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本文引用的文献

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Identifying selective inhibitors against the human cytosolic sialidase NEU2 by substrate specificity studies.通过底物特异性研究鉴定针对人胞质唾液酸酶NEU2的选择性抑制剂。
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TLR4-mediated sensing of Campylobacter jejuni by dendritic cells is determined by sialylation.树突状细胞通过 TLR4 对空肠弯曲杆菌的感应由唾液酸化决定。
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Decoration of T-independent antigen with ligands for CD22 and Siglec-G can suppress immunity and induce B cell tolerance in vivo.用 CD22 和 Siglec-G 的配体对 T 细胞非依赖抗原进行修饰可以抑制体内的免疫反应并诱导 B 细胞耐受。
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Trends Immunol. 2009 Dec;30(12):557-61. doi: 10.1016/j.it.2009.09.006. Epub 2009 Sep 26.
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Burden of disease caused by Streptococcus pneumoniae in children younger than 5 years: global estimates.5岁以下儿童肺炎链球菌所致疾病负担:全球估计数
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CD24 and Siglec-10 selectively repress tissue damage-induced immune responses.CD24和唾液酸结合免疫球蛋白样凝集素-10选择性抑制组织损伤诱导的免疫反应。
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Neuraminidase alters red blood cells in sepsis.神经氨酸酶在脓毒症中会改变红细胞。
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Molecular mimicry of host sialylated glycans allows a bacterial pathogen to engage neutrophil Siglec-9 and dampen the innate immune response.宿主唾液酸化聚糖的分子模拟使一种细菌病原体能够与中性粒细胞Siglec-9结合并抑制先天免疫反应。
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通过抑制唾液酸酶介导的 CD24-SiglecG 相互作用破坏来改善脓毒症。

Amelioration of sepsis by inhibiting sialidase-mediated disruption of the CD24-SiglecG interaction.

机构信息

Division of Immunotherapy, Department of Surgery, University of Michigan, Ann Arbor, Michigan, USA.

出版信息

Nat Biotechnol. 2011 May;29(5):428-35. doi: 10.1038/nbt.1846. Epub 2011 Apr 10.

DOI:10.1038/nbt.1846
PMID:21478876
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4090080/
Abstract

Suppression of inflammation is critical for effective therapy of many infectious diseases. However, the high rates of mortality caused by sepsis attest to the need to better understand the basis of the inflammatory sequelae of sepsis and to develop new options for its treatment. In mice, inflammatory responses to host danger-associated molecular patterns (DAMPs), but not to microbial pathogen-associated molecular patterns (PAMPs), are repressed by the interaction [corrected] of CD24 and SiglecG (SIGLEC10 in human). Here we use an intestinal perforation model of sepsis to show that microbial sialidases target the sialic acid-based recognition of CD24 by SiglecG/10 to exacerbate inflammation. Sialidase inhibitors protect mice against sepsis by a mechanism involving both CD24 and Siglecg, whereas mutation of either gene exacerbates sepsis. Analysis of sialidase-deficient bacterial mutants confirms the key contribution of disrupting sialic acid-based pattern recognition to microbial virulence and supports the clinical potential of sialidase inhibition for dampening inflammation caused by infection.

摘要

抑制炎症对于许多传染病的有效治疗至关重要。然而,败血症导致的高死亡率证明,我们需要更好地了解败血症炎症后遗症的基础,并开发新的治疗方法。在小鼠中,宿主危险相关分子模式(DAMPs)的炎症反应,但不是微生物病原体相关分子模式(PAMPs)的炎症反应,受到 CD24 和 SiglecG(人类中的 SIGLEC10)相互作用的抑制。在这里,我们使用败血症的肠穿孔模型表明,微生物唾液酸酶以基于唾液酸的方式靶向 SiglecG/10 对 CD24 的识别,从而加剧炎症。唾液酸酶抑制剂通过涉及 CD24 和 Siglecg 的机制保护小鼠免受败血症的侵害,而这两种基因的突变都会加剧败血症。对缺乏唾液酸酶的细菌突变体的分析证实了破坏基于唾液酸的模式识别对微生物毒力的关键贡献,并支持了唾液酸酶抑制抑制感染引起的炎症的临床潜力。