4.8 Article

Instructing cells with programmable peptide DNA hybrids

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NATURE COMMUNICATIONS
卷 8, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/ncomms15982

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资金

  1. U.S. Department of Energy, Office of Science, Basic Energy Sciences [DE-FG02-00ER45810]
  2. Center for Bio-Inspired Energy Sciences (CBES), an Energy Frontiers Research Center (EFRC) - US Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-SC0000989]
  3. National Institutes of Health/National Institute of Dental and Craniofacial Research [5R01DE015920]
  4. EMBO Long-Term Postdoctoral Fellowship [ALTF 233-2012]
  5. NIH Ruth L. Kirschstein NRSA postdoctoral fellowship [1F32NS077728-01A1]
  6. IIN Postdoctoral Fellowship from the Northwestern International Institute for Nanotechnology
  7. Beatriu de Pinos Fellowship [BP-A 00007 2014]
  8. National Science Foundation Graduate Research Fellowship [DGE-1324585]
  9. Netherlands Organization for Scientific Research (NWO) Rubicon Fellowship
  10. Samsung Scholarship Foundation
  11. Soft and Hybrid Nanotechnology Experimental (SHyNE) Resource [NSF NNCI-1542205]
  12. MRSEC program at the Materials Research Center [NSF DMR-1121262]
  13. International Institute for Nanotechnology (IIN)
  14. Keck Foundation
  15. State of Illinois, through the IIN
  16. NCI CCSG [P30 CA060553]

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The native extracellular matrix is a space in which signals can be displayed dynamically and reversibly, positioned with nanoscale precision, and combined synergistically to control cell function. Here we describe a molecular system that can be programmed to control these three characteristics. In this approach we immobilize peptide-DNA (P-DNA) molecules on a surface through complementary DNA tethers directing cells to adhere and spread reversibly over multiple cycles. The DNA can also serve as a molecular ruler to control the distance-dependent synergy between two peptides. Finally, we use two orthogonal DNA handles to regulate two different bioactive signals, with the ability to independently up-or downregulate each over time. This enabled us to discover that neural stem cells, derived from the murine spinal cord and organized as neurospheres, can be triggered to migrate out in response to an exogenous signal but then regroup into a neurosphere as the signal is removed.

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