Establishment and validation of computational model for MT1-MMP dependent ECM degradation and intervention strategies
Daisuke Hoshino1, Naohiko Koshikawa, Takashi Suzuki
1Division of Cancer Cell Research, Institute of Medical Science, University of Tokyo, Minato-ku, Tokyo, Japan.
Abstract:
MT1-MMP is a potent invasion-promoting membrane protease employed by aggressive cancer cells. MT1-MMP localizes preferentially at membrane protrusions called invadopodia where it plays a central role in degradation of the surrounding extracellular matrix (ECM). Previous reports suggested a role for a continuous supply of MT1-MMP in ECM degradation. However, the turnover rate of MT1-MMP and the extent to which the turnover contributes to the ECM degradation at invadopodia have not been clarified. To approach this problem, we first performed FRAP (Fluorescence Recovery after Photobleaching) experiments with fluorescence-tagged MT1-MMP focusing on a single invadopodium and found very rapid recovery in FRAP signals, approximated by double-exponential plots with time constants of 26 s and 259 s. The recovery depended primarily on vesicle transport, but negligibly on lateral diffusion. Next we constructed a computational model employing the observed kinetics of the FRAP experiments. The simulations successfully reproduced our FRAP experiments. Next we inhibited the vesicle transport both experimentally, and in simulation. Addition of drugs inhibiting vesicle transport blocked ECM degradation experimentally, and the simulation showed no appreciable ECM degradation under conditions inhibiting vesicle transport. In addition, the degree of the reduction in ECM degradation depended on the degree of the reduction in the MT1-MMP turnover. Thus, our experiments and simulations have established the role of the rapid turnover of MT1-MMP in ECM degradation at invadopodia. Furthermore, our simulations suggested synergetic contributions of proteolytic activity and the MT1-MMP turnover to ECM degradation because there was a nonlinear and marked reduction in ECM degradation if both factors were reduced simultaneously. Thus our computational model provides a new in silico tool to design and evaluate intervention strategies in cancer cell invasion.
Insights
The rapid turnover of membrane type 1 matrix metalloproteinase (MT1-MMP) at invadopodia is crucial for cancer cell invasion and extracellular matrix degradation. Inhibiting this turnover significantly reduces invasion, suggesting new therapeutic strategies.
Area of Science:
- Cancer Biology
- Molecular Cell Biology
- Biochemistry
Background:
- Membrane type 1 matrix metalloproteinase (MT1-MMP) is essential for cancer cell invasion.
- MT1-MMP degrades the extracellular matrix (ECM) at invadopodia, but its turnover rate and contribution to degradation are unclear.
Purpose of the Study:
- To investigate the turnover rate of MT1-MMP at invadopodia.
- To determine the contribution of MT1-MMP turnover to ECM degradation.
- To explore the synergistic effects of MT1-MMP activity and turnover on invasion.
Main Methods:
- Fluorescence Recovery After Photobleaching (FRAP) experiments with fluorescence-tagged MT1-MMP.
- Computational modeling based on FRAP kinetics.
- Experimental and simulated inhibition of vesicle transport.
Main Results:
- MT1-MMP exhibits rapid turnover at invadopodia, with time constants of 26 s and 259 s, primarily driven by vesicle transport.
- Inhibition of vesicle transport blocked ECM degradation, correlating with reduced MT1-MMP turnover.
- Simulations revealed synergistic effects between MT1-MMP proteolytic activity and turnover in ECM degradation.
Conclusions:
- Rapid MT1-MMP turnover is essential for ECM degradation and cancer cell invasion at invadopodia.
- Computational modeling provides a tool for evaluating cancer invasion intervention strategies.
- Targeting MT1-MMP turnover offers a potential therapeutic approach for aggressive cancers.
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