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周期性拉伸增强中性粒细胞胞外诱捕网的形成。

Cyclic stretch enhances neutrophil extracellular trap formation.

机构信息

School of Health and Biomedical Sciences, RMIT University, Melbourne, VIC, Australia.

Baker Heart and Diabetes Institute, Melbourne, VIC, Australia.

出版信息

BMC Biol. 2024 Sep 18;22(1):209. doi: 10.1186/s12915-024-02009-6.

Abstract

BACKGROUND

Neutrophils, the most abundant leukocytes circulating in blood, contribute to host defense and play a significant role in chronic inflammatory disorders. They can release their DNA in the form of extracellular traps (NETs), which serve as scaffolds for capturing bacteria and various blood cells. However, uncontrolled formation of NETs (NETosis) can lead to excessive activation of coagulation pathways and thrombosis. Once neutrophils are migrated to infected or injured tissues, they become exposed to mechanical forces from their surrounding environment. However, the impact of transient changes in tissue mechanics due to the natural process of aging, infection, tissue injury, and cancer on neutrophils remains unknown. To address this gap, we explored the interactive effects of changes in substrate stiffness and cyclic stretch on NETosis. Primary neutrophils were cultured on a silicon-based substrate with stiffness levels of 30 and 300 kPa for at least 3 h under static conditions or cyclic stretch levels of 5% and 10%, mirroring the biomechanics of aged and young arteries.

RESULTS

Using this approach, we found that neutrophils are sensitive to cyclic stretch and that increases in stretch intensity and substrate stiffness enhance nuclei decondensation and histone H3 citrullination (CitH3). In addition, stretch intensity and substrate stiffness promote the response of neutrophils to the NET-inducing agents phorbol 12-myristate 13-acetate (PMA), adenosine triphosphate (ATP), and lipopolysaccharides (LPS). Stretch-induced activation of neutrophils was dependent on calpain activity, the phosphatidylinositol 3-kinase (PI3K)/focal adhesion kinase (FAK) signalling and actin polymerization.

CONCLUSIONS

In summary, these results demonstrate that the mechanical forces originating from the surrounding tissue influence NETosis, an important neutrophil function, and thus identify a potential novel therapeutic target.

摘要

背景

中性粒细胞是循环血液中最丰富的白细胞,它们有助于宿主防御,并在慢性炎症性疾病中发挥重要作用。它们可以以细胞外陷阱(NETs)的形式释放其 DNA,这些 NETs 充当捕获细菌和各种血细胞的支架。然而,NETs 的不受控制形成(NETosis)会导致凝血途径的过度激活和血栓形成。一旦中性粒细胞迁移到感染或受伤的组织中,它们就会受到周围环境的机械力的影响。然而,由于衰老、感染、组织损伤和癌症等自然过程导致的组织力学的短暂变化对中性粒细胞的影响尚不清楚。为了解决这一差距,我们探讨了基质硬度和循环拉伸的变化对 NETosis 的相互影响。将原代中性粒细胞培养在具有 30 和 300 kPa 硬度水平的硅基基质上,在静态条件下或循环拉伸水平为 5%和 10%下培养至少 3 小时,模拟了老年和年轻动脉的生物力学。

结果

使用这种方法,我们发现中性粒细胞对循环拉伸敏感,并且拉伸强度和基质硬度的增加增强了核去凝聚和组蛋白 H3 瓜氨酸化(CitH3)。此外,拉伸强度和基质硬度促进了中性粒细胞对 NET 诱导剂佛波醇 12-肉豆蔻酸 13-乙酸酯(PMA)、三磷酸腺苷(ATP)和脂多糖(LPS)的反应。拉伸诱导的中性粒细胞激活依赖于钙蛋白酶活性、磷酸肌醇 3-激酶(PI3K)/黏着斑激酶(FAK)信号和肌动蛋白聚合。

结论

总之,这些结果表明,源自周围组织的机械力会影响 NETosis,这是中性粒细胞的一个重要功能,从而确定了一个潜在的新的治疗靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/52a1/11409804/60702af519b3/12915_2024_2009_Fig1_HTML.jpg

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