Shukla Nandini, Osmani Aysha H, Osmani Stephen A
Ohio State Biochemistry Program, The Ohio State University, Columbus, OH 43210.
Department of Molecular Genetics, The Ohio State University, Columbus, OH 43210.
Mol Biol Cell. 2017 Mar 1;28(5):634-644. doi: 10.1091/mbc.E16-10-0750. Epub 2017 Jan 5.
How microtubules (MTs) are regulated during fungal biofilm formation is unknown. By tracking MT +end-binding proteins (+TIPS) in , we find that MTs are regulated to depolymerize within forming fungal biofilms. During this process, EB1, dynein, and ClipA form transient fibrous and then bar-like structures, novel configurations for +TIPS. Cells also respond in an autonomous manner, with cells separated by a septum able to maintain different MT dynamics. Surprisingly, all cells with depolymerized MTs rapidly repolymerize their MTs after air exchange above the static culture medium of biofilms. Although the specific gasotransmitter for this biofilm response is not known, we find that addition of hydrogen sulfide gas to growing cells recapitulates all aspects of reversible MT depolymerization and transient formation of +TIPs bars. However, as biofilms mature, physical removal of part of the biofilm is required to promote MT repolymerization, which occurs at the new biofilm edge. We further show MT depolymerization within biofilms is regulated by the SrbA hypoxic transcription factor and that without SrbA, MTs are maintained as biofilms form. This reveals a new mode of MT regulation in response to changing gaseous biofilm microenvironments, which could contribute to the unique characteristics of fungal biofilms in medical and industrial settings.
在真菌生物膜形成过程中微管(MTs)是如何被调控的尚不清楚。通过追踪MT的正端结合蛋白(+TIPS),我们发现在形成的真菌生物膜中MTs被调控解聚。在此过程中,EB1、动力蛋白和ClipA形成短暂的纤维状结构,然后是棒状结构,这是+TIPS的新构型。细胞也以自主方式做出反应,被隔膜隔开的细胞能够维持不同的MT动态。令人惊讶的是,在生物膜静态培养基上方进行空气交换后,所有MT解聚的细胞都会迅速使其MT重新聚合。虽然这种生物膜反应的特定气体递质尚不清楚,但我们发现向生长中的细胞添加硫化氢气体可重现MT可逆解聚和+TIPS棒短暂形成的所有方面。然而,随着生物膜成熟,需要物理去除部分生物膜以促进MT重新聚合,这发生在新的生物膜边缘。我们进一步表明生物膜内的MT解聚受SrbA缺氧转录因子调控,并且没有SrbA时,MT在生物膜形成时得以维持。这揭示了一种响应不断变化的气态生物膜微环境的MT调控新模式,这可能有助于真菌生物膜在医学和工业环境中的独特特性。