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Chlorophyll to Carbon Ratio Derived From a Global Ecosystem Model With Photodamage

机译:叶绿素到碳比与光电图的全球生态系统模型

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Abstract >Phytoplankton harvests light by integrating chlorophyll in protein‐pigment complexes (photosystems) that are variable in number and size. In ecosystem models, the capacity of light harvesting is described as the pool of chlorophyll. Since most of the variability in phytoplankton chlorophyll content is driven by acclimation to changing nutrient and light conditions, photoacclimation is generally parameterized as a regulation of chlorophyll synthesis with changing light. However, photosystems can also be degraded, and of the few process‐based models that have been proposed in the literature for the representation of their degradation and repair, none of them have been extended to more realistic conditions offered by pelagic biogeochemical models. We proposed three potential parameterizations to treat the degradation of photosystems as a function of light intensity and included them as a source of variation in the size of the chlorophyll pool in Regulated Ecosystem Model, version 2 (REcoM2). These model versions provided chlorophyll values highly correlated with satellite chlorophyll and accurate patterns of the chlorophyll to carbon ratio at global scale. The improvement in the prediction of the ratios was remarkable in scenarios where cells are exposed to periods of low light conditions. By isolating the effects of light and nutrients on the variability of the chlorophyll to carbon ratio and the growth rate, we observed a potential reduction in photosynthetic performance under simultaneous light saturation and nutrient stress. This effect, whose strength depends on the presence of photoprotective mechanisms and the degree of nutrient limitation, allowed to assess the role of photodamage and photoprotection under stress conditions. </abstract> </span> <span class="z_kbtn z_kbtnclass hoverxs" style="display: none;">展开▼</span> </div> <div class="translation abstracttxt"> <span class="zhankaihshouqi fivelineshidden" id="abstract"> <span>机译:</span><Abstract Type =“Main”XML:Lang =“en”> <标题类型=“main”>抽象</标题> > Phytoplankton通过将叶绿素(光学系统)的叶绿素整合到数量中和大小。在生态系统模型中,光收获容量被描述为叶绿素的池。由于浮游植物叶绿素含量的大多数变异性通过适应于改变营养和光条件而驱动,因此通常参数化为叶绿素合成的调节与变化的光。然而,光系统也可以降级,并且在文献中提出的少数基于过程的模型,以表示其退化和修复,它们都没有延伸到普拉格生物地球化学模型提供的更现实的条件。我们提出了三种潜在的参数化,以处理照相系统的劣化作为光强度的函数,并将它们作为受调节生态系统模型的叶绿素池大小的变化来源,版本2(RECOM2)。这些模型版本提供了与卫星叶绿素高度相关的叶绿素值,并在全球范围内对叶绿素的精确模式。在细胞暴露于低光条件时段的情况下,比率预测的改进是显着的。通过隔离光和营养对叶绿素变异性和生长速率的可变性的影响,我们观察到在同时轻饱和度和营养应激下的光合性能潜在降低。这种效果,其强度取决于光保护机制的存在和营养素限制程度,允许评估光电模压和光保护在应力条件下的作用。</ p> </摘要> </span> <span class="z_kbtn z_kbtnclass hoverxs" style="display: none;">展开▼</span> </div> </div> <div class="record"> <h2 class="all_title" id="enpatent33" >著录项</h2> <ul> <li> <span class="lefttit">来源</span> <div style="width: 86%;vertical-align: text-top;display: inline-block;"> <a href='/journal-foreign-23728/'>《Global Biogeochemical Cycles》</a> <b style="margin: 0 2px;">|</b><span>2018年第5期</span><b style="margin: 0 2px;">|</b><span>共18页</span> </div> </li> <li> <div class="author"> <span class="lefttit">作者</span> <p id="fAuthorthree" class="threelineshidden zhankaihshouqi"> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=álvarez E.&option=202" target="_blank" rel="nofollow">álvarez E.;</a> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Thoms S.&option=202" target="_blank" rel="nofollow">Thoms S.;</a> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=V?lker C.&option=202" target="_blank" rel="nofollow">V?lker C.;</a> </p> <span class="z_kbtnclass z_kbtnclassall hoverxs" id="zkzz" style="display: none;">展开▼</span> </div> </li> <li> <div style="display: flex;"> <span class="lefttit">作者单位</span> <div style="position: relative;margin-left: 3px;max-width: 639px;"> <div class="threelineshidden zhankaihshouqi" id="fOrgthree"> <p>Helmholtz Centre for Polar and Marine ResearchAlfred Wegener InstituteBremerhaven Germany;</p> <p>Helmholtz Centre for Polar and Marine ResearchAlfred Wegener InstituteBremerhaven Germany;</p> <p>Helmholtz Centre for Polar and Marine ResearchAlfred Wegener InstituteBremerhaven Germany;</p> </div> <span class="z_kbtnclass z_kbtnclassall hoverxs" id="zhdw" style="display: none;">展开▼</span> </div> </div> </li> <li > <span class="lefttit">收录信息</span> <span style="width: 86%;vertical-align: text-top;display: inline-block;"></span> </li> <li> <span class="lefttit">原文格式</span> <span>PDF</span> </li> <li> <span class="lefttit">正文语种</span> <span>eng</span> </li> <li> <span class="lefttit">中图分类</span> <span><a href="https://www.zhangqiaokeyan.com/clc/165.html" title="地质学">地质学;</a><a href="https://www.zhangqiaokeyan.com/clc/5109.html" title="生物地球化学、气体地球化学">生物地球化学、气体地球化学;</a></span> </li> <li class="antistop"> <span class="lefttit">关键词</span> <p style="width: 86%;vertical-align: text-top;"> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=biogeochemical model&option=203" rel="nofollow">biogeochemical model;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=phytoplankton&option=203" rel="nofollow">phytoplankton;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=chlorophyll to carbon ratio&option=203" rel="nofollow">chlorophyll to carbon ratio;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=photodamage&option=203" rel="nofollow">photodamage;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=photoinhibition&option=203" rel="nofollow">photoinhibition;</a> </p> <div class="translation"> 机译:生物地球化学模型;浮游植物;叶绿素到碳比;光沸腾;光抑制; 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