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Microtubule distribution in dv, a maize meiotic mutant defective in the prophase to metaphase transition
1Department of Molecular and Cell Biology, University of California, Berkeley 94720.
Abstract:
Microsporogenesis in Zea mays, the meiotic reduction of diploid sporocytes to haploid microspores, proceeds through a well-defined developmental sequence. The ability to generate mutants that affect the process makes this an ideal system for elucidating the role of the cytoskeleton during plant development. We have used immunofluorescence microscopy to compare microtubule distribution in wild-type and mutant microsporocytes. During normal meiosis the distribution of microtubules follows a specific temporal and spatial pattern that reflects the polar nature of microspore formation. Perinuclear microtubule staining increases and the nucleus elongates in the future spindle axis during late prophase I. Metaphase I spindles with highly focused poles align along the long axis of the anther locule. Cytokinesis occurs perpendicular to the spindle axis. The second division axis shifts 90 degrees with respect to the first division plane, thereby yielding an isobilateral tetrad of microspores. Microtubule distribution patterns during meiosis suggest that a nuclear envelope-associated microtubule organizing center (MTOC) controls the organization of cytoplasmic microtubules and contributes to spindle formation. The meiotic mutant dv is defective in the transition from a prophase microtubule array to a metaphase spindle. Instead of converging to form focused poles, the metaphase spindle poles remain diffuse as in prometaphase. This defect correlates with several abnormalities in subsequent developmental events including the formation of multinucleate daughter cells, multiple microspindles during meiosis II, multiple phragmoplasts, polyads of microspores, and cytoplasmic microtubule foci. These results suggest that dv is a mutation that affects MTOC organization.
Insights
The study reveals that the dv mutation in Zea mays disrupts microtubule organization during meiosis, impacting microspore development. This highlights the critical role of microtubule organizing centers in plant cell division.
Area of Science:
- Plant Biology
- Cell Biology
- Genetics
Background:
- Microsporogenesis in Zea mays involves precise meiotic reduction and microtubule dynamics.
- The cytoskeleton, particularly microtubules, plays a crucial role in plant development.
- Mutant analysis provides insights into the function of cytoskeletal components.
Purpose of the Study:
- To investigate microtubule distribution during meiosis in wild-type and mutant Zea mays.
- To elucidate the role of the cytoskeleton and microtubule organizing centers (MTOCs) in microsporogenesis.
- To characterize the meiotic mutant dv and its effect on microtubule organization.
Main Methods:
- Immunofluorescence microscopy was used to visualize microtubule arrays.
- Comparison of microtubule distribution in wild-type and dv mutant microsporocytes.
- Analysis of meiotic progression and cytokinesis in Zea mays.
Main Results:
- Wild-type meiosis exhibits specific temporal and spatial microtubule patterns, including nuclear envelope-associated MTOCs.
- The dv mutant shows defects in transitioning from prophase microtubule arrays to metaphase spindles, with diffuse poles.
- dv mutant phenotypes include multinucleate cells, abnormal meiosis II spindles, multiple phragmoplasts, and polyads of microspores.
Conclusions:
- Microtubule distribution patterns suggest a nuclear envelope-associated MTOC controls cytoplasmic microtubules and spindle formation.
- The dv mutation likely affects MTOC organization, leading to meiotic defects.
- This study underscores the importance of MTOCs for accurate chromosome segregation and microspore development.