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1. Subcellular positioning during cell division and cell plate formation in maize

2. Redundant mechanisms in division plane positioning

3. A Course-Based Undergraduate Research Experience in CRISPR-Cas9 Experimental Design to Support Reverse Genetic Studies in Arabidopsis thaliana

4. Cortical microtubules contribute to division plane positioning during telophase in maize

5. The maize preligule band is subdivided into distinct domains with contrasting cellular properties prior to ligule outgrowth

6. Cell biology of primary cell wall synthesis in plants

7. A Course-Based Undergraduate Research Experience in CRISPR-Cas9 Experimental Design to Support Reverse Genetic Studies in Arabidopsis thaliana

8. The OPAQUE1/DISCORDIA2 myosin XI is required for phragmoplast guidance during asymmetric cell division in maize

10. Action at a distance: Defects in division plane positioning in the root meristematic zone affect cell organization in the differentiation zone

11. Cell cortex microtubules contribute to division plane positioning during telophase in maize

12. A Course-Based Undergraduate Research Experience for High-Throughput Reverse Genetic Studies in Arabidopsis Thaliana with CRISPR-Cas9

13. TANGLED1 mediates microtubule interactions that may promote division plane positioning in maize

14. Using Seed Chipping to Genotype Maize Kernels

15. In vitro Conditions for Dark Growth and Analysis of Maize Seedlings

16. The Microtubule-Associated Protein IQ67 DOMAIN5 Modulates Microtubule Dynamics and Pavement Cell Shape

17. An overview of plant division‐plane orientation

18. Staining Maize Epidermal Leaf Peels with Toluidine Blue O

19. A DII Domain-Based Auxin Reporter Uncovers Low Auxin Signaling during Telophase and Early G1

20. Cell-based model of the generation and maintenance of the shape and structure of the multi-layered shoot apical meristem of Arabidopsis thaliana

21. Predicting division planes of three-dimensional cells by soap-film minimization

22. Division Plane Orientation Defects Revealed by a Synthetic Double Mutant Phenotype

23. Proper division plane orientation and mitotic progression together allow normal growth of maize

24. Plant Cytokinesis : Terminology for Structures and Processes

25. The role of the cytoskeleton and associated proteins in determination of the plant cell division plane

26. Using Live-Cell Markers in Maize to Analyze Cell Division Orientation and Timing

27. Determination of Symmetric and Asymmetric Division Planes in Plant Cells

28. Architecture and development of the Neurospora crassa hypha – a model cell for polarized growth

29. Lack of the GTPase RHO-4 in Neurospora crassa causes a reduction in numbers and aberrant stabilization of microtubules at hyphal tips

30. Using Live-Cell Markers in Maize to Analyze Cell Division Orientation and Timing

31. The genome sequence of the filamentous fungus Neurospora crassa

32. The ham-2 Locus, Encoding a Putative Transmembrane Protein, Is Required for Hyphal Fusion in Neurospora crassa

33. Tangled localization at the cortical division site of plant cells occurs by several mechanisms

34. Genes encoding a striatin-like protein (ham-3) and a forkhead associated protein (ham-4) are required for hyphal fusion in Neurospora crassa

35. A Rho-type GTPase, rho-4, is required for septation in Neurospora crassa

36. Hyphal homing, fusion and mycelial interconnectedness

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