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Small-Molecule Patterning via Prefunctionalized Alkanethiols

delete2018-05-22
delete19
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OA
AI
H
Huan H. Cao
N
Nako Nakatsuka
S
Stéphanie Deshayes
J
John M. Abendroth
H
Hongyan Yang
P
Paul S. Weiss *
A
Andrea M. Kasko *
A
Anne M. Andrews *
DOI:10.1021/acs.chemmater.8b00377delete
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Abstract

Abstract

En 中文
Interactions between small molecules and biomolecules are important physiologically and for biosensing, diagnostic, and therapeutic applications. To investigate these interactions, small molecules can be tethered to substrates through standard coupling chemistries. While convenient, these approaches co-opt one or more of the few small-molecule functional groups needed for biorecognition. Moreover, for multiplexing, individual probes require different surface functionalization chemistries, conditions, and/or protection/deprotection strategies. Thus, when placing multiple small molecules on surfaces, orthogonal chemistries are needed that preserve all functional groups and are sequentially compatible. Alternately, we approach high-fidelity small- molecule patterning by coupling small-molecule neurotransmitter precursors, as examples, to monodisperse asymmetric oligo(ethylene glycol)alkanethiols during synthesis and prior to self-assembly on Au substrates. We use chemical lift-off lithography to singly and doubly pattern substrates. Selective antibody recognition of prefunctionalized thiols was comparable to or better than recognition of small molecules functionalized to alkanethiols after surface assembly. These findings demonstrate that synthesis and patterning approaches that circumvent sequential surface conjugation chemistries enable biomolecule recognition and afford gateways to multiplexed small-molecule functionalized substrates.
Keywords:
SELF-ASSEMBLED MONOLAYERS
OLIGO(ETHYLENE GLYCOL)
GOLD
SURFACE
DNA
PROTEINS
IMMOBILIZATION
COADSORPTION
LITHOGRAPHY
RECOGNITION
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Chemistry of Materials cover
Chemistry of Materials
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7
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2.8W
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11.4W

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U
university of california los angeles
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University of California System
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