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研究新型人源增强子阻断染色质绝缘子在造血干细胞基因治疗中的屏障活性。

Investigating the Barrier Activity of Novel, Human Enhancer-Blocking Chromatin Insulators for Hematopoietic Stem Cell Gene Therapy.

机构信息

Hematopoietic Cell Transplantation Unit, Hematology Department, Gene and Cell Therapy Center, "George Papanikolaou" Hospital, Thessaloniki, Greece.

Department of Genetics, Development and Molecular Biology, School of Biology, Aristotle University of Thessaloniki, Thessaloniki, Greece.

出版信息

Hum Gene Ther. 2021 Oct;32(19-20):1186-1199. doi: 10.1089/hum.2021.142.

Abstract

Despite the unequivocal success of hematopoietic stem and progenitor cell gene therapy, limitations still exist including genotoxicity and variegation/silencing of transgene expression. A class of DNA regulatory elements known as chromatin insulators (CIs) can mitigate both vector transcriptional silencing (barrier CIs) and vector-induced genotoxicity (enhancer-blocking CIs) and have been proposed as genetic modulators to minimize unwanted vector/genome interactions. Recently, a number of human, small-sized, and compact CIs bearing strong enhancer-blocking activity were identified. To ultimately uncover an ideal CI with a dual, enhancer-blocking and barrier activity, we interrogated these elements and . After initial screening of a series of these enhancer-blocking insulators for potential barrier activity, we identified three distinct categories with no, partial, or full protection against transgene silencing. Subsequently, the two CIs with full barrier activity (B4 and C1) were tested for their ability to protect against position effects in primary cells, after incorporation into lentiviral vectors (LVs) and transduction of human CD34 cells. B4 and C1 did not adversely affect vector titers due to their small size, while they performed as strong barrier insulators in CD34 cells, both and , shielding transgene's long-term expression, more robustly when placed in the forward orientation. Overall, the incorporation of these dual-functioning elements into therapeutic viral vectors will potentially provide a new generation of safer and more efficient LVs for all hematopoietic stem cell gene therapy applications.

摘要

尽管造血干细胞和祖细胞基因治疗取得了明确的成功,但仍存在一些限制,包括基因毒性和转基因表达的不均一性/沉默。一类称为染色质绝缘子(CIs)的 DNA 调节元件可以减轻载体转录沉默(屏障 CIs)和载体诱导的基因毒性(增强子阻断 CIs),并被提议作为遗传调节剂,以最小化不必要的载体/基因组相互作用。最近,已经鉴定出一些具有强大增强子阻断活性的人类、小型和紧凑的 CIs。为了最终发现一种具有双重增强子阻断和屏障活性的理想 CI,我们研究了这些元件和。在对一系列具有潜在屏障活性的增强子阻断绝缘子进行初步筛选后,我们确定了三个不同的类别,它们对转基因沉默没有、部分或完全保护。随后,对具有完全屏障活性的两个 CI(B4 和 C1)进行了测试,以评估它们在整合到慢病毒载体(LVs)并转导人 CD34 细胞后,防止转基因沉默的位置效应的能力。B4 和 C1 由于其体积小,不会因小尺寸而影响载体滴度,而它们在 CD34 细胞中表现出强大的屏障绝缘子作用,无论是正向还是反向插入,都能更有效地屏蔽转基因的长期表达。总之,将这些双功能元件整合到治疗性病毒载体中,可能为所有造血干细胞基因治疗应用提供新一代更安全、更有效的 LVs。

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本文引用的文献

1
Mechanism of REST/NRSF regulation of clustered protocadherin α genes.
Nucleic Acids Res. 2021 May 7;49(8):4506-4521. doi: 10.1093/nar/gkab248.
4
CTCF-mediated genome organization and leukemogenesis.
Leukemia. 2020 Sep;34(9):2295-2304. doi: 10.1038/s41375-020-0906-x. Epub 2020 Jun 9.
6
Chromatin interaction analyses elucidate the roles of PRC2-bound silencers in mouse development.
Nat Genet. 2020 Mar;52(3):264-272. doi: 10.1038/s41588-020-0581-x. Epub 2020 Feb 24.
7
Characterization of the cHS4 insulator in mouse embryonic stem cells.
FEBS Open Bio. 2020 Apr;10(4):644-656. doi: 10.1002/2211-5463.12818. Epub 2020 Mar 19.
8
DNA loop extrusion by human cohesin.
Science. 2019 Dec 13;366(6471):1338-1345. doi: 10.1126/science.aaz3418. Epub 2019 Nov 21.
9
Principles of genome folding into topologically associating domains.
Sci Adv. 2019 Apr 10;5(4):eaaw1668. doi: 10.1126/sciadv.aaw1668. eCollection 2019 Apr.

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