首页> 美国卫生研究院文献>other >A Dynamic Energy Budget (DEB) model to describe Laternula elliptica (King 1832) seasonal feeding and metabolism
【2h】

A Dynamic Energy Budget (DEB) model to describe Laternula elliptica (King 1832) seasonal feeding and metabolism

机译:一个动态能量预算(DEB)模型用于描述扶轮草(King1832)的季节性取食和新陈代谢

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

Antarctic marine organisms are adapted to an extreme environment, characterized by a very low but stable temperature and a strong seasonality in food availability arousing from variations in day length. Ocean organisms are particularly vulnerable to global climate change with some regions being impacted by temperature increase and changes in primary production. Climate change also affects the biotic components of marine ecosystems and has an impact on the distribution and seasonal physiology of Antarctic marine organisms. Knowledge on the impact of climate change in key species is highly important because their performance affects ecosystem functioning. To predict the effects of climate change on marine ecosystems, a holistic understanding of the life history and physiology of Antarctic key species is urgently needed. DEB (Dynamic Energy Budget) theory captures the metabolic processes of an organism through its entire life cycle as a function of temperature and food availability. The DEB model is a tool that can be used to model lifetime feeding, growth, reproduction, and their responses to changes in biotic and abiotic conditions. In this study, we estimate the DEB model parameters for the bivalve Laternula elliptica using literature-extracted and field data. The DEB model we present here aims at better understanding the biology of L. elliptica and its levels of adaptation to its habitat with a special focus on food seasonality. The model parameters describe a metabolism specifically adapted to low temperatures, with a low maintenance cost and a high capacity to uptake and mobilise energy, providing this organism with a level of energetic performance matching that of related species from temperate regions. It was also found that L. elliptica has a large energy reserve that allows enduring long periods of starvation. Additionally, we applied DEB parameters to time-series data on biological traits (organism condition, gonad growth) to describe the effect of a varying environment in food and temperature on the organism condition and energy use. The DEB model developed here for L. elliptica allowed us to improve benchmark knowledge on the ecophysiology of this key species, providing new insights in the role of food availability and temperature on its life cycle and reproduction strategy.
机译:南极海洋生物适应极端环境,其特点是温度很低但很稳定,并且由于日长的变化而引起了粮食供应的强烈季节性变化。海洋生物特别容易受到全球气候变化的影响,一些地区受到温度上升和初级生产变化的影响。气候变化还影响海洋生态系统的生物成分,并影响南极海洋生物的分布和季节性生理。了解气候变化对关键物种的影响非常重要,因为它们的表现会影响生态系统的功能。为了预测气候变化对海洋生态系统的影响,迫切需要对南极关键物种的生活史和生理学有全面的了解。 DEB(动态能量预算)理论捕获了生物在整个生命周期中作为温度和食物供应量的函数的代谢过程。 DEB模型是一种可用于模拟终生饲养,生长,繁殖及其对生物和非生物条件变化的响应的工具。在这项研究中,我们使用文献提取的数据和现场数据估算双壳类椭圆形椭圆体的DEB模型参数。我们在这里介绍的DEB模型旨在更好地了解椭圆形乳杆菌的生物学及其对栖息地的适应水平,并特别关注食物的季节性。模型参数描述了一种特别适合于低温,维持成本低,吸收和调动能量的能力强的新陈代谢,从而为该生物体提供了与温带地区相关物种相匹配的高能表现水平。还发现椭圆形乳杆菌具有很大的能量储备,可以长期忍受饥饿。此外,我们将DEB参数应用于有关生物性状(生物状况,性腺生长)的时间序列数据,以描述食物和温度变化的环境对生物状况和能源使用的影响。此处为椭圆菌开发的DEB模型使我们能够提高有关该关键物种的生态生理学的基准知识,从而提供有关食物可获得性和温度在其生命周期和繁殖策略中的作用的新见解。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号