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Do cells use passwords in cell-state transitions? Is cell signaling sometimes encrypted?

机译:单元格是否在单元格转换中使用密码? 细胞信令有时加密吗?

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Organisms must maintain proper regulation including defense and healing. Life-threatening problems may be caused by pathogens or by a multicellular organism's own cells through cancer or autoimmune disorders. Life evolved solutions to these problems that can be conceptualized through the lens of information security, which is a well-developed field in computer science. Here I argue that taking an information security view of cells is not merely semantics, but useful to explain features of signaling, regulation, and defense. An information security perspective also offers a conduit for cross-fertilization of advanced ideas from computer science and the potential for biology to inform computer science. First, I consider whether cells use passwords, i.e., initiation sequences that are required for subsequent signals to have effects, by analyzing the concept of pioneer transcription factors in chromatin regulation and cellular reprogramming. Second, I consider whether cells may encrypt signal transduction cascades. Encryption could benefit cells by making it more difficult for pathogens or oncogenes to hijack cell networks. By using numerous molecules, cells may gain a security advantage in particular against viruses, whose genome sizes are typically under selection pressure. I provide a simple conceptual argument for how cells may perform encryption through posttranslational modifications, complex formation, and chromatin accessibility. I invoke information theory to provide a criterion of an entropy spike to assess whether a signaling cascade has encryption-like features. I discuss how the frequently invoked concept of context dependency may oversimplify more advanced features of cell signaling networks, such as encryption. Therefore, by considering that biochemical networks may be even more complex than commonly realized we may be better able to understand defenses against pathogens and pathologies.
机译:生物必须保持适当的规则,包括防御和治疗。威胁危及生命的问题可能是病原体或通过多细胞生物体通过癌症或自身免疫疾病引起的。通过信息安全镜头可以概念化的这些问题的生活进化解决方案,这是计算机科学中发达的领域。在这里,我认为拍摄信息的信息安全视图不仅仅是语义,而且有用的是解释信令,调节和防御的特征。信息安全透视还提供了一种用于从计算机科学的高级思想的交叉施肥的导管以及能够为计算机科学提供生物学的潜力。首先,我考虑细胞是否使用密码,即后续信号所需的发起序列,以通过分析染色质调控中的先驱转录因子和细胞重编程的概念。其次,我考虑电池是否可以加密信号转导级联。加密可以通过使病原体或甲状腺素网络更难以使细胞受益。通过使用许多分子,细胞可以特别是针对病毒获得安全优势,其基因组尺寸通常在选择压力下。我为Cells如何通过后翻译修饰,复杂的形成和染色质可访问性提供了一个简单的概念论点。我调用信息理论以提供熵峰值的标准,以评估信令级联是否具有加密的特征。我讨论了语境依赖关系的经常调用的概念如何过度简化单元格信令网络的更高级功能,例如加密。因此,考虑到生物化学网络可能比普遍实现更复杂,我们可能更好地理解对病原体和病理学的防御。

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