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Zhou, L.-Z.

Publications and source records attributed to Zhou, L.-Z..

2 recordsLinked to original sources

Maize stigmas react differently to self-/cross-pollination and fungal invasion

During sexual reproduction in flowering plants, rapid tip-growing pollen tubes travel from the stigma inside the maternal tissues of the pistil towards ovules. In maize, the stigma is highly elongated forming thread-like strands known as silks. Only compatible pollen tubes are supported to penetrate and to grow successfully through the transmitting tract of the silk to reach the ovules. Like pollen, fungal spores germinate at the surface of silks and generate tube-like structures (hyphae) penetrating silk tissue. To elucidate commonalities and differences between silk responses to various invaders, we compared growth behavior of the various invaders as well as the silk transcriptome after self-pollination, cross-pollination and infection using two different fungi. We report that self-pollination triggers especially senescence genes, while incompatible pollination using Tripsacum dactyloides leads to downregulation of rehydration genes, microtubule and modulation of cell wall-related genes explaining slower pollen tube growth and their arrest. Invasion by the ascomycete Fusarium graminearum triggers numerous defense responses including the activation of monolignol biosynthesis and NAC as well as WRKY transcription factor genes, while responses to the basidiomycete Ustilago maydis are generally much weaker. Cell wall and phytoalexin biosynthesis pathways were selected as examples to demonstrate usability of the data sets provided. One sentence summaryData sets are provided and analyzed to elucidate how maize stigmas (silks) respond to different biotic invaders including own and alien pollen tubes as well as hyphae of two different fungi.

plant biology↗

The RALF Signaling Pathway Regulates Cell Wall Integrity during Pollen Tube Growth in Maize

Autocrine signaling pathways regulated by RAPID ALKALINIZATION FACTORs (RALFs) control cell wall integrity during pollen tube germination and growth in Arabidopsis. To investigate the role of pollen-specific RALFs in another plant species, we combined gene expression data with phylogenetic and biochemical studies to identify candidate orthologs in maize. We show that Clade IB ZmRALF2/3 mutants, but not that of Clade III ZmRALF1/5 caused cell wall instability in the sub-apical region of the growing pollen tube. ZmRALF2/3 are mainly located to the cell wall and are partially able to complement the pollen germination defect of their Arabidopsis orthologs AtRALF4/19. Mutations in ZmRALF2/3 compromise pectin distribution pattern leading to altered cell wall thickness, hyperphosphorylation of ZmPEX cell wall proteins and pollen tube burst. Clade IB, but not Clade III ZmRALFs are capable to interact with pollen-specific CrRLK1L receptor kinases ZmFERL4/7/9 and GPI-anchored co-receptors ZmLLG1/2 at similar binding affinities. In contrast, binding affinity to ZmPEX2/4 cell wall proteins is about five times higher. Based on these data, we now propose a dosage-dependent model showing how Clade IB RALFs act as extracellular sensors to regulate cell wall integrity and thickness during pollen tube growth in plants. One sentence summaryPollen-specific RALFs interact at different binding affinities with receptor kinases, GPI-anchored proteins and cell wall proteins to regulate cell wall integrity during pollen tube growth in maize.

developmental biology↗