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天然光敏色素:几种植物的相对分子质量的免疫印迹分析和体外蛋白水解降解。

Native phytochrome: immunoblot analysis of relative molecular mass and in-vitro proteolytic degradation for several plant species.

机构信息

Department of Botany, University of Wisconsin, 53706, Madison, WI.

出版信息

Planta. 1984 May;160(6):521-8. doi: 10.1007/BF00411140.

DOI:10.1007/BF00411140
PMID:24258779
Abstract

The relative molecular mass (Mr) of the native phytochrome monomer from etiolated Cucurbita pepo L., Pisum sativum L., Secale cereale L. and Zea mays L. seedlings has been determined using immunoblotting to visualize the chromoprotein in crude extracts subjected to sodium dodecyl sulfate-polyacrylamide gel electrophoresis. A single phytochrome band is observed for each plant species when the molecule is extracted under conditions previously demonstrated to inhibit the proteolysis of native Avena sativa L. phytochrome. A comparison among plant species indicates that the Mr of native phytochrome is variable: Zea mays=127000; Secale=Avena=124000; Pisum=121000; Cucurbita=120000. The in-vitro phototransformation difference spectrum for native phytochrome from each species is similar to that observed in vivo in each case and is indistinguishable from that described for native Avena phytochrome. The difference minima between the red- and far-red-absorbing forms of the pigment (Pr-Pfr) are all at 730 nm and the spectral change ratios (ΔAr/ΔAfr) are near unity. When incubated in crude extracts, phytochrome from all four species is susceptible to Pr-specific limited proteolysis in a manner qualitatively similar to that observed for Avena phytochrome, albeit with slower rates and with the production of different Mr degradation products. Further examination of the in-vitro proteolysis of Avena phytochrome by endogeneous proteases has identified several additional phytochrome degradation products and permitted construction of a peptide map of the molecule. The results indicate that both the 6000- and 4000-Mr polypeptide segments cleaved by Pr-specific proteolysis are located at the NH2-terminus of the chromoprotein and are adjacent to a 64000-Mr polypeptide that contains the chromophore.

摘要

从黄化南瓜、绿豆、黑麦和玉米幼苗中提取的天然光敏色素单体的相对分子质量(Mr),已使用免疫印迹法进行了测定,以可视化粗提物中经十二烷基硫酸钠-聚丙烯酰胺凝胶电泳处理的色素蛋白。当分子在先前证明抑制天然燕麦光敏色素蛋白的蛋白水解的条件下提取时,每种植物物种都观察到单个光敏色素带。在植物物种之间的比较表明,天然光敏色素的 Mr 是可变的:玉米=127000;黑麦=燕麦=124000;豌豆=121000;南瓜=120000。每种物种的天然光敏色素的体外光转化差光谱与每种情况下体内观察到的相似,并且与描述的天然燕麦光敏色素的相似。色素的红光和远红光吸收形式之间的差异最小值(Pr-Pfr)均为 730nm,光谱变化比(ΔAr/ΔAfr)接近 1。在粗提物中孵育时,所有四种物种的光敏色素都容易受到 Pr 特异性有限蛋白水解的影响,这种方式与燕麦光敏色素观察到的方式在性质上相似,尽管速度较慢,并且产生不同的 Mr 降解产物。进一步检查内源性蛋白酶对燕麦光敏色素的体外蛋白水解,鉴定出几种额外的光敏色素降解产物,并允许构建分子的肽图谱。结果表明,Pr 特异性蛋白水解切割的 6000-Mr 和 4000-Mr 多肽片段均位于色素蛋白的 NH2 末端,并且与包含生色团的 64000-Mr 多肽相邻。

相似文献

1
Native phytochrome: immunoblot analysis of relative molecular mass and in-vitro proteolytic degradation for several plant species.天然光敏色素:几种植物的相对分子质量的免疫印迹分析和体外蛋白水解降解。
Planta. 1984 May;160(6):521-8. doi: 10.1007/BF00411140.
2
Spectral Characterization and Proteolytic Mapping of Native 120-Kilodalton Phytochrome from Cucurbita pepo L.西葫芦中天然120千道尔顿光敏色素的光谱特性及蛋白水解图谱分析
Plant Physiol. 1985 Apr;77(4):990-8. doi: 10.1104/pp.77.4.990.
3
Proteolysis alters the spectral properties of 124 kdalton phytochrome from Avena.蛋白水解作用改变了燕麦 124kDa 光敏色素的光谱性质。
Planta. 1982 Nov;156(2):158-65. doi: 10.1007/BF00395430.
4
Red light-induced accumulation of ubiquitin-phytochrome conjugates in both monocots and dicots.红光诱导的泛素-光敏色素缀合物在单子叶植物和双子叶植物中的积累。
Plant Physiol. 1989 Jun;90(2):380-4. doi: 10.1104/pp.90.2.380.
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Characterization by enzyme-linked immunosorbent assay of monoclonal antibodies to pisum and Avena phytochrome.通过酶联免疫吸附测定法对豌豆和燕麦光敏色素单克隆抗体进行表征。
Plant Physiol. 1984 Jan;74(1):123-7. doi: 10.1104/pp.74.1.123.
6
Structure-function studies on phytochrome. Preliminary characterization of highly purified phytochrome from Avena sativa enriched in the 124-kilodalton species.光敏色素的结构-功能研究。从富含124千道尔顿物种的燕麦中高度纯化的光敏色素的初步表征。
J Biol Chem. 1983 Sep 25;258(18):11025-31.
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Structure function studies on phytochrome. Identification of light-induced conformational changes in 124-kDa Avena phytochrome in vitro.光敏色素的结构功能研究。体外鉴定124 kDa燕麦光敏色素中的光诱导构象变化。
J Biol Chem. 1985 Feb 25;260(4):2415-23.
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Tetranitromethane oxidation of phytochrome chromophore as a function of spectral form and molecular weight.四硝基甲烷对光敏色素发色团的氧化作用与光谱形式和分子量的关系。
Plant Physiol. 1984 Apr;74(4):755-8. doi: 10.1104/pp.74.4.755.
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Identification with Monoclonal Antibodies of a Second Antigenic Domain on Avena Phytochrome that Changes upon Its Photoconversion.鉴定燕麦光敏素第二抗原决定簇与光转换有关
Plant Physiol. 1986 Sep;82(1):109-13. doi: 10.1104/pp.82.1.109.
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Photochemistry of 124 kilodalton Avena phytochrome in vitro.124千道尔顿燕麦光敏色素的体外光化学
Plant Physiol. 1983 May;72(1):264-7. doi: 10.1104/pp.72.1.264.

引用本文的文献

1
Phytochrome regulation of phytochrome mRNA abundance.光敏色素对光敏色素 mRNA 丰度的调控。
Plant Mol Biol. 1985 Mar;5(2):91-101. doi: 10.1007/BF00020091.
2
Cloning of cDNA for phytochrome from etiolated Cucurbita and coordinate photoregulation of the abundance of two distinct phytochrome transcripts.从黄化南瓜中克隆光敏色素 cDNA 及两种不同光敏色素转录本丰度的协调光调控。
Plant Mol Biol. 1987 Nov;8(6):485-96. doi: 10.1007/BF00017994.
3
The aurea mutant of tomato is deficient in spectrophotometrically and immunochemically detectable phytochrome.

本文引用的文献

1
Proteolysis alters the spectral properties of 124 kdalton phytochrome from Avena.蛋白水解作用改变了燕麦 124kDa 光敏色素的光谱性质。
Planta. 1982 Nov;156(2):158-65. doi: 10.1007/BF00395430.
2
Cell-free synthesis of phytochrome apoprotein.脱细胞合成光敏色素脱辅基蛋白。
Planta. 1982 Aug;155(3):212-7. doi: 10.1007/BF00392718.
3
Differences in the physical properties of native and partially degraded phytochrome as probed by their differential sensitivity to permanganate oxidation.通过天然和部分降解的光敏色素对高锰酸盐氧化的不同敏感性来探究它们物理性质的差异。
番茄的 aurea 突变体缺乏分光光度法和免疫化学法可检测的光敏色素。
Plant Mol Biol. 1987 Mar;9(2):97-107. doi: 10.1007/BF00015642.
4
Immunochemically detectable phytochrome is present at normal levels but is photochemically nonfunctional in the hy 1 and hy 2 long hypocotyl mutants of Arabidopsis.在拟南芥的 hy1 和 hy2 长下胚轴突变体中,免疫化学可检测到的光敏色素含量正常,但光化学功能丧失。
Plant Mol Biol. 1989 Apr;12(4):425-37. doi: 10.1007/BF00017582.
5
Immunochemical detection with rabbit polyclonal and mouse monoclonal antibodies of different pools of phytochrome from etiolated and green Avena shoots.用来自黄化和绿色燕麦芽的不同光敏色素池的兔多克隆和鼠单克隆抗体进行免疫化学检测。
Planta. 1985 Jun;164(3):333-44. doi: 10.1007/BF00402944.
6
Phytochrome in green tissue: Spectral and immunochemical evidence for two distinct molecular species of phytochrome in light-grown Avena sativa L.绿色组织中的光敏色素:光培养的燕麦中两种不同分子形式的光敏色素的光谱和免疫化学证据
Planta. 1985 Jun;164(3):321-32. doi: 10.1007/BF00402943.
7
The role of separate molecular domains in the structure of phytochrome from etiolated Avena sativa L.拟南芥中光敏色素结构中独立分子结构域的作用
Planta. 1985 Jul;164(4):501-6. doi: 10.1007/BF00395966.
8
Immunological assay of phytochrome in small sections of roots and other organs of maize (Zea mays L.) seedlings.玉米(Zea mays L.)幼苗的根和其他器官的小切片中的光敏色素的免疫测定。
Planta. 1987 Feb;170(2):152-60. doi: 10.1007/BF00397883.
9
The levels of two distinct species of phytochrome are regulated differently during germination in Avena sativa L.在莴苣种子萌发过程中,两种不同类型的光敏色素的水平受到不同的调控。
Planta. 1987 Nov;172(3):371-7. doi: 10.1007/BF00398666.
10
Avena sativa L. contains three phytochromes, only one of which is abundant in etiolated tissue.藜麦含有三种光敏色素,其中只有一种在黄化组织中含量丰富。
Planta. 1991 Apr;184(1):96-104. doi: 10.1007/BF00208242.
Plant Physiol. 1983 Oct;73(2):471-4. doi: 10.1104/pp.73.2.471.
4
Comparative Phytochrome Immunochemistry as Assayed by Antisera against Both Monocotyledonous and Dicotyledonous Phytochrome.通过针对单子叶植物和双子叶植物光敏色素的抗血清进行的比较光敏色素免疫化学分析
Plant Physiol. 1982 Sep;70(3):912-6. doi: 10.1104/pp.70.3.912.
5
Effects of a triterpenoid saponin on spectral properties of undegraded pea phytochrome.一种三萜皂苷对未降解豌豆光敏色素光谱特性的影响。
Plant Physiol. 1982 Jul;70(1):307-10. doi: 10.1104/pp.70.1.307.
6
Immunopurification and initial characterization of dicotyledonous phytochrome.双子叶植物光敏素的免疫纯化与初步特性鉴定。
Plant Physiol. 1982 Feb;69(2):360-5. doi: 10.1104/pp.69.2.360.
7
Purification of Phytochrome by Affinity Chromatography on Agarose-Immobilized Cibacron Blue 3GA.用琼脂糖固定化 Cibacron Blue 3GA 亲和层析法纯化光敏色素。
Plant Physiol. 1981 Aug;68(2):443-6. doi: 10.1104/pp.68.2.443.
8
Phytochrome immunoaffinity purification.植物光敏素免疫亲和纯化。
Plant Physiol. 1979 Aug;64(2):332-6. doi: 10.1104/pp.64.2.332.
9
Immunochemistry of phytochrome.植物色素的免疫化学
Plant Physiol. 1973 May;51(5):939-45. doi: 10.1104/pp.51.5.939.
10
Purification of oat and rye phytochrome.燕麦和黑麦光敏色素的纯化
Plant Physiol. 1973 May;51(5):917-26. doi: 10.1104/pp.51.5.917.