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In Situ Magnetic Control of Macroscale Nanoligand Density Regulates the Adhesion and Differentiation of Stem Cells.

Chandra KhatuaSunhong MinHee Joon JungJeong Eun ShinNa LiIndong JunHui-Wen LiuGunhyu BaeHyojun ChoiMin Jun KoYoo Sang JeonYu Jin KimJoonbum LeeMinji KoGyubo ShimHongchul ShinSangbum LeeSeok ChungYoung Keun KimJae-Jun SongVinayak P DravidHeemin Kang
Published in: Nano letters (2020)
Developing materials with remote controllability of macroscale ligand presentation can mimic extracellular matrix (ECM) remodeling to regulate cellular adhesion in vivo. Herein, we designed charged mobile nanoligands with superparamagnetic nanomaterials amine-functionalized and conjugated with polyethylene glycol linker and negatively charged RGD ligand. We coupled negatively a charged nanoligand to a positively charged substrate by optimizing electrostatic interactions to allow reversible planar movement. We demonstrate the imaging of both macroscale and in situ nanoscale nanoligand movement by magnetically attracting charged nanoligand to manipulate macroscale ligand density. We show that in situ magnetic control of attracting charged nanoligand facilitates stem cell adhesion, both in vitro and in vivo, with reversible control. Furthermore, we unravel that in situ magnetic attraction of charged nanoligand stimulates mechanosensing-mediated differentiation of stem cells. This remote controllability of ECM-mimicking reversible ligand variations is promising for regulating diverse reparative cellular processes in vivo.
Keyphrases
  • stem cells
  • extracellular matrix
  • cell adhesion
  • molecularly imprinted
  • high resolution
  • biofilm formation
  • photodynamic therapy
  • staphylococcus aureus
  • pseudomonas aeruginosa
  • cystic fibrosis