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Engineering disulfide bridges to dissect antimicrobial and chemotactic activities of human β-defensin 3

机译:工程二硫键可分解抗菌和趋化性 β-防御素3的活性

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摘要

Human defensins form a family of small, cationic, and Cys-rich antimicrobial proteins that play important roles in innate immunity against invading microbes. They also function as effective immune modulators in adaptive immunity by selectively chemoattracting T lymphocytes and immature dendritic cells. On the basis of sequence homology and the connectivity of six conserved Cys residues, human defensins are classified into α and β families. Structures of several β-defensins have recently been characterized, confirming the disulfide connectivity conserved within the family, i.e., Cys1–Cys5, Cys2–Cys4, and Cys3–Cys6. We found that human β-defensin 3 (hBD3), a recently described member of the growing β family, did not fold preferentially into a native conformation in vitro under various oxidative conditions. Using the orthogonal protection of Cys1–Cys5 and of Cys1–Cys6, we chemically synthesized six topological analogs of hBD3 with predefined disulfide connectivities, including the (presumably) native β pairing. Unexpectedly, all differently folded hBD3 species exhibited similar antimicrobial activity against Escherichia coli, whereas a wide range of chemotactic activities was observed with these analogs for monocytes and cells transfected by the chemokine receptor CCR6. Furthermore, whereas substitution of all Cys residues by α-aminobutyric acid completely abolished the chemotactic activity of hBD3, the bactericidal activity remained unaffected in the absence of any disulfide bridge. Our findings demonstrate that disulfide bonding in hBD3, although required for binding and activation of receptors for chemotaxis, is fully dispensable for its antimicrobial function, thus shedding light on the mechanisms of action for human β-defensins and the design of novel peptide antibiotics.
机译:人防御素形成一个小的,阳离子型和富含Cys的抗菌蛋白家族,它们在针对入侵微生物的先天免疫中起重要作用。它们还通过选择性地吸引T淋巴细胞和未成熟树突状细胞而在适应性免疫中起有效的免疫调节剂的作用。根据序列同源性和六个保守的Cys残基的连通性,将人防御素分为α和β家族。最近已鉴定了几种β-防御素的结构,证实了该家族中保守的二硫键连接性,即Cys 1 –Cys 5 ,Cys 2 –Cys 4 和Cys 3 –Cys 6 。我们发现,人β-防御素3(hBD3),一个最近描述的正在增长的β家族成员,在各种氧化条件下,在体外均不能优先折叠成天然构象。利用Cys 1 –Cys 5 和Cys 1 –Cys 6 的正交保护,我们化学合成了六种具有预定义的二硫键连接性的hBD3拓扑类似物, 包括(可能是)天然β对。没想到,全部 不同折叠的hBD3种类具有相似的抗菌活性 对抗大肠埃希氏菌,而多种趋化性 用这些类似物观察到单核细胞和转染细胞的活性 由趋化因子受体CCR6引起。此外,所有Cys的取代 α-氨基丁酸残基完全消除了趋化性 hBD3的活性,在不存在下保持杀菌活性不受影响 任何二硫键。我们的发现表明,二硫键在 hBD3,尽管需要结合和激活受体 趋化性,由于其抗菌功能而完全不需要,因此脱落 人类β-防御素的作用机理及抗肿瘤药的设计 新型肽类抗生素。

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