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Updated: Sep 13, 2025

Reconstitution of Basic Mitotic Spindles in Spherical Emulsion Droplets
Published on: August 13, 2016
Zea mays Meiotic Spindle Ultrastructure Reveals Kinetochore-Microtubule Interface and Embedded Membrane Components
Subin Myong1, Jenna K Cosby1, Brianna Padilla1
1Department of Biology, Hamilton College, Clinton, New York, USA.
Abstract:
Introduction: Spindles are microtubules-based machines whose primary function is to accurately segregate chromosomes in both mitotic and meiotic cell division. The structure of spindles is critical for their function; errors in morphology or attachment to chromosomes lead to aneuploidy, potentially resulting in disease, infertility, and lethality. Electron microscopy studies have yielded fine-detail spindle ultrastructures in many plant and animal species, but no studies have investigated the spindle of Zea mays, a critical crop, and cytogenetic model system.
Methods:
Here we use electron tomography (ET), reconstruction, and modeling to obtain three-dimensional, nanometer-resolution of the Z. mays meiotic spindle. Structures such as microtubules, kinetochores, vesicles, membrane channels, and nuclear envelope were modeled through a partial spindle reconstruction, and confirmed using immunostaining and live fluorescence microscopy.
Results:
ET revealed that maize spindles contain 8-18 kinetochore microtubules (kMTs) per kinetochore, which are approximately 776 nm in diameter and 316 nm in depth. Small ∼37 nm vesicles were identified, as well as larger (∼5 µm long, 800 nm wide) membrane structures with channels that allow spindle microtubules to pass through. These membrane channels stain positively for the ER-marker protein disulfide isomerase. Imaging of prophase meiotic cells revealed a cross-hatch microtubule arrangement in the perinuclear ring on the external surface of the nuclear envelope, which also contained type II nuclear grooves with transnuclear microtubules passing from the nucleus to the cytoplasm.
Conclusions:
Z. mays meiotic spindles are similar to animal counterparts with a comparable number of kMTs and pre-spindle transnuclear microtubules but also plant-specific features such as Golgi-derived vesicles to assist cell plate formation, internal ER membrane channels, and a perinuclear microtubule ring that aids spindle assembly. Maize kinetochores have an electron-diffuse ball in cup morphology that is comparable in size to Drosophila kinetochores and larger than mammalian kinetochores.
.Insights
This study reveals the 3D structure of Zea mays meiotic spindles, identifying plant-specific features like internal membrane channels and a unique microtubule ring, crucial for chromosome segregation.
Area of Science:
- Cell Biology
- Cytogenetics
- Structural Biology
Background:
- Cell division relies on spindle apparatus for accurate chromosome segregation.
- Spindle structure is critical; errors lead to aneuploidy, disease, and infertility.
- Zea mays (maize) is a vital crop and model system, yet its meiotic spindle structure remains uncharacterized.
Purpose of the Study:
- To elucidate the three-dimensional ultrastructure of the Zea mays meiotic spindle at nanometer resolution.
- To identify and characterize key components and unique features of the maize meiotic spindle.
- To compare maize spindle structures with those of other organisms.
Main Methods:
- Electron tomography (ET) was employed to capture high-resolution 3D images of the maize meiotic spindle.
- Reconstruction and modeling techniques were used to visualize microtubules, kinetochores, and associated structures.
- Immunostaining and live fluorescence microscopy confirmed the modeled structures.
Main Results:
- Maize meiotic spindles feature 8-18 kinetochore microtubules (kMTs) per kinetochore.
- Unique structures observed include small vesicles (~37 nm) and large membrane channels (~5 µm long, 800 nm wide) containing microtubules, positive for ER markers.
- A perinuclear microtubule ring with a cross-hatch arrangement and nuclear grooves with transnuclear microtubules was identified.
Conclusions:
- Zea mays meiotic spindles share similarities with animal spindles, including kMT number and transnuclear microtubules.
- Plant-specific features include Golgi-derived vesicles for cell plate formation and internal ER membrane channels.
- The perinuclear microtubule ring aids spindle assembly, and maize kinetochores exhibit a distinct 'ball in cup' morphology.
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