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Experimental adaptation to marine conditions by a freshwater alga

机译:淡水藻类对海洋条件的实验适应

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The marine-freshwater boundary has been suggested as one of the most difficult to cross for organisms. Salt is a major ecological factor and provides an unequalled range of ecological opportunity because marine habitats are much more extensive than freshwater habitats, and because salt strongly affects the structure of microbial communities. We exposed experimental populations of the freshwater alga Chlamydomonas reinhardtii to steadily increasing concentrations of salt. About 98% of the lines went extinct. The ones that survived now thrive in growth medium with 36 gL(-1) NaCl, and in seawater. Our results indicate that adaptation to marine conditions proceeded first through genetic assimilation of an inducible response to relatively low salt concentrations that was present in the ancestors, and subsequently by the evolution of an enhanced inducible response to high salt concentrations. These changes appear to have evolved through reversible and irreversible modifications, respectively. The evolution of marine from freshwater lineages is an example that clearly indicates the possibility of studying certain aspects of major ecological transitions in the laboratory.
机译:海洋-淡水边界被认为是生物最难穿越的边界之一。盐是主要的生态因素,并且提供了无与伦比的生态机会,因为海洋生境比淡水生境广泛得多,并且盐强烈影响微生物群落的结构。我们使淡水藻类莱茵衣藻的实验种群暴露于稳定增加的盐浓度。约98%的品系灭绝。现在存活下来的那些在含有36 gL(-1)NaCl的生长培养基和海水中壮成长。我们的结果表明,首先通过遗传同化对祖先中存在的相对较低盐浓度的诱导反应,然后通过对高盐浓度增强的诱导反应的进化,来适应海洋条件。这些变化似乎分别是通过可逆和不可逆的修改演变而来的。海洋从淡水世系的演变就是一个例子,清楚地表明了在实验室研究主要生态转变的某些方面的可能性。

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