论文标题

天文学应用的广义化学计量和生物地球化学

Generalized Stoichiometry and Biogeochemistry for Astrobiological Applications

论文作者

Kempes, Christopher P., Follows, Michael J., Smith, Hillary, Graham, Heather, House, Christopher H., Levin, Simon A.

论文摘要

天体生物学领域的核心需求是对生命的普遍观点,使分化非生物和生物化学系统的可能性成为可能。许多过去和将来的天体生物学测量值的关键组成部分是各种样品的元素比。地球海洋上的经典作品表明,生命在最初以雷德菲尔德为特征的元素比例显示出惊人的规律性。工作体系以来,由于原始观察结果将这种比率与基本的生态动力学和细胞生理学联系在一起,同时还记录了各种环境中发现的元素比率范围。考虑如何最好地将这些知识应用于天文学背景:如何使用基本的生物学生理学以及生态或环境动态更正式地系统化观察到的元素比率变化?如何将这些元素比率推广到我们在自己的星球上观察到的生命之外?在这里,我们扩展了最近开发的广义生理模型,以创建一个简单的框架,以预测各种环境中发现的元素比率的变化。然后,我们讨论进一步概括天文生物学应用的生理学。我们的许多理论处理都是为适用于未来行星任务的原位测量而设计的。我们想象可以进行三个测量值的方案 - 粒子/细胞大小,粒子/细胞化学计量,流体或环境化学计量学 - 并与这些经常部署的测量有关。

A central need in the field of astrobiology is generalized perspectives on life that make it possible to differentiate abiotic and biotic chemical systems. A key component of many past and future astrobiological measurements is the elemental ratio of various samples. Classic work on Earth's oceans has shown that life displays a striking regularity in the ratio of elements as originally characterized by Redfield. The body of work since the original observations has connected this ratio with basic ecological dynamics and cell physiology, while also documenting the range of elemental ratios found in a variety of environments. Several key questions remain in considering how to best apply this knowledge to astrobiological contexts: How can the observed variation of the elemental ratios be more formally systematized using basic biological physiology and ecological or environmental dynamics? How can these elemental ratios be generalized beyond the life that we have observed on our own planet? Here we expand recently developed generalized physiological models to create a simple framework for predicting the variation of elemental ratios found in various environments. We then discuss further generalizing the physiology for astrobiological applications. Much of our theoretical treatment is designed for in situ measurements applicable to future planetary missions. We imagine scenarios where three measurements can be made - particle/cell sizes, particle/cell stoichiometry, and fluid or environmental stoichiometry - and develop our theory in connection with these often deployed measurements.

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