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本文引用的文献

1
Structure of the Primary Cell Walls of Suspension-Cultured Rosa glauca Cells: II. Multiple Forms of Xyloglucans.悬浮培养的玫瑰细胞初生细胞壁的结构:Ⅱ. 木葡聚糖的多种形式。
Plant Physiol. 1984 Mar;74(3):694-700. doi: 10.1104/pp.74.3.694.
2
Structure of Plant Cell Walls: VIII. A New Pectic Polysaccharide.植物细胞壁的结构:VIII. 一种新型的果胶多糖。
Plant Physiol. 1978 Sep;62(3):418-22. doi: 10.1104/pp.62.3.418.
3
The Structure of Plant Cell Walls: III. A Model of the Walls of Suspension-cultured Sycamore Cells Based on the Interconnections of the Macromolecular Components.植物细胞壁的结构:III. 基于大分子成分相互连接的悬浮培养梧桐细胞壁模型。
Plant Physiol. 1973 Jan;51(1):188-97. doi: 10.1104/pp.51.1.188.
4
Glycoproteins from the cell wall of Phaseolus coccineus.来自多花菜豆细胞壁的糖蛋白。
Biochem J. 1980 Apr 1;187(1):53-63. doi: 10.1042/bj1870053.
5
Isodityrosine, a new cross-linking amino acid from plant cell-wall glycoprotein.异二酪氨酸,一种来自植物细胞壁糖蛋白的新型交联氨基酸。
Biochem J. 1982 May 15;204(2):449-55. doi: 10.1042/bj2040449.
6
Fractionation and characterization of glycoproteins containing hydroxyproline from the leaves of Vicia faba.蚕豆叶片中含羟脯氨酸糖蛋白的分级分离与特性分析
Eur J Biochem. 1969 Oct;10(3):523-32. doi: 10.1111/j.1432-1033.1969.tb00720.x.
7
Glycoprotein of the wall of sycamore tissue-culture cells.梧桐组织培养细胞壁的糖蛋白
Biochem J. 1971 Dec;125(4):953-61. doi: 10.1042/bj1250953.
8
New method for quantitative determination of uronic acids.糖醛酸定量测定的新方法。
Anal Biochem. 1973 Aug;54(2):484-9. doi: 10.1016/0003-2697(73)90377-1.
9
Hemicellulosic complexes from the cell walls of runner bean (Phaseolus coccineus).来自红花菜豆(Phaseolus coccineus)细胞壁的半纤维素复合物。
Biochem J. 1985 Apr 15;227(2):475-81. doi: 10.1042/bj2270475.
10
Developments in the chemistry and biochemistry of pectic and hemicellulosic polymers.果胶和半纤维素聚合物的化学与生物化学进展
J Cell Sci Suppl. 1985;2:51-88. doi: 10.1242/jcs.1985.supplement_2.4.

菜豆(红花菜豆)薄壁组织的细胞壁多糖和糖蛋白

Cell-wall polysaccharides and glycoproteins of parenchymatous tissues of runner bean (Phaseolus coccineus).

作者信息

Ryden P, Selvendran R R

机构信息

A.F.R.C. Institute of Food Research, Norwich Laboratory, U.K.

出版信息

Biochem J. 1990 Jul 15;269(2):393-402. doi: 10.1042/bj2690393.

DOI:10.1042/bj2690393
PMID:2167068
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1131590/
Abstract
  1. Polymers were solubilized from the cell walls of parenchyma from mature runner-bean pods with minimum degradation by successive extractions with cyclohexane-trans-1,2-diamine-NNN'N'-tetra-acetate (CDTA), Na2CO3 and KOH to leave the alpha-cellulose residue, which contained cross-linked pectic polysaccharides and Hyp-rich glycoproteins. These were solubilized with chlorite/acetic acid and cellulase. The polymers were fractionated by anion-exchange chromatography, and fractions were subjected to methylation analysis. 2. The pectic polysaccharides differed in their ease of extraction, and a small proportion were highly cross-linked. The bulk of the pectic polysaccharides solubilized by CDTA and Na2CO3 were less branched than those solubilized by KOH. There was good evidence that most of the pectic polysaccharides were not degraded during extraction. 3. The protein-containing fractions included Hyp-rich and Hyp-poor glycoproteins associated with easily extractable pectic polysaccharides, Hyp-rich glycoproteins solubilized with 4M-KOH+borate, the bulk of which were not associated with pectic polysaccharides, and highly cross-linked Hyp-rich glycoproteins. 4. Isodityrosine was not detected, suggesting that it does not have a (major) cross-linking role in these walls. Instead, it is suggested that phenolics, presumably linked to C-5 of 3,5-linked Araf residues of Hyp-rich glycoproteins, serve to cross-link some of the polymers. 5. There were two main types of xyloglucan, with different degrees of branching. The bulk of the less branched xyloglucans were solubilized by more-concentrated alkali. The anomeric configurations of the sugars in one of the highly branched xyloglucans were determined by 13C-n.m.r. spectroscopy. 6. The structural features of the cell-wall polymers and complexes are discussed in relation to the structure of the cell walls of parenchyma tissues.
摘要
  1. 通过用环己烷 - 反式 -1,2 - 二胺 -N,N,N',N'- 四乙酸(CDTA)、碳酸钠和氢氧化钾连续萃取,从成熟菜豆荚薄壁组织的细胞壁中溶解聚合物,同时使降解降至最低,从而留下含有交联果胶多糖和富含羟脯氨酸糖蛋白的α - 纤维素残渣。这些残渣用亚氯酸盐/乙酸和纤维素酶溶解。聚合物通过阴离子交换色谱法进行分级分离,各馏分进行甲基化分析。2. 果胶多糖的提取难易程度不同,有一小部分是高度交联的。CDTA和碳酸钠溶解的大部分果胶多糖的分支程度低于氢氧化钾溶解的果胶多糖。有充分证据表明,大多数果胶多糖在提取过程中未被降解。3. 含蛋白质的馏分包括与易提取的果胶多糖相关的富含羟脯氨酸和低富含羟脯氨酸的糖蛋白、用4M - 氢氧化钾 + 硼酸盐溶解的富含羟脯氨酸的糖蛋白(其中大部分与果胶多糖无关)以及高度交联的富含羟脯氨酸的糖蛋白。4. 未检测到异二酪氨酸,这表明它在这些细胞壁中不具有(主要的)交联作用。相反,有人提出酚类物质,可能与富含羟脯氨酸糖蛋白的3,5 - 连接阿拉伯糖残基的C - 5相连,起到交联一些聚合物的作用。5. 有两种主要类型的木葡聚糖,分支程度不同。大部分分支较少的木葡聚糖被浓度更高的碱溶解。其中一种高度分支的木葡聚糖中糖的异头构型通过13C - 核磁共振光谱法测定。6. 结合薄壁组织细胞壁的结构,讨论了细胞壁聚合物和复合物的结构特征。