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Biophysical constraints on the origin of leaves inferred from the fossil record.

机译:从化石记录中推断出的对叶片起源的生物物理限制。

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The molecular tool kit for producing flat-bladed photosynthetic structures evolved in marine and terrestrial plants during the middle Paleozoic, but it took a further 20 million years before leaves suddenly spread throughout land floras. This delay has long been difficult to explain, given the apparent advantage of leaves for photosynthetic primary production. Theory and experiments predict that exceptionally high atmospheric CO2 levels in the middle Paleozoic delayed the origin of leaves by restricting stomatal development. This would have limited evaporative cooling, leading to lethal overheating of leaves absorbing large quantities of solar energy. Here we test the central prediction of this argument with a morphometric analysis of 300 plant fossils from major European collections. We show a 25-fold enlargement of leaf blades in two phylogenetically independent clades as atmospheric CO2 levels fell during the late Paleozoic. Furthermore, preliminary data suggest that the first abrupt increase in leaf size was accompanied by an 8-fold rise in stomatal density. These evolutionary patterns support the relaxation of biophysical constraints on leaf area predicted by theory and point to a significant role for CO2 in plant evolution.
机译:在古生代中期,海洋和陆地植物中进化出用于生产平叶片光合结构的分子工具包,但是又花了2000万年的时间,叶子才突然散布到整个陆地植物区系中。考虑到叶片在光合作用初级生产中的明显优势,长期以来很难解释这种延迟。理论和实验预测,中古生代异常高的大气二氧化碳水平会通过限制气孔发育而延迟叶片的起源。这将限制蒸发冷却,导致吸收大量太阳能的叶片致死过热。在这里,我们通过对来自欧洲主要馆藏的300种植物化石进行形态计量分析,检验了这一论点的主要预测。我们显示了在两个系统发育独立进化枝中叶片的25倍增大,这是由于在古生代晚期大气中的二氧化碳水平下降了。此外,初步数据表明,叶片大小的第一次突然增加伴随着气孔密度增加了8倍。这些进化模式支持理论上预测的叶面积生物物理约束的放松,并指出二氧化碳在植物进化中的重要作用。

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