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Updated: Jun 25, 2025

Urokinase-type Plasminogen Activator-induced Mouse Back Pain Model
Published on: September 1, 2023
The Light Chain Allosterically Enhances the Protease Activity of Murine Urokinase-Type Plasminogen Activator
Constanza Torres-Paris1, Harriet J Song1, Felipe Engelberger2,3
1Department of Chemistry and Biochemistry, Mail Code 0309, University of California San Diego, 9325 S Scholars Dr, La Jolla, California 92161, United States.
Abstract:
The active form of the murine urokinase-type plasminogen activator (muPA) is formed by a 27-residue disordered light chain connecting the amino-terminal fragment (ATF) with the serine protease domain. The two chains are tethered by a disulfide bond between C1CT in the disordered light chain and C122CT in the protease domain. Previous work showed that the presence of the disordered light chain affected the inhibition of the protease domain by antibodies. Here we show that the disordered light chain induced a 3.7-fold increase in kcat of the protease domain of muPA. In addition, hydrogen-deuterium exchange mass spectrometry (HDX-MS) and accelerated molecular dynamics (AMD) were performed to identify the interactions between the disordered light chain and the protease domain. HDX-MS revealed that the light chain is contacting the 110s, the turn between the β10- and β11-strand, and the β7-strand. A reduction in deuterium uptake was also observed in the activation loop, the 140s loop and the 220s loop, which forms the S1-specificty pocket where the substrate binds. These loops are further away from where the light chain seems to be interacting with the protease domain. Our results suggest that the light chain most likely increases the activity of muPA by allosterically favoring conformations in which the specificity pocket is formed. We propose a model by which the allostery would be transmitted through the β-strands of the β-barrels to the loops on the other side of the protease domain.
Insights
The disordered light chain of murine urokinase-type plasminogen activator (muPA) significantly boosts protease activity. This light chain allosterically enhances substrate binding by stabilizing the active conformation of the protease domain.
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- The active form of murine urokinase-type plasminogen activator (muPA) comprises a disordered light chain and a serine protease domain.
- These domains are linked by a disulfide bond, and the light chain's influence on protease inhibition was previously noted.
Purpose of the Study:
- To investigate the functional impact of the muPA disordered light chain on the protease domain's activity.
- To elucidate the molecular interactions between the light chain and the protease domain using biophysical and computational methods.
Main Methods:
- Hydrogen-deuterium exchange mass spectrometry (HDX-MS) to map protein-protein interactions.
- Accelerated molecular dynamics (AMD) simulations to model protein dynamics.
- Enzyme kinetics assays to determine catalytic efficiency (kcat).
Main Results:
- The disordered light chain increased the catalytic rate (kcat) of the muPA protease domain by 3.7-fold.
- HDX-MS identified contacts between the light chain and specific regions (110s, β10-β11 turn, β7-strand) of the protease domain.
- Reduced deuterium uptake in the activation loop and S1-specificity pocket loops suggests allosteric modulation.
Conclusions:
- The muPA light chain allosterically enhances protease activity by stabilizing conformations that favor substrate binding.
- Allosteric effects are likely transmitted through the protease domain's β-strands to distant functional loops.
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