Deep tissue profiling of Populus stem at single nucleus level reveals uncharacterized cell types and cell-specific gene regulatory networks

IF 10.1 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Henry W. Schmidt, Daniel Conde, Wendell J. Pereira, Paolo M. Triozzi, Kelly M. Balmant, Christopher Dervinis, Matias Kirst
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Abstract

Single-cell genomics is revolutionizing plant developmental biology, enabling the transcriptome profiling of individual cells and their lineage relationships. However, plant cell walls polymers hamper the dissociation and analysis of intact cells. This rigid structure can conceal cell types embedded in complex, lignified, multi-cell layered tissues such as those undergoing secondary growth. Their absence leads to incomplete single-cell genomic atlases and lineage inferences. We isolate nuclei to capture transcripts representing the diversity of cells throughout the stem of the woody perennial Populus trichocarpa generating a high-resolution transcriptome atlas of cell types and lineage trajectories. RNA sequencing of 11,673 nuclei identifies 26 clusters representing cell types in the cambium, xylem, phloem, and periderm. Comparative analysis with protoplast-derived transcriptome data reveals significant biases, with nuclei-based sequencing providing a higher representation of cells in lignified inner xylem tissues. Among previously underrepresented types, we uncover vessel-associated cells (VAC), a largely uncharacterized parenchyma subtype and the terminus of a xylem cell lineage. Gene regulatory analysis identifies a VAC-specific network and the Populus MYB48 as its primary regulator. Functional validation of MYB48 knockout mutants show an increase in vessel number and size, pointing to a role of VACs in vessel development. Our study demonstrates the capture and transcriptome characterization of cell types embedded in plant secondary growth, identifying novel regulators of xylem development and stress adaptation. The discovery of MYB48 as a key regulator of VAC function highlights a previously uncharacterized mechanism influencing vessel development, with applications to improving wood formation and stress resilience.
杨树茎在单核水平上的深层组织分析揭示了未表征的细胞类型和细胞特异性基因调控网络
单细胞基因组学正在彻底改变植物发育生物学,使单个细胞的转录组分析及其谱系关系成为可能。然而,植物细胞壁聚合物阻碍了完整细胞的解离和分析。这种刚性结构可以隐藏嵌入复杂的、木质化的、多细胞层状组织中的细胞类型,例如那些正在进行二次生长的细胞。它们的缺失导致单细胞基因组图谱和谱系推断不完整。我们从多年生木本毛杨(Populus trichocarpa)的茎中分离细胞核以捕获代表细胞多样性的转录本,生成细胞类型和谱系轨迹的高分辨率转录组图谱。11,673个细胞核的RNA测序鉴定出形成层、木质部、韧皮部和周皮的26个细胞簇。与原生质体衍生的转录组数据的比较分析显示了显著的偏差,基于核的测序提供了木质化内层木质部组织中细胞的更高代表性。在以前未被充分代表的类型中,我们发现了血管相关细胞(VAC),这是一种很大程度上未被表征的薄壁细胞亚型和木质部细胞谱系的末端。基因调控分析确定了一个vaca特异性网络,杨树MYB48是其主要调控因子。MYB48敲除突变体的功能验证显示血管数量和大小增加,表明VACs在血管发育中的作用。我们的研究展示了植物次生生长中嵌入的细胞类型的捕获和转录组特征,确定了木质部发育和逆境适应的新调节因子。MYB48作为VAC功能的关键调节因子的发现,突出了一种以前未被发现的影响血管发育的机制,并应用于改善木材形成和应力恢复能力。
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来源期刊
Genome Biology
Genome Biology Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
21.00
自引率
3.30%
发文量
241
审稿时长
2 months
期刊介绍: Genome Biology stands as a premier platform for exceptional research across all domains of biology and biomedicine, explored through a genomic and post-genomic lens. With an impressive impact factor of 12.3 (2022),* the journal secures its position as the 3rd-ranked research journal in the Genetics and Heredity category and the 2nd-ranked research journal in the Biotechnology and Applied Microbiology category by Thomson Reuters. Notably, Genome Biology holds the distinction of being the highest-ranked open-access journal in this category. Our dedicated team of highly trained in-house Editors collaborates closely with our esteemed Editorial Board of international experts, ensuring the journal remains on the forefront of scientific advances and community standards. Regular engagement with researchers at conferences and institute visits underscores our commitment to staying abreast of the latest developments in the field.
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