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Molecular switch-like regulation enables global subunit coordination in a viral ring ATPase.


ABSTRACT: Subunits in multimeric ring-shaped motors must coordinate their activities to ensure correct and efficient performance of their mechanical tasks. Here, we study WT and arginine finger mutants of the pentameric bacteriophage ?29 DNA packaging motor. Our results reveal the molecular interactions necessary for the coordination of ADP-ATP exchange and ATP hydrolysis of the motor's biphasic mechanochemical cycle. We show that two distinct regulatory mechanisms determine this coordination. In the first mechanism, the DNA up-regulates a single subunit's catalytic activity, transforming it into a global regulator that initiates the nucleotide exchange phase and the hydrolysis phase. In the second, an arginine finger in each subunit promotes ADP-ATP exchange and ATP hydrolysis of its neighbor. Accordingly, we suggest that the subunits perform the roles described for GDP exchange factors and GTPase-activating proteins observed in small GTPases. We propose that these mechanisms are fundamental to intersubunit coordination and are likely present in other ring ATPases.

SUBMITTER: Tafoya S 

PROVIDER: S-EPMC6077733 | biostudies-literature | 2018 Jul

REPOSITORIES: biostudies-literature

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Molecular switch-like regulation enables global subunit coordination in a viral ring ATPase.

Tafoya Sara S   Liu Shixin S   Castillo Juan P JP   Atz Rockney R   Morais Marc C MC   Grimes Shelley S   Jardine Paul J PJ   Bustamante Carlos C  

Proceedings of the National Academy of Sciences of the United States of America 20180716 31


Subunits in multimeric ring-shaped motors must coordinate their activities to ensure correct and efficient performance of their mechanical tasks. Here, we study WT and arginine finger mutants of the pentameric bacteriophage φ29 DNA packaging motor. Our results reveal the molecular interactions necessary for the coordination of ADP-ATP exchange and ATP hydrolysis of the motor's biphasic mechanochemical cycle. We show that two distinct regulatory mechanisms determine this coordination. In the firs  ...[more]

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