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New Generation of Clickable Nucleic Acids: Synthesis and Active Hybridization with DNA.
Han, Xun; Domaille, Dylan W; Fairbanks, Benjamin D; He, Liangcan; Culver, Heidi R; Zhang, Xinpeng; Cha, Jennifer N; Bowman, Christopher N.
Affiliation
  • Han X; Department of Chemical and Biological Engineering , University of Colorado , UCB 596 , Boulder , Colorado 80309 , United States.
  • Domaille DW; Department of Chemistry , Colorado School of Mines , 1500 Illinois Street , Golden , Colorado 80401 , United States.
  • Fairbanks BD; Department of Chemical and Biological Engineering , University of Colorado , UCB 596 , Boulder , Colorado 80309 , United States.
  • He L; Department of Chemical and Biological Engineering , University of Colorado , UCB 596 , Boulder , Colorado 80309 , United States.
  • Culver HR; Department of Chemical and Biological Engineering , University of Colorado , UCB 596 , Boulder , Colorado 80309 , United States.
  • Zhang X; Department of Chemical and Biological Engineering , University of Colorado , UCB 596 , Boulder , Colorado 80309 , United States.
  • Cha JN; Department of Chemical and Biological Engineering , University of Colorado , UCB 596 , Boulder , Colorado 80309 , United States.
  • Bowman CN; Department of Chemical and Biological Engineering , University of Colorado , UCB 596 , Boulder , Colorado 80309 , United States.
Biomacromolecules ; 19(10): 4139-4146, 2018 10 08.
Article in En | MEDLINE | ID: mdl-30212619
ABSTRACT
Due to the ability to generate oligomers of precise sequence, sequential and stepwise solid-phase synthesis has been the dominant method of producing DNA and other oligonucleotide analogues. The requirement for a solid support, however, and the physical restrictions of limited surface area thereon significantly diminish the efficiency and scalability of these syntheses, thus, negatively affecting the practical applications of synthetic polynucleotides and other similarly created molecules. By employing the robust photoinitiated thiol-ene click reaction, we developed a new generation of clickable nucleic acids (CNAs) with a polythioether backbone containing repeat units of six atoms, matching the spacing of the phosphodiester backbone of natural DNA. A simple, inexpensive, and scalable route was utilized to produce CNA monomers in gram-scale, which indicates the potential to dramatically lower the cost of these DNA mimics and thereby expand the scope of these materials. The efficiency of this approach was demonstrated by the completion of CNA polymerization in 30 seconds, as characterized by size-exclusive chromatography (SEC) and infrared (IR) spectroscopy. CNA/DNA hybridization was demonstrated by gel electrophoresis and used in CdS nanoparticle assembly.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: DNA, Single-Stranded / Nucleic Acids / Nanoparticles Limits: Humans Language: En Journal: Biomacromolecules Journal subject: BIOLOGIA MOLECULAR Year: 2018 Type: Article Affiliation country: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: DNA, Single-Stranded / Nucleic Acids / Nanoparticles Limits: Humans Language: En Journal: Biomacromolecules Journal subject: BIOLOGIA MOLECULAR Year: 2018 Type: Article Affiliation country: United States