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Mai, Y.-X.

Publications and source records attributed to Mai, Y.-X..

2 recordsLinked to original sources

FX-Cell: a method for single-cell RNA sequencing on difficult-to-digest and cryopreserved plant samples

Single-cell RNA sequencing (scRNA-seq) in plants requires the isolation of high-quality protoplasts-- cells devoid of cell walls. However, many plant tissues and organs are resistant to enzymatic digestion, posing a significant barrier to advancing single-cell multi-omics research in plants. Furthermore, for many field-grown crops, the lack of immediate laboratory access presents another major challenge for protoplast preparation. To address these limitations, we developed the FX-Cell method and its derivatives, FXcryo-Cell and cryoFX-Cell, to enable scRNA-seq with both difficult-to-digest and cryopreserved plant samples. By optimizing the fixation buffer and minimizing RNA degradation, our approach ensures efficient cell wall digestion at high temperatures while maintaining high-quality single cells, even after long-term storage at -80{degrees}C, and circumvents use of nuclei, which are not representative of the pool of translatable mRNAs. Using these methods, we successfully constructed high-quality cell atlases for rice tiller nodes, rhizomes of wild rice, and maize crown roots grown in field conditions. Moreover, these methods enable the accurate reconstruction of plant acute wounding responses at single-cell resolution. Collectively, these advancements expand the applicability of plant single-cell genomics across a wider range of species and tissues, paving the way for comprehensive Plant Cell Atlases for plant species.

plant biology↗

Transcriptional reactivation of the tRNASer/tRNATyr gene cluster in Arabidopsis thaliana root tip

Plants retain a repetitious tRNA gene content in their nuclear genome. How important are these individuals, how exactly plants orchestrate their usage, and for what purposes, is poorly understood. Arabidopsis thaliana chromosome 1 holds a cluster of tandemly repeated serine- and tyrosine-decoding tRNA genes (SYY cluster). They intersect with constitutive heterochromatin and are silenced in most parts of the plant. Yet, the natural conditions leading to their transcription remain unknown. Here, we resolve the tissular expression pattern of this cluster along seedling establishment. We show that the root cap columella and few adjacent lateral root cap cells are the main sources of SYY cluster tRNAs. The transcriptional reactivation of the SYY cluster occurs in these tissues although elevated DNA methylation levels. Furthermore, we evidence that these cells are able to accumulate high levels of a transgenic glycoprotein rich in serine, tyrosine, and proline, and that the CRISPR/Cas9 deletion of the SYY cluster alters the phenomenon. Altogether, our work sheds light on pioneering evidence of a developmental and cell-specific expression program for a plant tRNA gene. We provide new perspectives on the role of peculiar tRNA genes in conferring a potential for the high synthesis of glycoproteins in protective tissues of the meristem.

plant biology↗