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燕麦中光敏色素的免疫金电子显微镜观察:确定负责光敏色素隔离和增强沉降性的细胞内位点。

Immunogold electron microscopy of phytochrome in Avena: identification of intracellular sites responsible for phytochrome sequestering and enhanced pelletability.

作者信息

McCurdy D W, Pratt L H

出版信息

J Cell Biol. 1986 Dec;103(6 Pt 1):2541-50. doi: 10.1083/jcb.103.6.2541.

DOI:10.1083/jcb.103.6.2541
PMID:3536968
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2114580/
Abstract

Using monoclonal antibodies to the plant photoreceptor, phytochrome, we have investigated by immunogold electron microscopy the rapid, red light-induced, intracellular redistribution (termed "sequestering") of phytochrome in dark-grown Avena coleoptiles. Pre-embedding immunolabeling of 5-micron-thick cryosections reveals that sequestered phytochrome is associated with numerous, discrete structures of similar morphology. Specific labeling of these structures was also achieved by post-embedding ("on-grid") immunostaining of LR-White-embedded tissue, regardless of whether the tissue had been fixed chemically or by freeze substitution. The phytochrome-associated structures are globular to oval in shape, 200-400 nm in size, and are composed of amorphous, granular material. No morphologically identifiable membranes are present either surrounding or within these structures, which are often present as apparent aggregates that approach several micrometers in size. An immunogold labeling procedure has also been developed to identify the particulate, subcellular component with which phytochrome is associated in vitro as a consequence of irradiation of Avena coleoptiles before their homogenization. Structures with appearance similar to those identified in situ are the only components of the pelletable material that are specifically labeled with gold. We conclude that the association of phytochrome with these structures in Avena represents the underlying molecular event that ultimately is expressed both as red light-induced sequestering in vivo and enhanced pelletability of phytochrome detected in vitro.

摘要

利用针对植物光受体光敏色素的单克隆抗体,我们通过免疫金电子显微镜研究了在暗中生长的燕麦胚芽鞘中,光敏色素在红光诱导下的快速细胞内重新分布(称为“隔离”)。对5微米厚的冷冻切片进行包埋前免疫标记显示,被隔离的光敏色素与许多形态相似的离散结构相关联。通过对LR-White包埋组织进行包埋后(“在网格上”)免疫染色,也实现了对这些结构的特异性标记,无论组织是通过化学固定还是冷冻置换固定的。与光敏色素相关的结构呈球形至椭圆形,大小为200 - 400纳米,由无定形的颗粒物质组成。在这些结构的周围或内部均未发现形态上可识别的膜,这些结构通常以明显的聚集体形式存在,大小接近几微米。还开发了一种免疫金标记程序,以鉴定在燕麦胚芽鞘匀浆前照射后,光敏色素在体外与之相关的颗粒状亚细胞成分。外观与原位鉴定的结构相似的结构是可沉淀物质中唯一被金特异性标记的成分。我们得出结论,在燕麦中,光敏色素与这些结构的关联代表了潜在的分子事件,最终在体内表现为红光诱导的隔离,在体外表现为光敏色素可沉淀性增强。

相似文献

1
Immunogold electron microscopy of phytochrome in Avena: identification of intracellular sites responsible for phytochrome sequestering and enhanced pelletability.燕麦中光敏色素的免疫金电子显微镜观察:确定负责光敏色素隔离和增强沉降性的细胞内位点。
J Cell Biol. 1986 Dec;103(6 Pt 1):2541-50. doi: 10.1083/jcb.103.6.2541.
2
Kinetics of intracellular redistribution of phytochrome in Avena coleoptiles after its photoconversion to the active, far-red-absorbing form.光转化为具有活性的远红光吸收形式后,光敏素在燕麦胚芽鞘细胞内再分布的动力学。
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Intracellular localisation of phytochrome in oat coleoptiles by electron microscopy.电子显微镜观察菘蓝胚轴中光敏色素的细胞内定位。
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Intracellular localisation of phytochrome and ubiquitin in red-light-irradiated oat coleoptiles by electron microscopy.电镜观察红光照射的燕麦胚芽鞘中光敏色素和泛素的细胞内定位。
Planta. 1987 Jul;171(3):332-8. doi: 10.1007/BF00398678.
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Intracellular redistribution of phytochrome in etiolated soybean (Glycine max L.) seedlings.质体在黄化大豆(Glycine max L.)幼苗中的细胞内再分布。
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Intracellular localisation of phytochrome in oat coleoptiles by electron microscopy : Dependence on light pretreatments and the amount of the active, far-red-absorbing form.电子显微镜下燕麦胚芽鞘中光敏色素的细胞内定位:对光照预处理和具有远红光吸收活性形式的量的依赖性。
Planta. 1990 Feb;180(3):372-7. doi: 10.1007/BF00198788.
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A possible tyrosine phosphorylation of phytochrome.光敏色素可能的酪氨酸磷酸化作用。
FEBS Lett. 1996 Sep 16;393(2-3):161-6. doi: 10.1016/0014-5793(96)00876-9.
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Red Light-enhanced Phytochrome Pelletability: Re-examination and Further Characterization.红光增强的光敏色素可沉淀性:重新审视与进一步表征
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Decrease in phytochrome pelletability induced by green + far-red light in Trifolium repens.绿光 + 远红光诱导白三叶草中光敏色素沉淀性降低。
Biochem Biophys Res Commun. 1981 May 15;100(1):17-22. doi: 10.1016/s0006-291x(81)80056-3.
10
Reversible redistribution of phytochrome within the cell upon conversion to its physiologically active form.在转化为其生理活性形式时,光敏色素在细胞内发生可逆的重新分布。
Proc Natl Acad Sci U S A. 1975 Mar;72(3):799-803. doi: 10.1073/pnas.72.3.799.

引用本文的文献

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The cell biology of phytochrome signalling.光敏色素信号转导的细胞生物学
New Phytol. 2002 Jun;154(3):553-590. doi: 10.1046/j.1469-8137.2002.00419.x.
2
Spatial distribution of phytochromes.植物光受体的空间分布。
J Plant Res. 1997 Mar;110(1):123-30. doi: 10.1007/BF02506851.
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Out with the old and in with the new: rapid specimen preparation procedures for electron microscopy of sectioned biological material.旧的不去,新的不来:用于切片生物材料电子显微镜检查的快速标本制备程序。
Protoplasma. 2014 Mar;251(2):429-48. doi: 10.1007/s00709-013-0575-y. Epub 2013 Nov 21.
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Intracellular localisation of phytochrome and ubiquitin in red-light-irradiated oat coleoptiles by electron microscopy.电镜观察红光照射的燕麦胚芽鞘中光敏色素和泛素的细胞内定位。
Planta. 1987 Jul;171(3):332-8. doi: 10.1007/BF00398678.
5
Photoprotection of phytochrome.光保护色素。
Planta. 1988 Oct;175(4):471-7. doi: 10.1007/BF00393067.
6
Intracellular localisation of phytochrome in oat coleoptiles by electron microscopy : Dependence on light pretreatments and the amount of the active, far-red-absorbing form.电子显微镜下燕麦胚芽鞘中光敏色素的细胞内定位:对光照预处理和具有远红光吸收活性形式的量的依赖性。
Planta. 1990 Feb;180(3):372-7. doi: 10.1007/BF00198788.
7
Partial purification of sequestered particles of phytochrome from oat (Avenu sativa L.) seedlings.从燕麦(Avenu sativa L.)幼苗中分离和纯化光敏色素的被隔离颗粒。
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Intracellular redistribution of phytochrome in etiolated soybean (Glycine max L.) seedlings.质体在黄化大豆(Glycine max L.)幼苗中的细胞内再分布。
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10
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Plant Physiol. 2009 Jul;150(3):1297-309. doi: 10.1104/pp.109.135988. Epub 2009 Apr 29.

本文引用的文献

1
Localization of phytochrome in oats by electron microscopy.通过电子显微镜对燕麦中光敏色素进行定位
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Phytochrome Modification and Light-enhanced, In Vivo-induced Phytochrome Pelletability.光敏色素修饰和光增强、体内诱导的光敏色素颗粒化。
Plant Physiol. 1980 Sep;66(3):500-4. doi: 10.1104/pp.66.3.500.
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Irradiation-enhanced Phytochrome Pelletability: Requirement for Phosphorylative Energy in Vivo.辐照增强的光敏色素可沉淀性:体内需要磷酸化能量。
Plant Physiol. 1978 Nov;62(5):773-8. doi: 10.1104/pp.62.5.773.
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Red Light-enhanced Phytochrome Pelletability: Re-examination and Further Characterization.红光增强的光敏色素可沉淀性:重新审视与进一步表征
Plant Physiol. 1976 Nov;58(5):686-92. doi: 10.1104/pp.58.5.686.
5
Nonphotochemical Transformations of Phytochrome in Vivo.植物色素在体内的非光化学转化
Plant Physiol. 1963 Sep;38(5):514-9. doi: 10.1104/pp.38.5.514.
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The spectrophotometry of dense light-scattering material.密集光散射材料的分光光度法。
Arch Biochem Biophys. 1960 Mar;87:31-40. doi: 10.1016/0003-9861(60)90119-3.
7
High resolution light and electron microscopic localization of tubulin with the IGS (immuno gold staining) method.采用免疫金染色(IGS)方法对微管蛋白进行高分辨率光镜和电镜定位。
Cell Biol Int Rep. 1981 Sep;5(9):889-99. doi: 10.1016/0309-1651(81)90204-6.
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Particle-bound phytochrome from maize and pumpkin.来自玉米和南瓜的颗粒结合型光敏色素。
Nat New Biol. 1973 Oct 10;245(145):189-91. doi: 10.1038/newbio245189a0.
9
Reversible redistribution of phytochrome within the cell upon conversion to its physiologically active form.在转化为其生理活性形式时,光敏色素在细胞内发生可逆的重新分布。
Proc Natl Acad Sci U S A. 1975 Mar;72(3):799-803. doi: 10.1073/pnas.72.3.799.