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Burkart, G.

Publications and source records attributed to Burkart, G..

2 recordsLinked to original sources

N-terminal phosphorylation inhibits Arabidopsis katanin and affects vegetative and reproductive development in opposite ways

Katanin is an evolutionarily conserved microtubule-severing enzyme that is essential for cytoskeletal remodeling throughout the plant life cycle. However, the molecular mechanisms that tune katanin activity to meet distinct cellular requirements remain unclear. Here, we demonstrate that N-terminal phosphorylation of the Arabidopsis thaliana p60 katanin subunit (KTN1) serves as a key regulatory switch controlling microtubule severing during vegetative and reproductive development. Using in vitro biochemical assays, we show that combined phosphorylation of three conserved serine residues (S92, S147, S199) inhibits KTN1s microtubule-severing activity by reducing both microtubule-binding affinity and ATPase activity. Strikingly, phosphomimetic (DDD) and phosphonull (AAA) versions of KTN1 exhibit opposite developmental phenotypes. The constitutively active AAA mutant rescues defects in cortical microtubule organization and vegetative growth but leads to abnormal meiotic spindles, reduced pollen viability, and defective pollen tube growth, resulting in low male fertility. Conversely, the catalytically impaired DDD mutant fails to restore vegetative growth but supports normal male fertility. These findings reveal that phosphorylation differentially modulates KTN1 activity to balance the opposing requirements for high microtubule severing during interphase cell expansion versus limited severing during meiotic cell divisions, providing a sophisticated mechanism to coordinate cytoskeletal dynamics with plant developmental programs.

cell biology↗

Microtubule bundling by MAP65-1 protects against severing by inhibiting the binding of katanin

The microtubule-severing enzyme katanin regulates the organization and turnover of microtubule arrays by the localized breakdown of microtubule polymers. In land plants, katanin (KTN1) activity is essential for the formation of linearly organized cortical microtubule arrays which determine the axis of cell expansion. Cell biological studies have shown that even though KTN1 binds to the sidewalls of single and bundled microtubules, severing activity is restricted to microtubule crossover and nucleation sites, indicating that cells contain protective mechanisms to prevent indiscriminate microtubule severing. Here, we show that the microtubule bundling protein MAP65-1 inhibits KTN1-mediated microtubule severing in vitro. Severing is inhibited at bundled microtubule segments and the severing rate of non-bundled microtubules is reduced by MAP65-1 in a concentration-dependent manner. Using various MAP65-1 mutant proteins, we demonstrate that efficient crosslinking of microtubules is crucial for this protective effect and that microtubule binding alone is not sufficient. Reduced severing due to microtubule bundling by MAP65-1 correlated to decreased binding of KTN1 to these microtubules. Taken together, our work reveals that crosslinking of microtubules by MAP65-1 confers resistance to severing by inhibiting the binding of katanin and identifies the structural features of MAP65-1 that are important for this activity.\n\nHighlight SummaryCortical microtubule bundles resist severing in vivo. Here, we show that crosslinking of microtubules by MAP65-1 inhibits severing in a dose-dependent manner by preventing katanin from binding to these microtubules.

cell biology↗