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本文引用的文献

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Fine-root respiration in a loblolly pine and sweetgum forest growing in elevated CO.生长在高浓度二氧化碳环境中的火炬松和胶皮糖香树林中的细根呼吸作用
New Phytol. 2003 Dec;160(3):511-522. doi: 10.1046/j.1469-8137.2003.00911.x. Epub 2003 Nov 6.
2
Role of carbohydrate supply in white and brown root respiration of ponderosa pine.碳水化合物供应在黄松白根和褐根呼吸中的作用
New Phytol. 2003 Dec;160(3):523-531. doi: 10.1046/j.1469-8137.2003.00914.x.
3
Fine roots of trees - a new perspective.树木的细根——一个新视角。
New Phytol. 2002 May;154(2):267-270. doi: 10.1046/j.1469-8137.2002.00413_1.x.
4
Development of a novel semi-hydroponic phenotyping system for studying root architecture.开发一种用于研究根系结构的新型半水培表型分析系统。
Funct Plant Biol. 2011 Jun;38(5):355-363. doi: 10.1071/FP10241.
5
Root respiration in North American forests: effects of nitrogen concentration and temperature across biomes.北美森林中的根系呼吸:跨生物群落的氮浓度和温度的影响。
Oecologia. 2002 May;131(4):559-568. doi: 10.1007/s00442-002-0931-7. Epub 2002 May 1.
6
Relationships among root branch order, carbon, and nitrogen in four temperate species.四种温带树种根系分支等级、碳和氮之间的关系
Oecologia. 1997 Jul;111(3):302-308. doi: 10.1007/s004420050239.
7
Relationships of leaf dark respiration to leaf nitrogen, specific leaf area and leaf life-span: a test across biomes and functional groups.叶片暗呼吸与叶片氮含量、比叶面积和叶片寿命的关系:跨生物群落和功能组的检验
Oecologia. 1998 May;114(4):471-482. doi: 10.1007/s004420050471.
8
Recovering root system traits using image analysis exemplified by two-dimensional neutron radiography images of lupine.利用图像分析恢复根系性状:以羽扇豆的二维中子射线照相图像为例
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9
Acclimation and soil moisture constrain sugar maple root respiration in experimentally warmed soil.在实验增温的土壤中,驯化和土壤水分制约糖槭根呼吸。
Tree Physiol. 2013 Sep;33(9):949-59. doi: 10.1093/treephys/tpt068. Epub 2013 Sep 19.
10
Relationships between root respiration rate and root morphology, chemistry and anatomy in Larix gmelinii and Fraxinus mandshurica.落叶松和水曲柳的根呼吸速率与根形态、化学和解剖结构的关系。
Tree Physiol. 2013 Jun;33(6):579-89. doi: 10.1093/treephys/tpt040.

情况较为复杂:四种落叶树种根系内呼吸作用和形态特征的变异性

It's complicated: intraroot system variability of respiration and morphological traits in four deciduous tree species.

作者信息

Rewald Boris, Rechenmacher Andreas, Godbold Douglas L

机构信息

Forest Ecology, Department of Forest and Soil Sciences, University of Natural Resources and Life Sciences Vienna, 1190 Vienna, Austria

Forest Ecology, Department of Forest and Soil Sciences, University of Natural Resources and Life Sciences Vienna, 1190 Vienna, Austria.

出版信息

Plant Physiol. 2014 Oct;166(2):736-45. doi: 10.1104/pp.114.240267. Epub 2014 Jun 19.

DOI:10.1104/pp.114.240267
PMID:24948830
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4213102/
Abstract

Within branched root systems, a distinct heterogeneity of traits exists. Knowledge about the ecophysiology of different root types is critical to understand root system functioning. Classification schemes have to match functional root types as closely as possible to be used for sampling and modeling. Among ecophysiological root traits, respiration is of particular importance, consuming a great amount of carbon allocated. Root architecture differs between the four deciduous tree seedlings. However, two types of terminal root segments (i.e. first and second orders), white colored and brown colored, can be distinguished in all four species but vary in frequency, their morphology differing widely from each other and higher coarse root orders. Root respiration is related to diameter and tissue density. The use of extended root ordering (i.e. order and color) explains the variance of respiration two times as well as root diameter or root order classes alone. White terminal roots respire significantly more than brown ones; both possess respiration rates that are greater than those of higher orders in regard to dry weight and lower in regard to surface area. The correlation of root tissue density to respiration will allow us to use this continuous parameter (or easier to determine dry matter content) to model the respiration within woody root systems without having to determine nitrogen contents. In addition, this study evidenced that extended root orders are better suited than root diameter classes to picture the differences between root functional types. Together with information on root order class frequencies, these data allow us to calculate realistic, species-specific respiration rates of root branches.

摘要

在分支根系中,存在明显的性状异质性。了解不同根类型的生态生理学对于理解根系功能至关重要。分类方案必须尽可能紧密地匹配功能根类型,以便用于采样和建模。在生态生理根性状中,呼吸作用尤为重要,它消耗了大量分配的碳。四种落叶树幼苗的根系结构有所不同。然而,在所有四个物种中都可以区分出两种类型的末端根段(即一级和二级),白色和棕色,但频率不同,它们的形态彼此差异很大,与较粗的高级根也不同。根呼吸与直径和组织密度有关。使用扩展的根序(即根序和颜色)解释呼吸作用方差的能力是单独使用根直径或根序类别时的两倍。白色末端根的呼吸作用明显比棕色末端根强;就干重而言,两者的呼吸速率都高于高级根,而就表面积而言则低于高级根。根组织密度与呼吸作用的相关性将使我们能够使用这个连续参数(或更易于测定的干物质含量)来模拟木本根系内的呼吸作用,而无需测定氮含量。此外,这项研究证明,扩展的根序比根直径类别更适合描绘根功能类型之间的差异。结合根序类别频率信息,这些数据使我们能够计算出实际的、特定物种的根分支呼吸速率。