Pomplun Sebastian, Gates Zachary P, Zhang Genwei, Quartararo Anthony J, Pentelute Bradley L
Department of Chemistry, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, United States.
The Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, 500 Main Street, Cambridge, Massachusetts 02142, United States.
J Am Chem Soc. 2020 Nov 18;142(46):19642-19651. doi: 10.1021/jacs.0c08964. Epub 2020 Nov 9.
Nature has three biopolymers: oligonucleotides, polypeptides, and oligosaccharides. Each biopolymer has independent functions, but when needed, they form mixed assemblies for higher-order purposes, as in the case of ribosomal protein synthesis. Rather than forming large complexes to coordinate the role of different biopolymers, we dovetail protein amino acids and nucleobases into a single low molecular weight precision polyamide polymer. We established efficient chemical synthesis and de novo sequencing procedures and prepared combinatorial libraries with up to 100 million biohybrid molecules. This biohybrid material has a higher bulk affinity to oligonucleotides than peptides composed exclusively of canonical amino acids. Using affinity selection mass spectrometry, we discovered variants with a high affinity for pre-microRNA hairpins. Our platform points toward the development of high throughput discovery of sequence defined polymers with designer properties, such as oligonucleotide binding.
寡核苷酸、多肽和寡糖。每种生物聚合物都有独立的功能,但在需要时,它们会形成混合组装体以实现更高层次的目的,如核糖体蛋白质合成的情况。我们不是形成大型复合物来协调不同生物聚合物的作用,而是将蛋白质氨基酸和核碱基嵌入到一种单一的低分子量精密聚酰胺聚合物中。我们建立了高效的化学合成和从头测序程序,并制备了包含多达1亿个生物杂交分子的组合文库。这种生物杂交材料对寡核苷酸的整体亲和力高于仅由标准氨基酸组成的肽。通过亲和选择质谱法,我们发现了对前体微小RNA发夹具有高亲和力的变体。我们的平台指向开发具有设计特性(如寡核苷酸结合)的序列定义聚合物的高通量发现。