基因编辑权威指南。
菜单
首页 学习 新闻 向 Atlas 提问
探索 技术 疾病 治疗方法 临床试验 企业 科学家 基因 研究 机构
医学之外 农业 伦理 投资 世界地图
学习与工具 从这里开始 术语表 A–Z 对比技术 时间线 列表与排名 AI 智能体 ★ 已保存 API
关于 关于我们 方法论 数据来源 编辑方针 联系我们 免责声明

🧭 引导视图
遗传学新手?浏览时我们会用简单易懂的语言为您解释每个术语,就在同一页面内,帮助随时可用。

⚡ 专家观点
你已经了解生物学基础,只需内容本身——简洁明了,无额外解释。这是默认视图。

界面语言
浅色模式

Advanced

Multiplex editing

Making several edits in the same cell at once — necessary for cell therapy, and riskier than making one.

简短解答

Some jobs need more than one change. An off-the-shelf cell therapy needs the donor cell's own receptor removed so it does not attack the patient, and its identity markers removed so the patient does not destroy it, and often a brake taken off so it keeps working. That is three or more edits in one cell — and every extra cut is an extra chance for two breaks to be joined to each other by mistake.

Multiplex editing introduces several simultaneous modifications, essential for allogeneic cell products requiring TRAC, B2M and often CIITA or PDCD1 disruption. The dominant risk is translocation between concurrent double-strand breaks, which scales with the number of cuts. Sequential editing, base editors (which do not create double-strand breaks) and Cas12a's self-processing guide arrays are all used to mitigate it.

Why base editing helps here

Base editors can disrupt a gene by installing a stop codon or destroying a splice site, without ever cutting both strands. With no free DNA ends there is nothing to join wrongly, so translocation risk essentially disappears. That is a substantial argument for base editing in multiplexed cell therapy, independent of any argument about precision.

Sources

Connected in the Atlas

Every entry on this site is linked to the others it relates to. These connections are part of the record, not a search result.

Genes

TRAC