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1.
Nat Commun ; 15(1): 6244, 2024 Jul 30.
Artigo em Inglês | MEDLINE | ID: mdl-39080253

RESUMO

Recent discoveries in biology have highlighted the importance of protein and RNA-based condensates as an alternative to classical membrane-bound organelles. Here, we demonstrate the design of pure RNA condensates from nanostructured, star-shaped RNA motifs. We generate condensates using two different RNA nanostar architectures: multi-stranded nanostars whose binding interactions are programmed via linear overhangs, and single-stranded nanostars whose interactions are programmed via kissing loops. Through systematic sequence design, we demonstrate that both architectures can produce orthogonal (distinct and immiscible) condensates, which can be individually tracked via fluorogenic aptamers. We also show that aptamers make it possible to recruit peptides and proteins to the condensates with high specificity. Successful co-transcriptional formation of condensates from single-stranded nanostars suggests that they may be genetically encoded and produced in living cells. We provide a library of orthogonal RNA condensates that can be modularly customized and offer a route toward creating systems of functional artificial organelles for the task of compartmentalizing molecules and biochemical reactions.


Assuntos
Aptâmeros de Nucleotídeos , Motivos de Nucleotídeos , RNA , RNA/química , RNA/metabolismo , RNA/genética , Aptâmeros de Nucleotídeos/química , Aptâmeros de Nucleotídeos/metabolismo , Aptâmeros de Nucleotídeos/genética , Nanoestruturas/química , Condensados Biomoleculares/metabolismo , Condensados Biomoleculares/química , Conformação de Ácido Nucleico , Organelas/metabolismo
2.
ACS Synth Biol ; 13(3): 963-968, 2024 03 15.
Artigo em Inglês | MEDLINE | ID: mdl-38437525

RESUMO

Gene synthesis efficiency has greatly improved in recent years but is limited when it comes to repetitive sequences, which results in synthesis failure or delays by DNA synthesis vendors. This represents a major obstacle for the development of synthetic biology since repetitive elements are increasingly being used in the design of genetic circuits and design of biomolecular nanostructures. Here, we describe a method for the assembly of small synthetic genes with repetitive elements: First, a gene of interest is split in silico into small synthons of up to 80 base pairs flanked by Golden-Gate-compatible overhangs. Then, synthons are made by oligo extension and finally assembled into a synthetic gene by Golden Gate Assembly. We demonstrate the method by constructing eight challenging genes with repetitive elements, e.g., multiple repeats of RNA aptamers and RNA origami scaffolds with multiple identical aptamers. The genes range in size from 133 to 456 base pairs and are assembled with fidelities of up to 87.5%. The method was developed to facilitate our own specific research but may be of general use for constructing challenging and repetitive genes and, thus, a valuable addition to the molecular cloning toolbox.


Assuntos
Genes Sintéticos , Nanoestruturas , Sequências Repetitivas de Ácido Nucleico/genética , Clonagem Molecular , RNA/química , Nanoestruturas/química , Biologia Sintética/métodos
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