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Engineering a lunar photolithoautotroph to thrive on the moon – life or simulacrum?

机译:工程月球光致萎缩,以茁壮成长 - 生活或西班牙语?

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Recent work in developing self-replicating machines has approached the problem as an engineering problem, using engineering materials and methods to implement an engineering analogue of a hitherto uniquely biological function. The question is – can anything be learned that might be relevant to an astrobiological context in which the problem is to determine the general form of biology independent of the Earth. Compared with other non-terrestrial biology disciplines, engineered life is more demanding. Engineering a self-replicating machine tackles real environments unlike artificial life which avoids the problem of physical instantiation altogether by examining software models. Engineering a self-replicating machine is also more demanding than synthetic biology as no library of functional components exists. Everything must be constructed de novo. Biological systems already have the capacity to self-replicate but no engineered machine has yet been constructed with the same ability – this is our primary goal. On the basis of the von Neumann analysis of self-replication, self-replication is a by-product of universal construction capability – a universal constructor is a machine that can construct anything (in a functional sense) given the appropriate instructions (DNA/RNA), energy (ATP) and materials (food). In the biological cell, the universal construction mechanism is the ribosome. The ribosome is a biological assembly line for constructing proteins while DNA constitutes a design specification. For a photoautotroph, the energy source is ambient and the food is inorganic. We submit that engineering a self-replicating machine opens up new areas of astrobiology to be explored in the limits of life.
机译:开发自我复制机器的最新工作已经将问题视为工程问题,采用工程材料和方法实现迄今为止唯一生物功能的工程模拟。问题是 - 可以学习任何东西可能与astrobiological背景相关,其中问题是确定独立于地球的一般形式的生物学形式。与其他非陆地生物学学科相比,工程生活更苛刻。与人工生命不同,工程自我复制机器解决真正的环境,这通过检查软件模型完全避免了物理实例化问题。工程,自我复制机也比合成生物学更高,因为没有功能组件库。一切都必须建造de novo。生物系统已经拥有自我复制的能力,但没有工程机器尚未构建具有相同的能力 - 这是我们的主要目标。在自我复制的von Neumann分析的基础上,自助复制是通用施工能力的副产品 - 通用构造函数是一种机器,可以给定适当指令(DNA / RNA ),能量(ATP)和材料(食物)。在生物细胞中,通用施工机制是核糖体。核糖体是用于构建蛋白质的生物组装线,而DNA构成设计规格。对于光拍,能源是环境,食物是无机的。我们提交工程,自我复制机器开辟了在生活限制的探索中开辟了新的天体学区。

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