重编程
生物
诱导多能干细胞
计算生物学
再生医学
基因组
基因组编辑
细胞分化
基因组不稳定性
表观遗传学
后生
人类基因组
精密医学
人类遗传学
基因组学
模式生物
机制(生物学)
干细胞
表型
遗传学
生物信息学
细胞疗法
个性化医疗
神经科学
细胞
转录组
全基因组测序
体细胞
抑制器
结构变异
作者
Min Li,Feixue Cui,Tao Na,Qiang Ma,Meichen Guo,Menghe Guo,Kehua Zhang,Shufang Meng
摘要
Human pluripotent stem cells (hPSCs) are a promising source for regenerative medicine due to their self-renewal and differentiation capacities. However, genetic instability acquired during reprogramming and in vitro culture presents major safety challenges for clinical translation. Recurrent mutations, especially structural variants (SVs), are of particular concern as they can impair differentiation and increase tumorigenic risk. In this review, we establish and systematically explore a central causal axis: SVs-three dimensional (3D) genome disruption-safety of hPSC-based therapy. We propose that SVs critically compromise therapeutic safety by perturbing the 3D architecture of the genome, leading to pathogenic rewiring of enhancer-promoter interactions. This rewiring, exemplified by "enhancer hijacking" and "enhancer loss," can aberrantly activate oncogenes or silence tumor suppressors even in the absence of copy number variations. Thus, 3D genome disruption provides a key mechanistic explanation for SV-driven tumorigenic potential and impaired differentiation fidelity in hPSCs. By highlighting this causal axis, our review not only advances the mechanistic understanding of SV-associated risks but also provides actionable insights for the development of more rigorous quality standards for hPSC-based cell therapy products.
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