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超级生命——“细胞选择”如何以及为何造就了生长速度最快的真核生物。

Super life--how and why 'cell selection' leads to the fastest-growing eukaryote.

作者信息

Groeneveld Philip, Stouthamer Adriaan H, Westerhoff Hans V

机构信息

Department of Molecular Cell Physiology & Mathematical Biochemistry, Netherlands Institute for Systems Biology, Vrije Universiteit, Amsterdam, The Netherlands.

出版信息

FEBS J. 2009 Jan;276(1):254-70. doi: 10.1111/j.1742-4658.2008.06778.x.

Abstract

What is the highest possible replication rate for living organisms? The cellular growth rate is controlled by a variety of processes. Therefore, it is unclear which metabolic process or group of processes should be activated to increase growth rate. An organism that is already growing fast may already have optimized through evolution all processes that could be optimized readily, but may be confronted with a more generic limitation. Here we introduce a method called 'cell selection' to select for highest growth rate, and show how such a cellular site of 'growth control' was identified. By applying pH-auxostat cultivation to the already fast-growing yeast Kluyveromyces marxianus for a sufficiently long time, we selected a strain with a 30% increased growth rate; its cell-cycle time decreased to 52 min, much below that reported to date for any eukaryote. The increase in growth rate was accompanied by a 40% increase in cell surface at a fairly constant cell volume. We show how the increase in growth rate can be explained by a dominant (80%) limitation of growth by the group of membrane processes (a 0.7% increase of specific growth rate to a 1% increase in membrane surface area). Simultaneous activation of membrane processes may be what is required to accelerate growth of the fastest-growing form of eukaryotic life to growth rates that are even faster, and may be of potential interest for single-cell protein production in industrial 'White' biotechnology processes.

摘要

生物体可能达到的最高复制速率是多少?细胞生长速率受多种过程控制。因此,尚不清楚应激活哪些代谢过程或过程组来提高生长速率。一个已经快速生长的生物体可能已经通过进化优化了所有易于优化的过程,但可能面临更普遍的限制。在这里,我们介绍一种称为“细胞筛选”的方法来选择最高生长速率,并展示如何识别这样一个“生长控制”的细胞位点。通过对已经快速生长的马克斯克鲁维酵母进行足够长时间的pH恒化培养,我们筛选出了一种生长速率提高30%的菌株;其细胞周期时间缩短至52分钟,远低于迄今为止报道的任何真核生物的细胞周期时间。生长速率的提高伴随着细胞表面在细胞体积相当恒定的情况下增加了40%。我们展示了生长速率的提高如何可以由膜过程组对生长的主要(80%)限制来解释(比生长速率增加0.7%对应膜表面积增加1%)。同时激活膜过程可能是将生长最快的真核生物形式的生长加速到更快生长速率所需要的,并且可能对工业“白色”生物技术过程中的单细胞蛋白生产具有潜在意义。

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