Force and Stepwise Movements of Gliding Motility in Human Pathogenic Bacterium Mycoplasma pneumoniae

Masaki Mizutani1, Yuya Sasajima1, Makoto Miyata1,2

  • 1Graduate School of Science, Osaka City University, Osaka, Japan.

Frontiers in Microbiology
|October 11, 2021
PubMed

Insights

Mycoplasma pneumoniae uses a unique gliding motility mechanism essential for infection. Researchers measured its force, revealing a weak but efficient process linked to ATP hydrolysis.

Area of Science:

  • Microbiology
  • Biophysics
  • Cellular Biology

Background:

  • Mycoplasma pneumoniae is a human pathogen that utilizes gliding motility for infection.
  • This motility involves binding to sialylated oligosaccharides on host cells.
  • Understanding the mechanics of gliding is crucial for understanding the infectious process.

Purpose of the Study:

  • To measure the stall force and analyze the step-wise movement of Mycoplasma pneumoniae during gliding motility.
  • To investigate the relationship between binding activity, gliding speed, and force generation.
  • To elucidate the molecular mechanism underlying M. pneumoniae gliding.

Main Methods:

  • Optical tweezers were used to manipulate M. pneumoniae cells attached to beads.
  • Stall force measurements were performed on two different strains (M129 and FH).
  • Gliding speed and step-wise movements were analyzed under varying concentrations of sialylated oligosaccharides.

Main Results:

  • Stall forces for M129 and FH strains were measured at 23.7 pN and 19.7 pN, respectively.
  • Binding activity and gliding speed were not directly correlated with gliding force.
  • Stepwise movements of 14-19 nm were observed, requiring 25-35 steps per second for normal gliding.
  • A force of 2.5 pN per leg was estimated, with work performed per step being 16-30% of ATP hydrolysis free energy.

Conclusions:

  • Mycoplasma pneumoniae gliding motility is a weak but efficient process.
  • The mechanism involves discrete steps likely powered by ATP hydrolysis.
  • Binding affinity to sialylated oligosaccharides influences gliding speed through drag forces.

Related Concept Videos

Intracellular Movement of Viruses and Bacteria01:10

Intracellular Movement of Viruses and Bacteria

Intracellular bacteria and viruses often comprise a group of highly infectious pathogens that can cause several diseases. Bacterial pathogens include those belonging to the genus Rickettsia responsible for conditions such as rocky mountain spotted fever and the Mediterranean spotted fever; Chlamydia, a genus responsible for a sexually transmitted disease; Coxiella burnetii, an agent responsible for Q fever. Viral pathogens include vaccinia—a poxvirus, and herpes simplex virus—a...
3.0K
Fimbriae, Pili, and Axial Filaments01:28

Fimbriae, Pili, and Axial Filaments

Fimbriae and pili are specialized bacterial surface structures that play pivotal roles in adhesion, genetic exchange, and motility. Composed primarily of pilin protein, these hairlike appendages are crucial for bacterial survival and pathogenicity in various environments.Fimbriae: Adhesion and PathogenicityFimbriae are fine, filamentous structures measuring 2–10 nanometers in diameter and are densely distributed on the bacterial cell surface. They facilitate bacterial adhesion to abiotic...
629
Role of Myosin in Cell Migration01:18

Role of Myosin in Cell Migration

Myosins are multimeric motor proteins involved in various cellular processes such as migration, adhesion, and proliferation. Myosin II is the most common type in animal cells, which binds and cross-links actin filaments.
Myosin II  is a hexamer comprising two heavy chains with globular heads and coiled-coil tails, two regulatory light chains, and two essential light chains. The ATPase sites on the myosin heads hydrolyze ATP, and the released phosphate generates the force for contraction....
2.6K
Flagella and Motility in Bacteria01:18

Flagella and Motility in Bacteria

Flagella are specialized, thread-like structures that extend from a bacteria's cell envelope. They play a crucial role in motility and chemotaxis. Their structural organization and functioning exemplify sophisticated biological engineering, enabling bacterial survival and adaptability in diverse environments.Structure of the FlagellumA bacterial flagellum consists of three key components: the filament, the hook, and basal body. The filament, a long, helical structure composed of repeating...
1.0K
Mechanism of Ciliary Motion01:05

Mechanism of Ciliary Motion

The ciliary structures were first seen in 1647 by Antonie Leeuwenhoek while observing the protozoans. In lower organisms, these appendages are responsible for cell movement, while in higher organisms, these appendages help in the movement of the extracellular fluids within the body cavities.
The cilia are made up of microtubules in a 9+2 arrangement, with nine microtubule doublet ring bundles, surrounding a pair of central singlet microtubule bundles. The doublet microtubule bundles are...
4.1K
Mechanism of Lamellipodia Formation01:31

Mechanism of Lamellipodia Formation

Cells migrating in response to external stimuli form lamellipodia, which are thin membrane protrusions supported by a mesh of linked, branched, or unbranched actin filaments. These actin filaments interact with myosin motor proteins, creating the dynamic actomyosin complex within the cytoskeleton. Contractility, or the ability to generate contractile stress, is inherent to the actomyosin complex. It helps cells detect the stiffness of the surrounding ECM and exert contractile force for...
2.9K