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Super-Earths M Dwarfs and Photosynthetic Organisms: Habitability in the Lab

机译:超地球M矮人和光合生物:实验室的居民

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摘要

In a few years, space telescopes will investigate our Galaxy to detect evidence of life, mainly by observing rocky planets. In the last decade, the observation of exoplanet atmospheres and the theoretical works on biosignature gasses have experienced a considerable acceleration. The most attractive feature of the realm of exoplanets is that 40% of M dwarfs host super-Earths with a minimum mass between 1 and 30 Earth masses, orbital periods shorter than 50 days, and radii between those of the Earth and Neptune (1–3.8 R⊕). Moreover, the recent finding of cyanobacteria able to use far-red (FR) light for oxygenic photosynthesis due to the synthesis of chlorophylls d and f, extending in vivo light absorption up to 750 nm, suggests the possibility of exotic photosynthesis in planets around M dwarfs. Using innovative laboratory instrumentation, we exposed different cyanobacteria to an M dwarf star simulated irradiation, comparing their responses to those under solar and FR simulated lights. As expected, in FR light, only the cyanobacteria able to synthesize chlorophyll d and f could grow. Surprisingly, all strains, both able or unable to use FR light, grew and photosynthesized under the M dwarf generated spectrum in a similar way to the solar light and much more efficiently than under the FR one. Our findings highlight the importance of simulating both the visible and FR light components of an M dwarf spectrum to correctly evaluate the photosynthetic performances of oxygenic organisms exposed under such an exotic light condition.
机译:在几年内,太空望远镜将调查我们的银河系,以检测生命的证据,主要是通过观察岩石行星。在过去的十年中,对外产的氛围和生物环化气体的理论作品的观察具有相当大的加速度。外产的领域最具吸引力的特点是40%的M矮人宿主超地,最小质量在1到30个地块之间,轨道周期短于50天,地球和海王星之间的半径(1- 3.8r⊕)。此外,由于叶绿素D和F的合成,最近近期发现具有用于含氧光合作用的含氧光合作用的含氧光合作用的含氧光合作用,延伸到高达750nm的叶绿素D和F,表明在米周围的行星中的异国情调光合作用的可能性矮人。使用创新的实验室仪表,我们将不同的蓝色细菌暴露于M个矮星模拟辐照,比较了他们对太阳能和FR模拟灯下的响应。正如预期的那样,在FR光中,只有能够合成叶绿素D和F的蓝细菌会生长。令人惊讶的是,所有菌株,都能够或无法使用FR光,在M个矮种产生的光谱下成长和光滑,以与太阳能相似的方式,比FR一个更有效地更有效。我们的研究结果突出了模拟M矮化谱的可见和FR光分量的重要性,以正确地评估在这种外来光条件下暴露的含氧生物的光合性能。

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