Biotechnology Bulletin ›› 2025, Vol. 41 ›› Issue (3): 71-82.doi: 10.13560/j.cnki.biotech.bull.1985.2024-0750
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QIN Yu-ting(
), PAN Sen-tao, CHEN Yu-ping(
)
Received:2024-08-05
Online:2025-03-26
Published:2025-03-20
Contact:
CHEN Yu-ping
E-mail:1473195274@qq.com;yupingc@usc.edu.cn
QIN Yu-ting, PAN Sen-tao, CHEN Yu-ping. Design and Application of Guide RNAs for Non-coding RNAs[J]. Biotechnology Bulletin, 2025, 41(3): 71-82.
| 工具 Tool | 输入 Input | 网址 Web site |
|---|---|---|
| CHOPCHOP | DNA 序列; 基因名称;基因组位置 | https://chopchop.cbu.uib.no |
| CRISPRDB | 基因名称 | https://crisprdb.org |
| CRISPRscan | DNA 序列 | https://www.crisprscan.org |
| Synthego | 基因名称 | https://design.synthego.com |
| EuPaGDT | DNA序列 | http://grna.ctegd.uga.edu |
| gRNA- seqret | DNA 序列; 基因名称 | https://grna.jgi.doe.gov |
| CRISPOR | DNA 序列;种属;PAM | http://crispor.tefor.net/ |
| DeepCas13 | sgRNA;目标RNA的DNA序列 | http://deepcas13.weililab.org/ |
Table 1 Web-based CRISPR gRNA design tools
| 工具 Tool | 输入 Input | 网址 Web site |
|---|---|---|
| CHOPCHOP | DNA 序列; 基因名称;基因组位置 | https://chopchop.cbu.uib.no |
| CRISPRDB | 基因名称 | https://crisprdb.org |
| CRISPRscan | DNA 序列 | https://www.crisprscan.org |
| Synthego | 基因名称 | https://design.synthego.com |
| EuPaGDT | DNA序列 | http://grna.ctegd.uga.edu |
| gRNA- seqret | DNA 序列; 基因名称 | https://grna.jgi.doe.gov |
| CRISPOR | DNA 序列;种属;PAM | http://crispor.tefor.net/ |
| DeepCas13 | sgRNA;目标RNA的DNA序列 | http://deepcas13.weililab.org/ |
Fig. 2 ncRNA production mechanism and gRNA site selection for Cas9/Cas13Alu: Alu transposable element; RBP: RNA-binding protein; 5'SD: 5' splice donor; 3'SA: 3' splice acceptor; TSS: transcription start site; BSJ: back splice junction; BP: branch point; 3'SS: 3' splice site
CRISPR类型 CRISPR type | 靶标类型 Target | gRNA设计相同点 Similarity in gRNA design | gRNA设计不同点 Difference in gRNA design |
|---|---|---|---|
| Cas9 | miRNA基因 | 1. 有PAM要求 | Drosha、Dicer加工位点及种子序列所对应的基因序列 |
| circRNA基因 | 2. 种子序列区无错配 | 靶向环状外显子或基因座两侧的内含子互补序列 | |
| lncRNA基因 | 3. 间隔序列GC含量高于50% | pgRNA;靶向剪接位点;BESST策略 | |
| Cas13 | miRNA | 1. 部分有PFS要求 | pri/pre-miRNA上的Drosha、Dicer加工位点及种子序列 |
| circRNA | 2. gRNA长度为23-30 bp较佳 | circRNA的BSJ位点 | |
| lncRNA | 3. 间隔序列GC含量高于50% | gRNA集合;靶向RNA单链区 |
Table 2 Summary of the similarities and differences in gRNA design for different types of ncRNAs
CRISPR类型 CRISPR type | 靶标类型 Target | gRNA设计相同点 Similarity in gRNA design | gRNA设计不同点 Difference in gRNA design |
|---|---|---|---|
| Cas9 | miRNA基因 | 1. 有PAM要求 | Drosha、Dicer加工位点及种子序列所对应的基因序列 |
| circRNA基因 | 2. 种子序列区无错配 | 靶向环状外显子或基因座两侧的内含子互补序列 | |
| lncRNA基因 | 3. 间隔序列GC含量高于50% | pgRNA;靶向剪接位点;BESST策略 | |
| Cas13 | miRNA | 1. 部分有PFS要求 | pri/pre-miRNA上的Drosha、Dicer加工位点及种子序列 |
| circRNA | 2. gRNA长度为23-30 bp较佳 | circRNA的BSJ位点 | |
| lncRNA | 3. 间隔序列GC含量高于50% | gRNA集合;靶向RNA单链区 |
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