Suppr超能文献

双组分感应系统的周质感应域之间信号感知和转导是保守的。

Signal Sensing and Transduction Are Conserved between the Periplasmic Sensory Domains of BifA and SagS.

机构信息

Department of Biological Sciences, Binghamton University, Binghamton, New York, USA.

Binghamton Biofilm Research Center, Binghamton University, Binghamton, New York, USA.

出版信息

mSphere. 2019 Jul 31;4(4):e00442-19. doi: 10.1128/mSphere.00442-19.

Abstract

The hybrid sensor kinase SagS of plays a key role in the transition from the planktonic to the biofilm mode of growth. Recently, we have shown that distinct sets of residues in its periplasmic HmsP sensory domain are involved in the regulation of biofilm formation or antibiotic tolerance. Interestingly, the HmsP domain of the phosphodiesterase BifA shows great predicted structural similarity to that of SagS, despite moderate sequence conservation and only a number of residues involved in SagS signaling being conserved between both proteins. Based on this observation, we hypothesized that BifA and SagS may use similar mechanisms to sense and transduce signals perceived at their periplasmic HmsP domains and, therefore, may be interchangeable. To test this hypothesis, we constructed SagS hybrids in which the HmsP domain of SagS was replaced by that of BifA (and vice versa) or by the DISMED2 sensory domain of NicD. The SagS-BifA hybrid restored attachment and biofilm formation by the Δ mutant. Likewise, while the NicD-SagS hybrid was nonfunctional, the BifA-SagS hybrid partially restored pathways leading to biofilm formation and antibiotic tolerance in a Δ mutant background. Furthermore, alanine substitution of key residues previously associated with the biofilm formation and antibiotic tolerance pathways of SagS impaired signal transduction by the BifA-SagS hybrid in a similar way to SagS. In conclusion, our data indicate that the nature of the sensory domain is important for proper functionality of the cytoplasmic effector domains and that signal sensing and transduction are likely conserved in SagS and BifA. Biofilms have been associated with more than 60% of all recalcitrant and chronic infections and can render bacterial cells up to a thousand times more resistant to antibiotics than planktonic cells. Although it is known that the transition from the planktonic to the biofilm mode of growth involves two-component regulatory systems, increased c-di-GMP levels, and quorum sensing systems among others, the exact signaling events that lead to biofilm formation remain unknown. In the opportunistic pathogen , the hybrid sensor kinase SagS regulates biofilm formation and antibiotic tolerance through two independent pathways via distinct residues in its periplasmic sensory domain. Interestingly, the sensory domains of SagS and BifA show great predicted structural similarity despite moderate sequence conservation. Here we show that the sensory domains of BifA and SagS are functionally interchangeable and that they use a similar mechanism of signal sensing and transduction, which broadens our understanding of how bacteria perceive and transduce signals when transitioning to the biofilm mode of growth.

摘要

在从浮游生物到生物膜生长模式的转变中,扮演着关键角色。最近,我们已经表明,其周质 HmsP 感应域中的不同残基集参与了生物膜形成或抗生素耐受性的调节。有趣的是,磷酸二酯酶 BifA 的 HmsP 结构域与 SagS 的 HmsP 结构域具有很大的预测结构相似性,尽管序列保守性中等,并且两个蛋白之间只有一些参与 SagS 信号的残基保守。基于这一观察结果,我们假设 BifA 和 SagS 可能使用类似的机制来感知和转导其周质 HmsP 域中感知到的信号,因此它们可能是可互换的。为了验证这一假设,我们构建了 SagS 杂种,其中 SagS 的 HmsP 结构域被 BifA 的 HmsP 结构域(反之亦然)或 NicD 的 DISMED2 感应结构域取代。SagS-BifA 杂种恢复了Δ突变体的附着和生物膜形成。同样,虽然 NicD-SagS 杂种无功能,但 BifA-SagS 杂种在Δ突变体背景下部分恢复了导致生物膜形成和抗生素耐受性的途径。此外,先前与 SagS 的生物膜形成和抗生素耐受性途径相关的关键残基的丙氨酸取代以类似于 SagS 的方式损害了 BifA-SagS 杂种的信号转导。总之,我们的数据表明,感应域的性质对于细胞质效应域的正常功能很重要,并且 SagS 和 BifA 中可能存在信号感知和转导的保守性。生物膜与超过 60%的所有顽固性和慢性感染有关,并且可以使细菌细胞对抗生素的耐药性比浮游细胞高一千倍。尽管已经知道从浮游生物到生物膜生长模式的转变涉及双组分调节系统、增加的 c-di-GMP 水平和群体感应系统等,但导致生物膜形成的确切信号事件仍然未知。在机会性病原体中,混合传感器激酶 SagS 通过其周质感应域中的不同残基通过两条独立的途径调节生物膜形成和抗生素耐受性。有趣的是,尽管序列保守性中等,但 SagS 和 BifA 的感应结构域显示出很大的预测结构相似性。在这里,我们表明 BifA 和 SagS 的感应结构域在功能上是可互换的,并且它们使用类似的信号感应和转导机制,这拓宽了我们对细菌在过渡到生物膜生长模式时如何感知和转导信号的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1bc8/6669338/f1489ad1f99d/mSphere.00442-19-f0001.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验