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Chlebowski, M.

Publications and source records attributed to Chlebowski, M..

2 recordsLinked to original sources

NudC regulated Lis1 stability is essential for maintenance of dynamic microtubule ends in the axon terminal

Axon terminal structure is critical for neuronal function. This cellular compartment houses synaptic terminals and is a site of high metabolic and functional demand. Axon terminals are also the site of a change in microtubule structure within the neuron. Microtubule stability is decreased relative to the axon shaft due to an enrichment of microtubule plus ends and increase in microtubule dynamics. These dynamic microtubule plus ends have many functions including serving as a docking site for the microtubule motor protein complex Cytoplasmic dynein. Here, we report an unexplored function of the dynein motor in axon terminals: regulation of microtubule stability. Using a forward genetic screen, we identified a mutant with abnormal axon terminal structure due to a loss of function mutation in the dynein interacting protein NudC. We show that the primary function of NudC in the axon terminal is as a chaperone for the protein Lis1. Loss of NudC results in decreased Lis1 protein in this neuronal compartment. Decreased Lis1 in nudc mutants causes dynein/dynactin accumulation and increased microtubule stability in axon terminals. Microtubules in the proximal axon are unaffected. Abnormal microtubule stability and structure can be suppressed by pharmacologically inhibiting dynein, implicating excess dynein motor activity as causal in the enhanced axon terminal microtubule stability. Together, our data support a model in which local NudC-Lis1 modulation of dynein motor activity is critical for regulation of microtubule stability in the axon terminal.

neuroscience↗

The class I TCP transcription factor AtTCP8 is a modulator of phytohormone-responsive signaling networks

The plant-specific TEOSINTE BRANCHED1/ CYCLOIDEA/ PROLIFERATING CELL FACTOR (TCP) transcription factor family is most closely associated with regulating plant developmental programs. Recently, TCPs were also shown to mediate host immune signaling, both as targets of pathogen virulence factors and regulators of plant defense genes. However, any comprehensive characterization of TCP gene targets is still lacking. Loss of the class I TCP AtTCP8 attenuates early immune signaling, and when combined with mutations in AtTCP14 and AtTCP15, additional layers of defense signaling in Arabidopsis thaliana. Here we focus on TCP8, the most poorly characterized of the three to date. We use chIP and RNA-sequencing to identify TCP8-bound gene promoters and differentially regulated genes in the tcp8 mutant, data sets that are heavily enriched in signaling components for multiple phytohormone pathways, including brassinosteroids (BRs), auxin, and jasmonic acid (JA). Using BR signaling as a representative example, we show that TCP8 directly binds and activates the promoters of the key BR transcriptional regulators BZR1 and BZR2/BES1. Furthermore, tcp8 mutant seedlings exhibit altered BR-responsive growth patterns and complementary reductions in BZR2 transcript levels, while the expressed protein demonstrates BR-responsive changes in subnuclear localization and transcriptional activity. We conclude that one explanation for the significant targeting of TCP8 alongside other TCP family members by pathogen effectors may lie in its role as a modulator of brassinosteroid and other plant hormone signaling pathways. One Sentence SummaryOne member of a pathogen-targeted transcription factor family modulates phytohormone response networks and displays brassinosteroid-dependent cellular location and activity.

plant biology↗