1. Academic Validation
  2. Synthesis of Substituted Cy5 Phosphoramidite Derivatives and Their Incorporation into Oligonucleotides Using Automated DNA Synthesis

Synthesis of Substituted Cy5 Phosphoramidite Derivatives and Their Incorporation into Oligonucleotides Using Automated DNA Synthesis

  • ACS Omega. 2022 Mar 22;7(13):11002-11016. doi: 10.1021/acsomega.1c06921.
Adam Meares 1 2 Kimihiro Susumu 3 4 Divita Mathur 1 2 Sang Ho Lee 3 4 Olga A Mass 5 Jeunghoon Lee 5 6 Ryan D Pensack 5 Bernard Yurke 5 7 William B Knowlton 5 7 Joseph S Melinger 8 Igor L Medintz 1
Affiliations

Affiliations

  • 1 Center for Bio/Molecular Science and Engineering Code 6900, U. S. Naval Research Laboratory, Washington, D.C., Virginia 20375, United States.
  • 2 College of Science, George Mason University, Fairfax, Virginia 22030, United States.
  • 3 Optical Sciences Division Code 5600, U. S. Naval Research Laboratory, Washington, D.C., Virginia 20375, United States.
  • 4 Jacobs Corporation, Hanover, Maryland 21076, United States.
  • 5 Micron School of Materials Science & Engineering, Boise State University, Boise, Idaho 83725, United States.
  • 6 Department of Chemistry & Biochemistry, Boise State University, Boise, Idaho 83725, United States.
  • 7 Department of Electrical & Computer Engineering, Boise State University, Boise, Idaho 83725, United States.
  • 8 Electronics Science and Technology Division Code 6800, U.S. Naval Research Laboratory, Washington, D.C. 20375, United States.
Abstract

Cyanine dyes represent a family of organic fluorophores with widespread utility in biological-based applications ranging from Real-Time PCR probes to protein labeling. One burgeoning use currently being explored with indodicarbocyanine (Cy5) in particular is that of accessing exciton delocalization in designer DNA dye aggregate structures for potential development of light-harvesting devices and room-temperature quantum computers. Tuning the hydrophilicity/hydrophobicity of Cy5 dyes in such DNA structures should influence the strength of their excitonic coupling; however, the requisite commercial Cy5 derivatives available for direct incorporation into DNA are nonexistent. Here, we prepare a series of Cy5 derivatives that possess different 5,5'-substituents and detail their incorporation into a set of DNA sequences. In addition to varying dye hydrophobicity/hydrophilicity, the 5,5'-substituents, including hexyloxy, triethyleneglycol monomethyl ether, tert-butyl, and chloro groups were chosen so as to vary the inherent electron-donating/withdrawing character while also tuning their resulting absorption and emission properties. Following the synthesis of parent dyes, one of their pendant alkyl chains was functionalized with a monomethoxytrityl protective group with the remaining hydroxyl-terminated N-propyl linker permitting rapid, same-day phosphoramidite conversion and direct internal DNA incorporation into nascent Oligonucleotides with moderate to good yields using a 1 μmole scale automated DNA synthesis. Labeled sequences were cleaved from the controlled pore glass matrix, purified by HPLC, and their photophysical properties were characterized. The DNA-labeled Cy5 derivatives displayed spectroscopic properties that paralleled the parent dyes, with either no change or an increase in fluorescence quantum yield depending upon sequence.

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