4.8 Article

Na+-induced structural transition of MotPS for stator assembly of the Bacillus flagellar motor

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SCIENCE ADVANCES
卷 3, 期 11, 页码 -

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AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.aao4119

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资金

  1. Japan Society for the Promotion of Science KAKENHI grant [JP15H04360, JP15H03540, JP24227005, JP25000013]
  2. MEXT (Ministry of Education, Culture, Sports, Science and Technology) KAKENHI [JP16H00830, JP16H00758, JP26119003, JP24117004, JP15H01640]
  3. Japan Science and Technology Agency grant [JPMJPR13L4, JPMJCR13M1]
  4. Grants-in-Aid for Scientific Research [17K19345, 17H06121, 16H00830, 26119003, 15H03540, 16H00758, 15H04360, 25000013] Funding Source: KAKEN

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The bacterial flagellar motor consists of a rotor and a dozen stator units and regulates the number of active stator units around the rotor in response to changes in the environment. The MotPS complex is a Na+-type stator unit in the Bacillus subtilis flagellar motor and binds to the peptidoglycan layer through the peptidoglycan-binding (PGB) domain of MotS to act as the stator. The MotPS complex is activated in response to an increase in the Na+ concentration in the environment, but the mechanism of this activation has remained unknown. We report that activation occurs by a Na+-induced folding and dimer formation of the PGB domain of MotS, as revealed in real-time imaging by high-speed atomic force microscopy. The MotPS complex showed two distinct ellipsoid domains connected by a flexible linker. A smaller domain, corresponding to the PGB domain, became structured and unstructured in the presence and absence of 150 mM NaCl, respectively. When the amino-terminal portion of the PGB domain adopted a partially stretched conformation in the presence of NaCl, the center-to-center distance between these two domains increased by up to 5 nm, allowing the PGB domain to reach and bind to the peptidoglycan layer. We propose that assembly of the MotPS complex into a motor proceeds by means of Na+-induced structural transitions of its PGB domain.

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