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2
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本文引用的文献

1
Cell Wall Composition, Biosynthesis and Remodeling during Pollen Tube Growth.花粉管生长过程中的细胞壁组成、生物合成与重塑
Plants (Basel). 2013 Mar 7;2(1):107-47. doi: 10.3390/plants2010107.
2
Homogalacturonan-modifying enzymes: structure, expression, and roles in plants.同型半乳糖醛酸修饰酶:植物中的结构、表达及作用
J Exp Bot. 2014 Oct;65(18):5125-60. doi: 10.1093/jxb/eru272. Epub 2014 Jul 23.
3
The cell wall pectic polymer rhamnogalacturonan-II is required for proper pollen tube elongation: implications of a putative sialyltransferase-like protein.细胞壁果胶聚合物鼠李半乳糖醛酸聚糖-II是花粉管正常伸长所必需的:一种假定的唾液酸转移酶样蛋白的影响。
Ann Bot. 2014 Oct;114(6):1177-88. doi: 10.1093/aob/mcu093. Epub 2014 May 13.
4
Homogalacturonan deesterification during pollen-ovule interaction in Larix decidua Mill.: an immunocytochemical study.欧洲落叶松花粉-胚珠相互作用过程中同型半乳糖醛酸聚糖的去酯化作用:一项免疫细胞化学研究
Planta. 2014 Jul;240(1):195-208. doi: 10.1007/s00425-014-2074-6. Epub 2014 May 4.
5
Arabidopsis PECTIN METHYLESTERASEs contribute to immunity against Pseudomonas syringae.拟南芥多聚半乳糖醛酸甲酯酶参与对丁香假单胞菌的免疫反应。
Plant Physiol. 2014 Feb;164(2):1093-107. doi: 10.1104/pp.113.227637. Epub 2013 Dec 23.
6
Improvements in immunostaining samples embedded in methacrylate: localization of microtubules and other antigens throughout developing organs in plants of diverse taxa.改良的丙烯酰胺嵌入免疫染色样本:定位在不同分类群植物发育器官中的微管和其他抗原。
Planta. 1992 Jun;187(3):405-13. doi: 10.1007/BF00195665.
7
Proteomics profiling reveals novel proteins and functions of the plant stigma exudate.蛋白质组学分析揭示了植物柱头分泌物的新蛋白质和功能。
J Exp Bot. 2013 Dec;64(18):5695-705. doi: 10.1093/jxb/ert345. Epub 2013 Oct 22.
8
Signaling in pollen tube growth: crosstalk, feedback, and missing links.花粉管生长中的信号转导:串扰、反馈和缺失环节。
Mol Plant. 2013 Jul;6(4):1053-64. doi: 10.1093/mp/sst070.
9
Pathfinding in angiosperm reproduction: pollen tube guidance by pistils ensures successful double fertilization.被子植物繁殖中的寻路:雌蕊对花粉管的引导确保了成功的双受精。
Wiley Interdiscip Rev Dev Biol. 2012 Jan-Feb;1(1):96-113. doi: 10.1002/wdev.6. Epub 2011 Nov 18.
10
Effect of water deficit on the cell wall of the date palm (Phoenix dactylifera 'Deglet nour', Arecales) fruit during development.水分亏缺对发育过程中枣椰树(Phoenix dactylifera 'Deglet nour',棕榈科)果实细胞壁的影响。
Plant Cell Environ. 2013 May;36(5):1056-70. doi: 10.1111/pce.12042. Epub 2012 Dec 17.

果胶甲酯酶48参与拟南芥花粉粒萌发。

PECTIN METHYLESTERASE48 is involved in Arabidopsis pollen grain germination.

作者信息

Leroux Christelle, Bouton Sophie, Kiefer-Meyer Marie-Christine, Fabrice Tohnyui Ndinyanka, Mareck Alain, Guénin Stéphanie, Fournet Françoise, Ringli Christoph, Pelloux Jérôme, Driouich Azeddine, Lerouge Patrice, Lehner Arnaud, Mollet Jean-Claude

机构信息

Laboratoire Glycobiologie et Matrice Extracellulaire, Normandie Université, Institute for Research and Innovation in Biomedicine, Végétal, Agronomie, Sol, et Innovation, 76821 Mont-Saint-Aignan, France (C.L., M.-C.K.-M., A.M., A.D., P.L., A.L., J.-C.M.);Unité Biologie des Plantes et Innovation (S.B., S.G., F.F., J.P.) and Centre de Ressources Régionales en Biologie Moléculaire (S.G.), Université de Picardie Jules Verne, 80039 Amiens, France; andInstitute of Plant Biology, University of Zürich, 8008 Zurich, Switzerland (T.N.F., C.R.).

Laboratoire Glycobiologie et Matrice Extracellulaire, Normandie Université, Institute for Research and Innovation in Biomedicine, Végétal, Agronomie, Sol, et Innovation, 76821 Mont-Saint-Aignan, France (C.L., M.-C.K.-M., A.M., A.D., P.L., A.L., J.-C.M.);Unité Biologie des Plantes et Innovation (S.B., S.G., F.F., J.P.) and Centre de Ressources Régionales en Biologie Moléculaire (S.G.), Université de Picardie Jules Verne, 80039 Amiens, France; andInstitute of Plant Biology, University of Zürich, 8008 Zurich, Switzerland (T.N.F., C.R.)

出版信息

Plant Physiol. 2015 Feb;167(2):367-80. doi: 10.1104/pp.114.250928. Epub 2014 Dec 18.

DOI:10.1104/pp.114.250928
PMID:25524442
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4326738/
Abstract

Germination of pollen grains is a crucial step in plant reproduction. However, the molecular mechanisms involved remain unclear. We investigated the role of PECTIN METHYLESTERASE48 (PME48), an enzyme implicated in the remodeling of pectins in Arabidopsis (Arabidopsis thaliana) pollen. A combination of functional genomics, gene expression, in vivo and in vitro pollen germination, immunolabeling, and biochemical analyses was used on wild-type and Atpme48 mutant plants. We showed that AtPME48 is specifically expressed in the male gametophyte and is the second most expressed PME in dry and imbibed pollen grains. Pollen grains from homozygous mutant lines displayed a significant delay in imbibition and germination in vitro and in vivo. Moreover, numerous pollen grains showed two tips emerging instead of one in the wild type. Immunolabeling and Fourier transform infrared analyses showed that the degree of methylesterification of the homogalacturonan was higher in pme48-/- pollen grains. In contrast, the PME activity was lower in pme48-/-, partly due to a reduction of PME48 activity revealed by zymogram. Interestingly, the wild-type phenotype was restored in pme48-/- with the optimum germination medium supplemented with 2.5 mm calcium chloride, suggesting that in the wild-type pollen, the weakly methylesterified homogalacturonan is a source of Ca(2+) necessary for pollen germination. Although pollen-specific PMEs are traditionally associated with pollen tube elongation, this study provides strong evidence that PME48 impacts the mechanical properties of the intine wall during maturation of the pollen grain, which, in turn, influences pollen grain germination.

摘要

花粉粒萌发是植物繁殖中的关键步骤。然而,其中涉及的分子机制仍不清楚。我们研究了果胶甲酯酶48(PME48)的作用,该酶与拟南芥花粉中果胶的重塑有关。对野生型和Atpme48突变体植株进行了功能基因组学、基因表达、体内和体外花粉萌发、免疫标记及生化分析。我们发现AtPME48在雄配子体中特异性表达,是干燥和吸水花粉粒中表达量第二高的PME。来自纯合突变系的花粉粒在体外和体内的吸水和萌发均显著延迟。此外,许多花粉粒出现两个萌发尖端,而野生型只有一个。免疫标记和傅里叶变换红外分析表明,pme48 - / - 花粉粒中同型半乳糖醛酸的甲酯化程度更高。相反,pme48 - / - 中的PME活性较低,部分原因是酶谱显示PME48活性降低。有趣的是,在添加了2.5 mM氯化钙的最佳萌发培养基中,pme48 - / - 的野生型表型得以恢复,这表明在野生型花粉中,弱甲酯化的同型半乳糖醛酸是花粉萌发所需钙离子的来源。虽然传统上认为花粉特异性PME与花粉管伸长有关,但本研究提供了有力证据,表明PME48在花粉粒成熟过程中影响内壁的机械性能,进而影响花粉粒萌发。