4.8 Article

Integrated single-cell analysis of multicellular immune dynamics during hyperacute HIV-1 infection

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NATURE MEDICINE
卷 26, 期 4, 页码 511-+

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NATURE PORTFOLIO
DOI: 10.1038/s41591-020-0799-2

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资金

  1. Searle Scholars Program
  2. Beckman Young Investigator Program
  3. Pew-Stewart Scholars Program for Cancer Research
  4. National Institutes for Health [2U19AI089992, 2R01HL095791, 1U54CA217377, 2P01AI039671, 5U24AI118672, 2RM1HG006193, 1R01AI138546, 1R37AI067073, 1R01HL134539, 1R01DA046277, 1K08AI118538, UM1AI100663, UM1AI144462, 1R01AI145305]
  5. Bill and Melinda Gates Foundation [OPP1066973, INV-002703]
  6. NSF Graduate Student Fellowship Award
  7. Hugh Hampton Young Memorial Fund Fellowship
  8. Damon Runyon Cancer Research Foundation [DRG-2274-16]
  9. Gilead Sciences [00406]
  10. International AIDS Vaccine Initiative [UKZNRSA1001]
  11. South African National Research Foundation [64809]
  12. Witten Family Foundation
  13. Dan and Marjorie Sullivan Foundation
  14. Mark and Lisa Schwartz Foundation
  15. AIDS Healthcare Foundation
  16. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: NIAID) [P30 AI060354]
  17. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: NCI) [P30 AI060354]
  18. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: NICHD) [P30 AI060354]
  19. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: NHLBI) [P30 AI060354]
  20. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: NIDA) [P30 AI060354]
  21. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: NIMH) [P30 AI060354]
  22. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: NIA) [P30 AI060354]
  23. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: FIC) [P30 AI060354]
  24. Harvard University Center for AIDS Research (CFAR - United States National Institutes of Health: OAR) [P30 AI060354]
  25. Sub-Saharan African Network for TB/HIV Research Excellence
  26. DELTAS Africa Initiative [DEL-15-006]
  27. New Partnership for Africa's Development Planning and Coordinating Agency (NEPAD Agency)
  28. Wellcome Trust [107752/Z/15/Z, 210662/Z/18/Z]
  29. United Kingdom Government
  30. Sloan Fellowship in Chemistry
  31. Bill and Melinda Gates Foundation [INV-002703] Funding Source: Bill and Melinda Gates Foundation

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Single-cell RNA-sequencing of blood from HIV-1-infected individuals obtained before initiation of antiretroviral therapy provides insights into the initial immune responses during early infection that might shape future outcomes. Cellular immunity is critical for controlling intracellular pathogens, but individual cellular dynamics and cell-cell cooperativity in evolving human immune responses remain poorly understood. Single-cell RNA-sequencing (scRNA-seq) represents a powerful tool for dissecting complex multicellular behaviors in health and disease(1,2) and nominating testable therapeutic targets(3). Its application to longitudinal samples could afford an opportunity to uncover cellular factors associated with the evolution of disease progression without potentially confounding inter-individual variability(4). Here, we present an experimental and computational methodology that uses scRNA-seq to characterize dynamic cellular programs and their molecular drivers, and apply it to HIV infection. By performing scRNA-seq on peripheral blood mononuclear cells from four untreated individuals before and longitudinally during acute infection(5), we were powered within each to discover gene response modules that vary by time and cell subset. Beyond previously unappreciated individual- and cell-type-specific interferon-stimulated gene upregulation, we describe temporally aligned gene expression responses obscured in bulk analyses, including those involved in proinflammatory T cell differentiation, prolonged monocyte major histocompatibility complex II upregulation and persistent natural killer (NK) cell cytolytic killing. We further identify response features arising in the first weeks of infection, for example proliferating natural killer cells, which potentially may associate with future viral control. Overall, our approach provides a unified framework for characterizing multiple dynamic cellular responses and their coordination.

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