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In Vitro Biochemical Assays using Biotin Labels to Study Protein-Nucleic Acid Interactions
Published on: July 17, 2019
Biotin protein ligase C-terminal domain arginines are critical for ATP interaction & biotinyl-5'-AMP formation
Sonika Bhatnagar1, Debodyuti Sadhukhan1, Manoj Kumar Rajak1
1BRIC-National Institute of Immunology, Aruna Asaf Ali Marg, New Delhi 110 067, India.
Abstract:
Electrostatic interactions between arginines and phosphates are central to numerous biological processes. Here, using an integrated approach combining mutagenesis, activity measurements, molecular dynamics (MD) simulations, and NMR, we demonstrate that arginines present in the C-terminal domain of Biotin protein ligase (BPL) are critical for biotinyl-5'-AMP formation. Using NMR-based assays and a group I BPL from Leishmania major (LmBPL), we selectively monitored the first biotinylation step, i.e., formation of biotinyl-5'-AMP from biotin and ATP. The distinct chemical shifts of ATP and AMP enabled us to quantitatively measure the amount of biotinyl-5'-AMP formed by the wild-type enzyme and a C-terminal domain deletion mutant. The mutant displayed remarkably low biotinyl-5'AMP formation compared to the wild-type enzyme. MD simulations of the apo- and ATP-bound forms of LmBPL further identified key interactions between the C-terminal domain arginines (R224, R229) and the γ-phosphate of ATP. The in silico predictions were validated by biochemical studies using R224A, R229A, and R224A/R229A mutants, which displayed remarkably lower biotinyl-5'-AMP formation compared to the wild-type enzyme. Using pyrophosphate as a γ-phosphate mimic, and 31P NMR as a probe, we demonstrate pyrophosphate binding to the wild-type LmBPL but not to the arginine mutants. Consistent with this, biotinyl-5'-AMP formation was completely inhibited by preincubation with pyrophosphate. Taken together, our findings establish a critical role for the C-terminal domain arginines in recognizing ATP phosphates during biotinylation. Extrapolating these findings to other group I and bifunctional group II BPLs, our study reveals a broadly conserved role for the C-terminal domain arginines in regulating biotinylation across the BPL family.
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