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Updated: Nov 9, 2025

Imaging the Neutrophil Phagosome and Cytoplasm Using a Ratiometric pH Indicator
Published on: April 5, 2017
Microtubules and Dynein Regulate Human Neutrophil Nuclear Volume and Hypersegmentation During H. pylori Infection
Stephanie L Silva-Del Toro1,2, Lee-Ann H Allen1,2,3,4,5
1Inflammation Program of the University of Iowa, Iowa City, IA, United States.
Abstract:
Neutrophils (also called polymorphonuclear leukocytes, PMNs) are heterogeneous and can exhibit considerable phenotypic and functional plasticity. In keeping with this, we discovered previously that Helicobacter pylori infection induces N1-like subtype differentiation of human PMNs that is notable for profound nuclear hypersegmentation. Herein, we utilized biochemical approaches and confocal and super-resolution microscopy to gain insight into the underlying molecular mechanisms. Sensitivity to inhibition by nocodazole and taxol indicated that microtubule dynamics were required to induce and sustain hypersegmentation, and super-resolution Stimulated Emission Depletion (STED) imaging demonstrated that microtubules were significantly more abundant and longer in hypersegmented cells. Dynein activity was also required, and enrichment of this motor protein at the nuclear periphery was enhanced following H. pylori infection. In contrast, centrosome splitting did not occur, and lamin B receptor abundance and ER morphology were unchanged. Finally, analysis of STED image stacks using Imaris software revealed that nuclear volume increased markedly prior to the onset of hypersegmentation and that nuclear size was differentially modulated by nocodazole and taxol in the presence and absence of infection. Taken together, our data define a new mechanism of hypersegmentation that is mediated by microtubules and dynein and as such advance understanding of processes that regulate nuclear morphology.
Insights
Helicobacter pylori infection causes neutrophils (polymorphonuclear leukocytes) to develop segmented nuclei. Microtubule dynamics and dynein motor proteins are key to this nuclear hypersegmentation.
Area of Science:
- Cell Biology
- Immunology
Background:
- Neutrophils (polymorphonuclear leukocytes, PMNs) display significant plasticity.
- H. pylori infection induces N1-like PMN differentiation with nuclear hypersegmentation.
Purpose of the Study:
- To investigate the molecular mechanisms of H. pylori-induced neutrophil nuclear hypersegmentation.
- To elucidate the role of microtubules and dynein in regulating nuclear morphology.
Main Methods:
- Biochemical approaches
- Confocal and super-resolution microscopy (STED)
- Pharmacological inhibition (nocodazole, taxol)
- Image analysis software (Imaris)
Main Results:
- Microtubule dynamics and dynein activity are essential for inducing and maintaining nuclear hypersegmentation.
- Hypersegmented neutrophils exhibit increased microtubule abundance and length.
- Dynein motor protein is enriched at the nuclear periphery post-H. pylori infection.
- Nuclear volume increases before hypersegmentation onset.
Conclusions:
- A novel mechanism of neutrophil nuclear hypersegmentation involving microtubules and dynein is defined.
- This study advances the understanding of nuclear morphology regulation in neutrophils during infection.
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