Related Experiment Video
Updated: May 23, 2026

Preparing Lamellae from Vitreous Biological Samples Using a Dual-Beam Scanning Electron Microscope for Cryo-Electron Tomography
Published on: August 5, 2021
Conserved terminal organelle morphology and function in Mycoplasma penetrans and Mycoplasma iowae
Dominika A Jurkovic1, Jaime T Newman, Mitchell F Balish
1Department of Microbiology, Miami University, Oxford, OH, USA.
Abstract:
Within the genus Mycoplasma are species whose cells have terminal organelles, polarized structures associated with cytadherence and gliding motility. Mycoplasma penetrans, found mostly in HIV-infected patients, and Mycoplasma iowae, an economically significant poultry pathogen, are members of the Mycoplasma muris phylogenetic cluster. Both species have terminal organelles that interact with host cells, yet the structures in these species, or any in the M. muris cluster, remain uncharacterized. Time-lapse microcinematography of two strains of M. penetrans, GTU-54-6A1 and HF-2, and two serovars of M. iowae, K and N, show that the terminal organelles of both species play a role in gliding motility, with differences in speed within and between the two species. The strains and serovars also differed in their hemadsorption abilities that positively correlated with differences in motility speeds. No morphological differences were observed between M. penetrans and M. iowae by scanning electron microscopy (SEM). SEM and light microscopy of M. penetrans and M. iowae showed the presence of membranous filaments connecting pairs of dividing cells. Breaking of this filament during cell division was observed for M. penetrans by microcinematography, and this suggests a role for motility during division. The Triton X-100-insoluble fractions of M. penetrans and M. iowae consisted of similar structures that were unique compared to those identified in other mycoplasma species. Like other polarized mycoplasmas, M. penetrans and M. iowae have terminal organelles with cytadherence and gliding functions. The difference in function and morphology of the terminal organelles suggests that mycoplasmas have evolved terminal organelles independently of one another.
Insights
Mycoplasma penetrans and Mycoplasma iowae possess terminal organelles crucial for cell adhesion and motility. These structures, unique to the Mycoplasma muris cluster, show independent evolutionary paths in mycoplasma species.
Area of Science:
- Microbiology
- Cell Biology
- Evolutionary Biology
Background:
- Mycoplasma species exhibit terminal organelles involved in cytadherence and gliding motility.
- Mycoplasma penetrans (HIV patients) and Mycoplasma iowae (poultry pathogen) belong to the Mycoplasma muris cluster and possess uncharacterized terminal organelles.
Purpose of the Study:
- To characterize the terminal organelles of Mycoplasma penetrans and Mycoplasma iowae.
- To investigate the role of these organelles in motility and cell division.
- To compare the evolution of terminal organelles across Mycoplasma species.
Main Methods:
- Time-lapse microcinematography to observe motility and cell division.
- Scanning Electron Microscopy (SEM) for morphological analysis.
- Biochemical fractionation (Triton X-100) to isolate and analyze organelle structures.
Main Results:
- Terminal organelles in both species are essential for gliding motility, with varying speeds observed.
- Hemadsorption abilities correlated positively with motility speeds.
- SEM revealed no morphological differences, but unique Triton X-100-insoluble structures were identified.
- Membranous filaments connecting dividing cells were observed, suggesting a role for motility in cell division.
Conclusions:
- Mycoplasma penetrans and Mycoplasma iowae utilize terminal organelles for cytadherence and gliding motility.
- The observed differences suggest independent evolution of terminal organelles within the Mycoplasma genus.
- Motility may play a role during cell division in Mycoplasma penetrans.
Related Concept Videos
Bacterial Phylum Tenericutes
Bacterial Phylum Planctomycetes
Microbial Morphologies
Structure of Porins
Prokaryotic Cells
Like eukaryotic cells, all prokaryotic cells are surrounded by a plasma membrane, have genetic material in the form of single, circular DNA, a cytoplasm that fills the interior of the cell, and ribosomes that synthesize proteins.
Prokaryotic cells
Like eukaryotic cells, all prokaryotic cells are surrounded by a plasma membrane, have genetic material in the form of single, circular DNA, a cytoplasm that fills the interior of the cell, and ribosomes that synthesize proteins.

