajectory exhibits unique druggable susceptibilities, thus updating the paradigm of adaptive resistance development in an isogenic cell population. Detailed understanding of how cancer cells transition from a drug sensitive to a tolerant state is lacking. Here, using single cell proteomic and metabolic data the authors uncover that isogenic BRAF mutant melanoma cells can take two distinct paths to become tolerant to BRAF inhibition.

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