Compact quantum dot surface modification to enable emergent behaviors in quantum dot-DNA composites

التفاصيل البيبلوغرافية
العنوان: Compact quantum dot surface modification to enable emergent behaviors in quantum dot-DNA composites
المؤلفون: Carlos E. Castro, Abhilasha Dehankar, Jessica O. Winter, Thomas Porter, Joshua A. Johnson
المصدر: The Journal of chemical physics. 151(14)
سنة النشر: 2019
مصطلحات موضوعية: Azides, Materials science, Nanostructure, Passivation, Poly T, Surface Properties, General Physics and Astronomy, DNA, Single-Stranded, Metal Nanoparticles, Nanotechnology, Sulfides, 010402 general chemistry, 01 natural sciences, Fluorescence, Nanocomposites, 0103 physical sciences, Quantum Dots, Cadmium Compounds, Phytochelatins, DNA origami, Physical and Theoretical Chemistry, Selenium Compounds, 010304 chemical physics, business.industry, Nucleic Acid Hybridization, 0104 chemical sciences, Template, Oligodeoxyribonucleotides, Quantum dot, Zinc Compounds, Alkynes, Click chemistry, Surface modification, Click Chemistry, Gold, Photonics, business
الوصف: Quantum dot (QD) biological imaging and sensing applications often require surface modification with single-stranded deoxyribonucleic acid (ssDNA) oligonucleotides. Furthermore, ssDNA conjugation can be leveraged for precision QD templating via higher-order DNA nanostructures to exploit emergent behaviors in photonic applications. Use of ssDNA-QDs across these platforms requires compact, controlled conjugation that engenders QD stability over a wide pH range and in solutions of high ionic strength. However, current ssDNA-QD conjugation approaches suffer from limitations, such as the requirement for thick coatings, low control over ssDNA labeling density, requirement of large amounts of ssDNA, or low colloidal or photostability, restraining implementation in many applications. Here, we combine thin, multidentate, phytochelatin-3 (PC3) QD passivation techniques with strain-promoted copper-free alkyne-azide click chemistry to yield functional ssDNA-QDs with high stability. This process was broadly applicable across QD sizes (i.e., λem = 540, 560, 600 nm), ssDNA lengths (i.e., 10-16 base pairs, bps), and sequences (poly thymine, mixed bps). The resulting compact ssDNA-QDs displayed a fluorescence quenching efficiency of up to 89% by hybridization with complementary ssDNA-AuNPs. Furthermore, ssDNA-QDs were successfully incorporated with higher-order DNA origami nanostructure templates. Thus, this approach, combining PC3 passivation with click chemistry, generates ssDNA-PC3-QDs that enable emergent QD properties in DNA-based devices and applications.
تدمد: 1089-7690
الوصول الحر: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::0f77f176c23dfd2613c8df19bb7024d1Test
https://pubmed.ncbi.nlm.nih.gov/32035472Test
حقوق: OPEN
رقم الانضمام: edsair.doi.dedup.....0f77f176c23dfd2613c8df19bb7024d1
قاعدة البيانات: OpenAIRE