Mechanical Forces Govern Interactions of Host Cells with Intracellular Bacterial Pathogens
Effie E Bastounis1, Prathima Radhakrishnan2,3,4, Christopher K Prinz2,3
1Interfaculty Institute of Microbiology & Infection Medicine, Cluster of Excellence CMFI, University of Tübingen, Tübingen, Baden-Württemberg, Germany.
Abstract:
To combat infectious diseases, it is important to understand how host cells interact with bacterial pathogens. Signals conveyed from pathogen to host, and vice versa, may be either chemical or mechanical. While the molecular and biochemical basis of host-pathogen interactions has been extensively explored, relatively less is known about mechanical signals and responses in the context of those interactions. Nevertheless, a wide variety of bacterial pathogens appear to have developed mechanisms to alter the cellular biomechanics of their hosts in order to promote their survival and dissemination, and in turn many host responses to infection rely on mechanical alterations in host cells and tissues to limit the spread of infection. In this review, we present recent findings on how mechanical forces generated by host cells can promote or obstruct the dissemination of intracellular bacterial pathogens. In addition, we discuss how in vivo extracellular mechanical signals influence interactions between host cells and intracellular bacterial pathogens. Examples of such signals include shear stresses caused by fluid flow over the surface of cells and variable stiffness of the extracellular matrix on which cells are anchored. We highlight bioengineering-inspired tools and techniques that can be used to measure host cell mechanics during infection. These allow for the interrogation of how mechanical signals can modulate infection alongside biochemical signals. We hope that this review will inspire the microbiology community to embrace those tools in future studies so that host cell biomechanics can be more readily explored in the context of infection studies.
Insights
Mechanical forces significantly impact host-pathogen interactions, influencing infectious disease progression. Understanding cellular biomechanics is crucial for developing new strategies against bacterial pathogens.
Area of Science:
- Microbiology
- Biophysics
- Cell Biology
Background:
- Host-pathogen interactions involve chemical and mechanical signals.
- While biochemical aspects are well-studied, mechanical forces in infection are less understood.
- Bacterial pathogens can manipulate host cell mechanics for survival and spread.
Purpose of the Study:
- To review recent findings on mechanical forces in host-pathogen interactions.
- To explore how host cell biomechanics influence pathogen dissemination.
- To discuss the role of extracellular mechanical signals in infection.
Main Methods:
- Review of current literature on host cell mechanics and infection.
- Discussion of bioengineering tools for measuring cellular biomechanics during infection.
- Analysis of mechanical signals like shear stress and matrix stiffness.
Main Results:
- Host cell mechanical forces can either promote or hinder intracellular bacterial pathogen spread.
- Extracellular mechanical signals, such as fluid shear stress and matrix stiffness, modulate host-pathogen interactions.
- Bioengineering techniques enable the measurement of host cell mechanics during infection.
Conclusions:
- Mechanical forces are a critical, yet underappreciated, component of host-pathogen interactions.
- Investigating host cell biomechanics alongside biochemical signals offers new insights into infection.
- Adoption of bioengineering tools can advance the study of infection mechanics in microbiology.
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