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Life with Bacterial Mechanosensitive Channels, from Discovery to Physiology to Pharmacological Target

机译:用细菌机械敏感渠道的生命,从发现到生理到药理目标

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General principles in biology have often been elucidated from the study of bacteria. This is true for the bacterial mechanosensitive channel of large conductance, MscL, the channel highlighted in this review. This channel functions as a last-ditch emergency release valve discharging cytoplasmic solutes upon decreases in osmotic environment. Opening the largest gated pore, MscL passes molecules up to 30?? in diameter; exaggerated conformational changes yield advantages for study, including in vivo assays. MscL contains structural/functional themes that recur in higher organisms and help elucidate how other, structurally more complex, channels function. These features of MscL include (i) the ability to directly sense, and respond to, biophysical changes in the membrane, (ii) an α helix (“slide helix”) or series of charges (“knot in a rope”) at the cytoplasmic membrane boundary to guide transmembrane movements, and (iii) important subunit interfaces that, when disrupted, appear to cause the channel to gate inappropriately. MscL may also have medical applications: the modality of the MscL channel can be changed, suggesting its use as a triggered nanovalve in nanodevices, including those for drug targeting. In addition, recent studies have shown that the antibiotic streptomycin opens MscL and uses it as one of the primary paths to the cytoplasm. Moreover, the recent identification and study of novel specific agonist compounds demonstrate that the channel is a valid drug target. Such compounds may serve as novel-acting antibiotics and adjuvants, a way of permeabilizing the bacterial cell membrane and, thus, increasing the potency of commonly used antibiotics.
机译:生物学的一般原则往往阐明了对细菌的研究。对于大型电导,MSCL的细菌机械敏感通道,这是如此,该介绍在本综述中突出显示。该频道用作最后一沟应急释放阀,在渗透环境下降时溶解细胞质溶质。打开最大门控孔,MSCL通过高达30 ??的分子在直径上;夸大的构象变化,研究的优势,包括体内测定。 MSCL包含结构/功能主题,其在更高的生物体中重复,并帮助阐明其他结构更复杂的通道功能。 MSCL的这些特征包括(i)直接感知的能力,并响应膜中的生物物理变化,(ii)α螺旋(“滑动螺旋”)或一系列电荷(“绳索”)细胞质膜边界引导跨膜运动,(iii)重要的亚基接口,当破坏时,似乎导致通道不恰当地栅极。 MSCL还可以具有医学应用:可以改变MSCL通道的模态,表明其用作纳米型触发的纳米级,包括用于药物靶向的触发纳瓦级。此外,最近的研究表明,抗生素链霉素打开MSCl,并用作细胞质的主要路径之一。此外,最近对新型特异性激动剂化合物的鉴定和研究表明该通道是有效的药物靶标。这些化合物可以作为新型作用的抗生素和佐剂,一种透化细菌细胞膜的方式,从而增加常用抗生素的效力。

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