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Updated: Jun 30, 2026

Quantification of Bacterial Histidine Kinase Autophosphorylation Using a Nitrocellulose Binding Assay
Published on: January 11, 2017
A histidine switch controls the pH-responsive self-assembly of a helical protein filament
Swasti Rawal1, Stefan Bohn2,3, Maria Bacia-Verloop4
1Research Unit Integrative Structural Biology, Medicinal Chemistry, Otto Loewi Research Center, Medical University of Graz, 8010 Graz, Austria.
Insights
Scientists discovered a pH-sensitive histidine switch in caspase-9 CARD that controls helical filament self-assembly. This finding offers a mechanism for engineering protein stability and tunable self-assembly in filamentous proteins.
Area of Science:
- Biochemistry
- Structural Biology
- Protein Engineering
Background:
- Self-assembling helical protein filaments are crucial for biological processes like signaling and motility.
- Controlling the self-assembly of filamentous proteins is a significant challenge in protein engineering.
Purpose of the Study:
- To identify the molecular determinants regulating the pH-dependent self-assembly of caspase-9 CARD.
- To establish a mechanism for engineering tunable protein self-assembly.
Main Methods:
- Integrative structural, biophysical, and computational approaches.
- Nuclear Magnetic Resonance (NMR) spectroscopy.
- Cryo-electron microscopy (cryo-EM) and molecular dynamics (MD) simulations.
Main Results:
- Caspase-9 CARD self-assembles into helical filaments regulated by pH.
- A single histidine residue (H38) acts as a pH-sensitive molecular switch, controlling filament assembly.
- Charge-altering mutations at H38 fine-tune protein stability and self-assembly dynamics.
- Cryo-EM structures revealed H38 at the filament interface, mediating interactions.
- Analysis of 350 helix-containing domains identified generalizable electrostatic principles near helix dipoles.
Conclusions:
- A native, pH-sensitive histidine switch mechanism regulates self-assembling helical protein filaments.
- Engineering charge-altering mutations near N-terminal helices can control protein stability and self-assembly.
- This work provides a framework for designing self-assembling protein systems.
Abstract:
Self-assembling helical protein filaments underlie diverse biological processes, from signaling pathways to cell motility. Encoding tunable self-assembly into the sequences of filamentous proteins remains a major challenge. Here, we discovered that the caspase-9 CARD can natively self-assemble into helical filaments in a pH-regulated manner. We defined the determinants of filament assembly using an integrative structural, biophysical, and computational approach. Using NMR spectroscopy, we found that the protonation of a single histidine residue near an N-terminal helix dipole, H38, regulates the pH-dependent self-assembly process. Charge-altering mutations at this site tune thermodynamic stability and filament self-assembly across solution and pH conditions. We solved 3.3- and 3.5-Å cryo-EM structures of the wild-type and H38R filaments, respectively, which show H38 positioned directly at a filament interface. Molecular dynamics simulations show that H38 functions as a molecular switch, whereby protonation rotates its positively charged side-chain toward solvent and away from the partial-positive charge at the N-terminal helix dipole. This reflects a fine balance between stabilizing intermolecular association and a destabilizing intramolecular electrostatic clash at the helix dipole. More broadly, across 350 helix-containing protein domains we identified electrostatic contributions to protein stability near helix dipoles by integrating AlphaFold2 predictions with deep mutational scanning data. Together, our results identify a native, pH-sensitive histidine switch that regulates a self-assembling helical protein filament. Our results establish a mechanism by which charge-altering mutations near helical N-termini can be engineered to control side-chain rotamers, protein stability, and self-assembly.
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