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Updated: Apr 27, 2026

Quantification of Bacterial Histidine Kinase Autophosphorylation Using a Nitrocellulose Binding Assay
Published on: January 11, 2017
Mechanism of autophosphorylation of mycobacterial PknB explored by molecular dynamics simulations
Nikhil P Damle1, Debasisa Mohanty
1Bioinformatics Center, National Institute of Immunology , Aruna Asaf Ali Marg, New Delhi 110067, India.
Abstract:
Mycobacterial Ser/Thr kinase, PknB, is essential for the growth of the pathogen. Unphosphorylated PknB is catalytically inactive, and its activation requires autophosphorylation of Thr residues on the activation loop. Autophosphorylation can in principle take place via two distinct mechanisms. Intermolecular trans autophosphorylation involves dimerization and phosphorylation of the activation loop of one chain in the catalytic pocket of the other chain. On the other hand, intramolecular cis autophosphorylation involves phosphorylation of the activation loop of the kinases in its own catalytic pocket within a monomer. On the basis of the crystal structure of PknB in the front-to-front dimeric form, it is currently believed that activation of PknB involves trans autophosphorylation. However, because of the lack of coordinates of the activation loop in the crystal structures, atomic details of the conformational changes associated with activation are yet to be deciphered. Therefore, to understand the conformational transitions associated with activation via autophosphorylation, a series of explicit solvent molecular dynamics simulations with a duration of 1 μs have been performed on each of the phosphorylated and nonphosphorylated forms of the PknB catalytic domain in monomeric and dimeric states. Simulations on phosphorylated PknB revealed a differential network of crucial electrostatic and hydrophobic residues that stabilize the phosphorylated form in the active conformation. Interestingly, in our simulations on nonphosphorylated monomers, the activation loop was observed to fold into its own active site, thereby opening the novel possibility of activation through intramolecular cis autophosphorylation. Thus, our simulations suggest that autophosphorylation of PknB might also involve cis initiation followed by trans amplification as reported for other eukaryotic kinases based on recent reaction kinetics studies.
Insights
Mycobacterial Ser/Thr kinase PknB activation is essential for pathogen growth. Molecular dynamics simulations reveal PknB may activate via intramolecular cis autophosphorylation, challenging previous models.
Area of Science:
- Biochemistry and Molecular Biology
- Structural Biology
- Microbiology
Background:
- Mycobacterial Ser/Thr kinase, PknB, is critical for pathogen survival.
- PknB activation requires autophosphorylation of threonine residues on its activation loop.
- Current models favor intermolecular trans autophosphorylation for PknB activation.
Purpose of the Study:
- To elucidate the conformational transitions of PknB during activation via autophosphorylation.
- To investigate the mechanisms of PknB activation at an atomic level using molecular dynamics.
Main Methods:
- Performed 1 μs explicit solvent molecular dynamics simulations.
- Simulated both phosphorylated and nonphosphorylated forms of the PknB catalytic domain.
- Analyzed monomeric and dimeric states of PknB.
Main Results:
- Identified key electrostatic and hydrophobic residues stabilizing the active conformation of phosphorylated PknB.
- Observed the activation loop folding into the active site of nonphosphorylated monomers.
- Revealed a novel possibility of intramolecular cis autophosphorylation for PknB activation.
Conclusions:
- PknB activation may involve an initial cis autophosphorylation followed by trans amplification.
- This finding challenges the prevailing model of exclusively trans autophosphorylation.
- Provides atomic insights into PknB conformational dynamics and activation mechanisms.
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