Department of Microbiology & Immunology, University of North Carolina, Chapel Hill, North Carolina, USA.
Department of Pediatrics, Section of Pediatric Hematology-Oncology, University of Oklahoma Health Sciences Center, Oklahoma City, Oklahoma, USA.
mSphere. 2021 Oct 27;6(5):e0072221. doi: 10.1128/mSphere.00722-21. Epub 2021 Oct 6.
Fungal two-component regulatory systems incorporate receiver domains into hybrid histidine kinases (HHKs) and response regulators. We constructed a nonredundant database of 670 fungal receiver domain sequences from 51 species sampled from nine fungal phyla. A much greater proportion (21%) of predicted fungal response regulators did not belong to known groups than previously appreciated. Receiver domains in Rim15 response regulators from Ascomycota and other phyla are very different from one another, as are the duplicate receiver domains in group XII HHKs. Fungal receiver domains from five known types of response regulators and 20 known types of HHKs exhibit distinct patterns of amino acids at conserved and variable positions known to be structurally and functionally important in bacterial receiver domains. We inferred structure/activity relationships from the patterns and propose multiple experimentally testable hypotheses about the mechanisms of signal transduction mediated by fungal receiver domains.
真菌双组分调节系统将受体结构域纳入混合组氨酸激酶 (HHK) 和反应调节因子。我们从 9 个真菌门中 51 个物种中构建了一个 670 个真菌受体结构域序列的非冗余数据库。与之前的认识相比,预测的真菌反应调节因子中没有属于已知组的比例要大得多(21%)。来自子囊菌门和其他门的 Rim15 反应调节因子的受体结构域彼此之间差异很大,组 XII HHK 中的重复受体结构域也是如此。来自五种已知类型的反应调节因子和 20 种已知类型的 HHK 的真菌受体结构域在保守和可变位置的氨基酸表现出独特的模式,这些位置在细菌受体结构域中在结构和功能上是重要的。我们从这些模式中推断出结构/活性关系,并提出了多个关于真菌受体结构域介导的信号转导机制的可通过实验检验的假设。