生物
核糖核酸
碱基对
DNA
配对
计算生物学
核酸热力学
遗传学
寡核苷酸
核酸
基因
分子生物学
超导电性
量子力学
物理
作者
Iranna Annappa Todkari,Arun Richard Chandrasekaran,Jibin Abraham Punnoose,Song Mao,Phensinee Haruehanroengra,Camryn Beckles,Jia Sheng,Ken Halvorsen
摘要
Abstract There are >170 naturally occurring RNA chemical modifications, with both known and unknown biological functions. Analytical methods for detecting chemical modifications and for analyzing their effects are relatively limited and have had difficulty keeping pace with the demand for RNA chemical biology and biochemistry research. Some modifications can affect the ability of RNA to hybridize with its complementary sequence or change the selectivity of base pairing. Here, we investigate the use of affinity-based DNA nanoswitches to resolve energetic differences in hybridization. We found that a single m3C modification can sufficiently destabilize hybridization to abolish a detection signal, while an s4U modification can selectively hybridize with G over A. These results establish proof of concept for using DNA nanoswitches to detect certain RNA modifications and analyzing their effects in base pairing stability and specificity.
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