A precise and efficient circular RNA synthesis system based on a ribozyme derived from Tetrahymena thermophila

Author:

Cui Jingyi123,Zhang Lanxin3,Zhang Zaifeng12,Luo Xuanmei1,Liu Ye1,Li Chang1ORCID,Huang Wei1,Zou Lihui1,Yu Xue4,Xiao Fei123ORCID

Affiliation:

1. The Key Laboratory of Geriatrics, Beijing Institute of Geriatrics, Institute of Geriatric Medicine, Chinese Academy of Medical Sciences, Beijing Hospital/National Center of Gerontology of National Health Commission , PR China

2. Graduate School of Peking Union Medical College , Beijing 100730, PR China

3. Clinical Biobank, Beijing Hospital, National Center of Gerontology, Institute of Geriatric Medicine, Chinese Academy of Medical Sciences , PR China

4. Department of Cardiology, Beijing Hospital, National Center of Gerontology, Institute of Geriatric Medicine, Chinese Academy of Medical Sciences , PR China

Abstract

Abstract Classic strategies for circular RNA (circRNA) preparation always introduce large numbers of linear transcripts or extra nucleotides to the circularized product. In this study, we aimed to develop an efficient system for circRNA preparation based on a self-splicing ribozyme derived from an optimized Tetrahymena thermophila group Ⅰ intron. The target RNA sequence was inserted downstream of the ribozyme and a complementary antisense region was added upstream of the ribozyme to assist cyclization. Then, we compared the circularization efficiency of ribozyme or flanking intronic complementary sequence (ICS)-mediated methods through the DNMT1, CDR1as, FOXO3, and HIPK3 genes and found that the efficiency of our system was remarkably higher than that of flanking ICS-mediated method. Consequently, the circularized products mediated by ribozyme are not introduced with additional nucleotides. Meanwhile, the overexpressed circFOXO3 maintained its biological functions in regulating cell proliferation, migration, and apoptosis. Finally, a ribozyme-based circular mRNA expression system was demonstrated with a split green fluorescent protein (GFP) using an optimized Coxsackievirus B3 (CVB3) internal ribosome entry site (IRES) sequence, and this system achieved successful translation of circularized mRNA. Therefore, this novel, convenient, and rapid engineering RNA circularization system can be applied for the functional study and large-scale preparation of circular RNA in the future.

Funder

National High Level Hospital Clinical Research Funding

CAMS Innovation Fund for Medical Sciences

National Natural Science Foundation of China

National Key Research and Development Program of China

Beijing Hospital

Publisher

Oxford University Press (OUP)

Subject

Genetics

Reference39 articles.

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