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Sequentially Programmable and Cellularly Selective Assembly of Fluorescent Polymerized Vesicles for Monitoring Cell Apoptosis

  • Shu Peng
  • , Yu Chen Pan
  • , Yaling Wang
  • , Zhe Xu
  • , Chao Chen
  • , Dan Ding
  • , Yongjian Wang
  • , Dong Sheng Guo
  • Nankai University

Research output: Contribution to journalArticlepeer-review

18 Scopus citations

Abstract

The introduction of controlled self-assembly into living organisms opens up desired biomedical applications in wide areas including bioimaging/assays, drug delivery, and tissue engineering. Besides the enzyme-activated examples reported before, controlled self-assembly under integrated stimuli, especially in the form of sequential input, is unprecedented and ultimately challenging. This study reports a programmable self-assembling strategy in living cells under sequentially integrated control of both endogenous and exogenous stimuli. Fluorescent polymerized vesicles are constructed by using cholinesterase conversion followed by photopolymerization and thermochromism. Furthermore, as a proof-of-principle application, the cell apoptosis involved in the overexpression of cholinesterase in virtue of the generated fluorescence is monitored, showing potential in screening apoptosis-inducing drugs. The approach exhibits multiple advantages for bioimaging in living cells, including specificity to cholinesterase, red emission, wash free, high signal-to-noise ratio.

Original languageEnglish
Article number1700310
JournalAdvanced Science
Volume4
Issue number11
DOIs
StatePublished - Nov 2017
Externally publishedYes

Keywords

  • bioimaging
  • cell apoptosis
  • enzymes
  • photopolymerization
  • programmable self-assembly

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