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解开复杂性的谜团:黄瓜(Cucumis sativus L.)茎韧皮部的结构与功能。

Complexity untwined: The structure and function of cucumber (Cucumis sativus L.) shoot phloem.

机构信息

Beijing Key Laboratory of Growth and Developmental Regulation for Protected Vegetable Crops, College of Horticulture, China Agricultural University, Beijing, 100193, China.

Plant Biology Section, School of Integrative Plant Science, Cornell University, Ithaca, NY, 14853, USA.

出版信息

Plant J. 2021 May;106(4):1163-1176. doi: 10.1111/tpj.15229. Epub 2021 May 12.

Abstract

Cucurbit phloem is complex, with large sieve tubes on both sides of the xylem (bicollateral phloem), and extrafascicular elements that form an intricate web linking the rest of the vasculature. Little is known of the physical interconnections between these networks or their functional specialization, largely because the extrafascicular phloem strands branch and turn at irregular angles. Here, export in the phloem from specific regions of the lamina of cucumber (Cucumis sativus L.) was mapped using carboxyfluorescein and C as mobile tracers. We also mapped vascular architecture by conventional microscopy and X-ray computed tomography using optimized whole-tissue staining procedures. Differential gene expression in the internal (IP) and external phloem (EP) was analyzed by laser-capture microdissection followed by RNA-sequencing. The vascular bundles of the lamina form a nexus at the petiole junction, emerging in a predictable pattern, each bundle conducting photoassimilate from a specific region of the blade. The vascular bundles of the stem interconnect at the node, facilitating lateral transport around the stem. Elements of the extrafascicular phloem traverse the stem and petiole obliquely, joining the IP and EP of adjacent bundles. Using pairwise comparisons and weighted gene coexpression network analysis, we found differences in gene expression patterns between the petiole and stem and between IP and EP, and we identified hub genes of tissue-specific modules. Genes related to transport were expressed primarily in the EP while those involved in cell differentiation and development as well as amino acid transport and metabolism were expressed mainly in the IP.

摘要

葫芦科韧皮部复杂,木质部两侧有大的筛管(双韧韧皮部),以及形成错综复杂网络的束间韧皮部,这些网络之间的物理连接及其功能特化知之甚少,主要是因为束间韧皮部的韧皮丝分支和转弯角度不规则。在这里,使用羧基荧光素和 C 作为移动示踪剂,对黄瓜(Cucumis sativus L.)叶片特定区域韧皮部的输出进行了定位。我们还通过常规显微镜和 X 射线计算机断层扫描,使用优化的整体组织染色程序对血管结构进行了定位。通过激光捕获显微切割和 RNA 测序分析了内部韧皮部(IP)和外部韧皮部(EP)的差异基因表达。叶片的维管束在叶柄连接处形成一个枢纽,以可预测的模式出现,每个束从叶片的特定区域输送光合同化物。茎的维管束在节点处相互连接,便于在茎周围进行横向运输。束间韧皮部的元素斜穿过茎和叶柄,连接相邻束的 IP 和 EP。通过成对比较和加权基因共表达网络分析,我们发现叶柄和茎之间以及 IP 和 EP 之间的基因表达模式存在差异,并鉴定了组织特异性模块的枢纽基因。与运输相关的基因主要在 EP 中表达,而与细胞分化和发育以及氨基酸运输和代谢相关的基因主要在 IP 中表达。

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