Sustainable Bioresource Research Center, Korea Research Institute of Bioscience and Biotechnology (KRIBB), Yuseong-gu, Daejeon 305-806, Republic of Korea.
Bioenergy and Biochemical Research Center, KRIBB, Yuseong-gu, Daejeon 305-806, Republic of Korea; Green Chemistry and Environmental Biotechnology, University of Science & Technology, Yuseong-gu, Daejeon 305-806, Republic of Korea.
Biotechnol Adv. 2016 Jan-Feb;34(1):14-29. doi: 10.1016/j.biotechadv.2015.12.003. Epub 2015 Dec 3.
Algae and bacteria have coexisted ever since the early stages of evolution. This coevolution has revolutionized life on earth in many aspects. Algae and bacteria together influence ecosystems as varied as deep seas to lichens and represent all conceivable modes of interactions - from mutualism to parasitism. Several studies have shown that algae and bacteria synergistically affect each other's physiology and metabolism, a classic case being algae-roseobacter interaction. These interactions are ubiquitous and define the primary productivity in most ecosystems. In recent years, algae have received much attention for industrial exploitation but their interaction with bacteria is often considered a contamination during commercialization. A few recent studies have shown that bacteria not only enhance algal growth but also help in flocculation, both essential processes in algal biotechnology. Hence, there is a need to understand these interactions from an evolutionary and ecological standpoint, and integrate this understanding for industrial use. Here we reflect on the diversity of such relationships and their associated mechanisms, as well as the habitats that they mutually influence. This review also outlines the role of these interactions in key evolutionary events such as endosymbiosis, besides their ecological role in biogeochemical cycles. Finally, we focus on extending such studies on algal-bacterial interactions to various environmental and bio-technological applications.
藻类和细菌自进化早期以来就一直共存。这种共同进化在许多方面彻底改变了地球上的生命。藻类和细菌共同影响着从深海到地衣等各种不同的生态系统,并代表了所有可以想象的相互作用模式——从共生到寄生。一些研究表明,藻类和细菌协同影响彼此的生理和代谢,藻类与玫瑰杆菌的相互作用就是一个典型的例子。这些相互作用无处不在,定义了大多数生态系统的初级生产力。近年来,藻类因其工业开发而受到广泛关注,但它们与细菌的相互作用在商业化过程中往往被视为污染。最近的一些研究表明,细菌不仅能促进藻类生长,还有助于絮凝,这是藻类生物技术中的两个重要过程。因此,需要从进化和生态的角度来理解这些相互作用,并将这种理解应用于工业。在这里,我们反思了这种关系的多样性及其相关机制,以及它们相互影响的栖息地。本文还概述了这些相互作用在关键进化事件(如内共生)中的作用,以及它们在生物地球化学循环中的生态作用。最后,我们专注于将这些关于藻类-细菌相互作用的研究扩展到各种环境和生物技术应用中。