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缺氧诱导型慢病毒基因在工程化人类巨噬细胞中的表达

英文原题:Hypoxia-inducible lentiviral gene expression in engineered human macrophages.

PubMed 2022/06/01(内容时间) J Immunother Cancer Q1 · IF 11.7(JCR 2025)

研究概要

工程化改造以表达缺氧调控有效载荷的巨噬细胞,具有全身给药并在缺氧条件组织中条件性表达蛋白的潜力。与在缺氧条件下功能或存活不佳的免疫细胞不同,巨噬细胞维持促炎表型,当由条件性缺氧响应元件调控时,这可能支持持续的基因和蛋白表达,并天然迁移至缺氧微环境,使其成为将治疗性有效载荷递送至缺氧组织(如实体瘤)的理想载体。凭借响应内源性微环境精细调控强效蛋白递送的能力,基于巨噬细胞的细胞疗法因此可针对不同疾病背景进行设计。

研究思路结论见上方概要

人类免疫细胞,包括单核细胞衍生的巨噬细胞,可以被工程化改造以递送促炎细胞因子、双特异性抗体和嵌合抗原受体,从而在不同疾病环境中支持免疫反应。当基因表达由组成型活性启动子调控时,慢病毒载荷基因的表达不受调控,可能导致具有潜在毒性的蛋白质量。对慢病毒编码蛋白的调控性递送可能允许局部或条件性治疗性蛋白表达,从而支持以降低全身毒性风险的方式安全递送过继转移的基因修饰细胞。

在本研究中,我们对人类巨噬细胞进行了工程化改造,使其表达由慢病毒启动子区域中缺氧反应元件调控的基因,从而仅在缺氧条件下驱动慢病毒基因的条件性表达。我们检测了在缺氧条件下培养的转导巨噬细胞中报告基因和分泌型细胞因子白细胞介素-12的瞬时诱导表达。在转录和翻译水平上,以及在切片培养系统中存在人类肿瘤细胞的情况下,研究了缺氧调控基因的表达。最后,在皮下人源化小鼠癌症模型中评估了缺氧调控的基因表达。

工程化巨噬细胞被证明可在体外缺氧条件下条件性、短暂地表达慢病毒编码的基因蛋白产物,包括 IL-12。恢复常氧条件后,慢病毒载荷表达恢复至基础水平。在存在人结直肠癌细胞的情况下以及在胶质母细胞瘤缺氧异种移植模型中,受缺氧反应元件控制的报告基因在缺氧条件下上调,提示其可用于能够实现肿瘤局部基因递送的全身性工程化细胞递送。

展开英文摘要原文

BACKGROUND: Human immune cells, including monocyte-derived macrophages, can be engineered to deliver proinflammatory cytokines, bispecific antibodies, and chimeric antigen receptors to support immune responses in different disease settings. When gene expression is regulated by constitutively active promoters, lentiviral payload gene expression is unregulated, and can result in potentially toxic quantities of proteins. Regulated delivery of lentivirally encoded proteins may allow localized or conditional therapeutic protein expression to support safe delivery of adoptively transferred, genetically modified cells with reduced capacity for systemic toxicities. METHODS: In this study, we engineered human macrophages to express genes regulated by hypoxia responsive elements included in the lentiviral promoter region to drive conditional lentiviral gene expression only under hypoxic conditions. We tested transduced macrophages cultured in hypoxic conditions for the transient induced expression of reporter genes and the secreted cytokine, interleukin-12. Expression of hypoxia-regulated genes was investigated both transcriptionally and translationally, and in the presence of human tumor cells in a slice culture system. Finally, hypoxia-regulated gene expression was evaluated in a subcutaneous humanized-mouse cancer model. RESULTS: Engineered macrophages were shown to conditionally and tranisently express lentivirally encoded gene protein products, including IL-12 in hypoxic conditions in vitro. On return to normoxic conditions, lentiviral payload expression returned to basal levels. Reporter genes under the control of hypoxia response elements were upregulated under hypoxic conditions in the presence of human colorectal carcinoma cells and in the hypoxic xenograft model of glioblastoma, suggesting utility for systemic engineered cell delivery capable of localized gene delivery in cancer. CONCLUSIONS: Macrophages engineered to express hypoxia-regulated payloads have the potential to be administered systemically and conditionally express proteins in tissues with hypoxic conditions. In contrast to immune cells that function or survive poorly in hypoxic conditions, macrophages maintain a proinflammatory phenotype that may support continued gene and protein expression when regulated by conditional hypoxia responsive elements and naturally traffic to hypoxic microenvironments, making them ideal vehicles for therapeutic payloads to hypoxic tissues, such as solid tumors. With the ability to fine-tune delivery of potent proteins in response to endogenous microenvironments, macrophage-based cellular therapies may therefore be designed for different disease settings.

论文信息

作者
Chinn HK、Gardell JL、Matsumoto LR、Labadie KP、Mihailovic TN、Lieberman NAP、Davis A、Pillarisetty VG
第一作者单位
Ben Towne Center for Childhood Cancer Research, Seattle Children's Research Institute, Seattle, Washington, USA.United States
通讯作者单位
Mozart Therapeutics, Seattle, Washington, USA ccrane@mozart-tx.com.United States
文献类型
非美国政府资助研究
期刊
Journal for immunotherapy of cancer2022 Jun
原文标识
PubMed 35728871 · DOI 10.1136/jitc-2021-003770