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From APOBEC to ZAP: Diverse mechanisms used by cellular restriction factors to inhibit virus infections.从 APOBEC 到 ZAP:细胞限制因子抑制病毒感染的多种机制。
Biochim Biophys Acta Mol Cell Res. 2019 Mar;1866(3):382-394. doi: 10.1016/j.bbamcr.2018.09.012. Epub 2018 Oct 2.
2
Targeting Macrophages as a Potential Therapeutic Intervention: Impact on Inflammatory Diseases and Cancer.靶向巨噬细胞作为一种潜在的治疗干预手段:对炎症性疾病和癌症的影响。
Int J Mol Sci. 2018 Jul 4;19(7):1953. doi: 10.3390/ijms19071953.
3
Transfecting Macrophages.转染巨噬细胞。
Methods Mol Biol. 2018;1784:187-195. doi: 10.1007/978-1-4939-7837-3_18.
4
Macrophage Polarization in Chronic Inflammatory Diseases: Killers or Builders?慢性炎症性疾病中的巨噬细胞极化:杀手还是建设者?
J Immunol Res. 2018 Jan 14;2018:8917804. doi: 10.1155/2018/8917804. eCollection 2018.
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Macrophage plasticity, polarization, and function in health and disease.巨噬细胞的可塑性、极化及其在健康与疾病中的功能。
J Cell Physiol. 2018 Sep;233(9):6425-6440. doi: 10.1002/jcp.26429. Epub 2018 Mar 1.
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Pivotal regulators of tissue homeostasis and cancer: macrophages.组织稳态和癌症的关键调节因子:巨噬细胞。
Exp Hematol Oncol. 2017 Aug 8;6:23. doi: 10.1186/s40164-017-0083-4. eCollection 2017.
7
HIV Infection of Macrophages: Implications for Pathogenesis and Cure.巨噬细胞的HIV感染:对发病机制和治愈的影响。
Pathog Immun. 2017;2(2):179-192. doi: 10.20411/pai.v2i2.204. Epub 2017 May 24.
8
Systematic Metrics Depicting Cell Death Kinetics.系统计量描绘细胞死亡动力学。
Cell Chem Biol. 2017 Jul 20;24(7):785-786. doi: 10.1016/j.chembiol.2017.07.006.
9
Macrophages in Progressive Human Immunodeficiency Virus/Simian Immunodeficiency Virus Infections.人类免疫缺陷病毒/猴免疫缺陷病毒进行性感染中的巨噬细胞
J Virol. 2016 Aug 12;90(17):7596-606. doi: 10.1128/JVI.00672-16. Print 2016 Sep 1.
10
Macrophages in Tissue Repair, Regeneration, and Fibrosis.组织修复、再生和纤维化中的巨噬细胞
Immunity. 2016 Mar 15;44(3):450-462. doi: 10.1016/j.immuni.2016.02.015.

用小干扰RNA(siRNA)转染难以转染的原代人巨噬细胞以逆转白藜芦醇诱导的细胞凋亡。

Transfection of hard-to-transfect primary human macrophages with siRNA to reverse Resveratrol-induced apoptosis.

作者信息

Dong Simon Xin Min, Caballero Ramon, Ali Hamza, Roy David Lawson Francis, Cassol Edana, Kumar Ashok

机构信息

Apoptosis Research Center of Children's Hospital of Eastern Ontario, Department of Microbiology and Immunology, University of Ottawa , Ottawa, Canada.

Department of Health Sciences, Carleton University , Ottawa, ON, Canada.

出版信息

RNA Biol. 2020 Jun;17(6):755-764. doi: 10.1080/15476286.2020.1730081. Epub 2020 Feb 20.

DOI:10.1080/15476286.2020.1730081
PMID:32050839
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7577235/
Abstract

Small interfering RNA (siRNA) is a critical loss-of-function tool for elucidating the role of genes in biomedical studies. The effective use of siRNA needs transfection technology that delivers siRNA into the correct location of target cells, especially those which are extremely difficult to transfect. Macrophages, which play an important role in the pathogenesis of many diseases, are known to be extremely hard to transfect. Thus, to elucidate the functions of genes in human macrophage biology, it is essential to devise technology for efficient siRNA transfection. However, a fast and efficient method for siRNA transfection in primary human macrophages has not been reported. The siRNA transfection is a tug-of-war between transfection rate and cytotoxicity. A higher transfection rate is generally accompanied with increased cytotoxicity, therefore, choosing a transfection reagent that limits cell death while maintain a desirable transfection rate is important. In this study, we employed auto-analysis function of the IncuCyte® to devise a fast and cost-saving technology for efficient transfection of adherent cells and particularly human macrophages. We show that DharmaFECT3 transfection reagent from Dharmacon was the most efficient in transfecting primary human monocyte-derived macrophages and PMA-differentiated U937 cells, whereas other transfection reagents tested were cytotoxic. This method exhibited approximately 85% transfection efficiency in human macrophages. Moreover, siRNA silencing of with this technique effectively protected primary human macrophages and PMA-differentiated U937 cells against Resveratrol-induced cell death. In addition, this method inherently takes the balance between transfection rate and cytotoxicity of siRNA transfection reagents into consideration.

摘要

小干扰RNA(siRNA)是生物医学研究中用于阐明基因功能的关键功能丧失工具。有效使用siRNA需要转染技术将siRNA递送至靶细胞的正确位置,尤其是那些极难转染的细胞。巨噬细胞在许多疾病的发病机制中起重要作用,已知其极难转染。因此,为了阐明基因在人类巨噬细胞生物学中的功能,设计高效的siRNA转染技术至关重要。然而,尚未报道在原代人巨噬细胞中进行siRNA转染的快速有效方法。siRNA转染是转染率和细胞毒性之间的一场较量。较高的转染率通常伴随着细胞毒性的增加,因此,选择一种在保持理想转染率的同时限制细胞死亡的转染试剂很重要。在本研究中,我们利用IncuCyte®的自动分析功能设计了一种快速且节省成本的技术,用于高效转染贴壁细胞,尤其是人巨噬细胞。我们发现,Dharmacon公司的DharmaFECT3转染试剂在转染原代人单核细胞衍生的巨噬细胞和佛波酯(PMA)分化的U937细胞方面效率最高,而测试的其他转染试剂具有细胞毒性。该方法在人巨噬细胞中的转染效率约为85%。此外,用该技术对[此处原文缺失具体基因名称]进行siRNA沉默可有效保护原代人巨噬细胞和PMA分化的U937细胞免受白藜芦醇诱导的细胞死亡。此外,该方法内在地考虑了siRNA转染试剂的转染率和细胞毒性之间的平衡。