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1.
Nat Struct Mol Biol ; 31(3): 424-435, 2024 Mar.
Article de Anglais | MEDLINE | ID: mdl-38177685

RÉSUMÉ

Clamp loaders are AAA+ ATPases that facilitate high-speed DNA replication. In eukaryotic and bacteriophage clamp loaders, ATP hydrolysis requires interactions between aspartate residues in one protomer, present in conserved 'DEAD-box' motifs, and arginine residues in adjacent protomers. We show that functional defects resulting from a DEAD-box mutation in the T4 bacteriophage clamp loader can be compensated by widely distributed single mutations in the ATPase domain. Using cryo-EM, we discovered an unsuspected inactive conformation of the clamp loader, in which DNA binding is blocked and the catalytic sites are disassembled. Mutations that restore function map to regions of conformational change upon activation, suggesting that these mutations may increase DNA affinity by altering the energetic balance between inactive and active states. Our results show that there are extensive opportunities for evolution to improve catalytic efficiency when an inactive intermediate is involved.


Sujet(s)
Adenosine triphosphatases , Réplication de l'ADN , Adenosine triphosphatases/métabolisme , Cryomicroscopie électronique , ADN , ATPases associated with diverse cellular activities/métabolisme , Mutagenèse , Adénosine triphosphate/métabolisme
2.
Elife ; 102021 04 13.
Article de Anglais | MEDLINE | ID: mdl-33847559

RÉSUMÉ

Clamp loaders are AAA+ ATPases that load sliding clamps onto DNA. We mapped the mutational sensitivity of the T4 bacteriophage sliding clamp and clamp loader by deep mutagenesis, and found that residues not involved in catalysis or binding display remarkable tolerance to mutation. An exception is a glutamine residue in the AAA+ module (Gln 118) that is not located at a catalytic or interfacial site. Gln 118 forms a hydrogen-bonded junction in a helical unit that we term the central coupler, because it connects the catalytic centers to DNA and the sliding clamp. A suppressor mutation indicates that hydrogen bonding in the junction is important, and molecular dynamics simulations reveal that it maintains rigidity in the central coupler. The glutamine-mediated junction is preserved in diverse AAA+ ATPases, suggesting that a connected network of hydrogen bonds that links ATP molecules is an essential aspect of allosteric communication in these proteins.


Sujet(s)
ATPases associated with diverse cellular activities/métabolisme , Adénosine triphosphate/métabolisme , Bactériophage T4/enzymologie , DNA-directed DNA polymerase/métabolisme , ATPases associated with diverse cellular activities/composition chimique , ATPases associated with diverse cellular activities/génétique , Régulation allostérique , Bactériophage T4/génétique , Bactériophage T4/croissance et développement , Catalyse , Réplication de l'ADN , DNA-directed DNA polymerase/composition chimique , DNA-directed DNA polymerase/génétique , Glutamine/métabolisme , Liaison hydrogène , Simulation de dynamique moléculaire , Mutation , Conformation des protéines , Relation structure-activité , Réplication virale
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