Suppr超能文献

逐步物理休眠破除对冬一年生卡罗来纳天竺葵(牻牛儿苗科)种子热需求的定量分析。

Quantitative analysis of the thermal requirements for stepwise physical dormancy-break in seeds of the winter annual Geranium carolinianum (Geraniaceae).

机构信息

Department of Biology, University of Kentucky, Lexington, KY 40506, USA.

出版信息

Ann Bot. 2013 May;111(5):849-58. doi: 10.1093/aob/mct046. Epub 2013 Mar 1.

Abstract

BACKGROUND AND AIMS

Physical dormancy (PY)-break in some annual plant species is a two-step process controlled by two different temperature and/or moisture regimes. The thermal time model has been used to quantify PY-break in several species of Fabaceae, but not to describe stepwise PY-break. The primary aims of this study were to quantify the thermal requirement for sensitivity induction by developing a thermal time model and to propose a mechanism for stepwise PY-breaking in the winter annual Geranium carolinianum.

METHODS

Seeds of G. carolinianum were stored under dry conditions at different constant and alternating temperatures to induce sensitivity (step I). Sensitivity induction was analysed based on the thermal time approach using the Gompertz function. The effect of temperature on step II was studied by incubating sensitive seeds at low temperatures. Scanning electron microscopy, penetrometer techniques, and different humidity levels and temperatures were used to explain the mechanism of stepwise PY-break.

KEY RESULTS

The base temperature (Tb) for sensitivity induction was 17·2 °C and constant for all seed fractions of the population. Thermal time for sensitivity induction during step I in the PY-breaking process agreed with the three-parameter Gompertz model. Step II (PY-break) did not agree with the thermal time concept. Q10 values for the rate of sensitivity induction and PY-break were between 2·0 and 3·5 and between 0·02 and 0·1, respectively. The force required to separate the water gap palisade layer from the sub-palisade layer was significantly reduced after sensitivity induction.

CONCLUSIONS

Step I and step II in PY-breaking of G. carolinianum are controlled by chemical and physical processes, respectively. This study indicates the feasibility of applying the developed thermal time model to predict or manipulate sensitivity induction in seeds with two-step PY-breaking processes. The model is the first and most detailed one yet developed for sensitivity induction in PY-break.

摘要

背景与目的

一些一年生植物物种的物理休眠(PY)-打破是一个由两个不同的温度和/或水分制度控制的两步过程。热时间模型已被用于量化几种豆科植物的PY 打破,但尚未描述分步 PY 打破。本研究的主要目的是通过开发热时间模型来量化对敏感性诱导的热需求,并提出冬季一年生Geranium carolinianum 分步 PY 打破的机制。

方法

将 G. carolinianum 的种子储存在不同的恒定和交替温度下的干燥条件下,以诱导敏感性(步骤 I)。敏感性诱导基于热时间方法,使用 Gompertz 函数进行分析。通过在低温下孵育敏感种子来研究温度对步骤 II 的影响。扫描电子显微镜、贯入仪技术以及不同的湿度水平和温度用于解释分步 PY 打破的机制。

主要结果

敏感性诱导的基础温度(Tb)为 17.2°C,适用于群体中所有种子部分。PY 打破过程中步骤 I 中敏感性诱导的热时间与三参数 Gompertz 模型一致。步骤 II(PY 打破)不符合热时间概念。敏感性诱导和 PY 打破的 Q10 值分别在 2.0 到 3.5 之间和 0.02 到 0.1 之间。在敏感性诱导后,分离水隙栅栏层和亚栅栏层所需的力显著降低。

结论

G. carolinianum 的 PY 打破的步骤 I 和步骤 II 分别由化学和物理过程控制。本研究表明,应用开发的热时间模型来预测或操纵具有两步 PY 打破过程的种子的敏感性诱导是可行的。该模型是迄今为止为 PY 打破的敏感性诱导开发的第一个也是最详细的模型。

相似文献

本文引用的文献

5
Estimation of base temperatures for nine weed species.九种杂草的基础温度估算
J Exp Bot. 2000 Feb;51(343):275-86. doi: 10.1093/jexbot/51.343.275.

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验