Meunier Cédric L, Malzahn Arne M, Boersma Maarten
Alfred-Wegener-Institut, Helmholtz-Zentrum für Polar- und Meeresforschung, Biologische Anstalt Helgoland, Helgoland, Germany; Department of Ecology and Environmental Sciences, Umeå University, Umeå, Sweden.
Alfred-Wegener-Institut, Helmholtz-Zentrum für Polar- und Meeresforschung, Biologische Anstalt Helgoland, Helgoland, Germany; Department of Marine Science and Fisheries, College of Agricultural and Marine Sciences, Sultan Qaboos University, Al-Khod, Sultanate of Oman.
PLoS One. 2014 Sep 23;9(9):e107737. doi: 10.1371/journal.pone.0107737. eCollection 2014.
Stoichiometric homeostasis is the ability of an organism to keep its body chemical composition constant, despite varying inputs. Stoichiometric homeostasis therefore constrains the metabolic needs of consumers which in turn often feed on resources not matching these requirements. In a broader context, homeostasis also relates to the capacity of an organism to maintain other biological parameters (e.g. body temperature) at a constant level over ambient environmental variations. Unfortunately, there are discrepancies in the literature and ecological and physiological definitions of homeostasis are disparate and partly contradictory. Here, we address this matter by reviewing the existing knowledge considering two distinct groups, regulators and conformers and, based on examples of thermo- and osmoregulation, we propose a new approach to stoichiometric homeostasis, unifying ecological and physiological concepts. We suggest a simple and precise graphical way to identify regulators and conformers: for any given biological parameter (e.g. nutrient stoichiometry, temperature), a sigmoidal relation between internal and external conditions can be observed for conformers while an inverse sigmoidal response is characteristic of regulators. This new definition and method, based on well-studied physiological mechanisms, unifies ecological and physiological approaches and is a useful tool for understanding how organisms are affected by and affect their environment.
化学计量稳态是生物体在输入变化的情况下保持其身体化学成分恒定的能力。因此,化学计量稳态限制了消费者的代谢需求,而消费者反过来又常常以不符合这些需求的资源为食。在更广泛的背景下,稳态还涉及生物体在环境变化时将其他生物学参数(如体温)维持在恒定水平的能力。不幸的是,文献中存在差异,稳态的生态和生理定义各不相同且部分相互矛盾。在此,我们通过回顾现有知识来解决这个问题,考虑两个不同的群体,调节者和顺应者,并基于温度调节和渗透调节的例子,我们提出了一种化学计量稳态的新方法,将生态和生理概念统一起来。我们提出了一种简单而精确的图形方法来识别调节者和顺应者:对于任何给定的生物学参数(如营养化学计量、温度),顺应者的内部和外部条件之间可观察到S形关系,而调节者的特征是反向S形响应。这个基于充分研究的生理机制的新定义和方法统一了生态和生理方法,是理解生物体如何受到环境影响以及如何影响环境的有用工具。