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Less haste less waste: on recycling and its limits in strand displacement systems

机译:更少的匆忙更少的浪费:关于回收及其在绞线置换系统中的限制

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摘要

We study the potential for molecule recycling in chemical reaction systems and their DNA strand displacement realizations. Recycling happens when a product of one reaction is a reactant in a later reaction. Recycling has the benefits of reducing consumption, or waste, of molecules and of avoiding fuel depletion. We present a binary counter that recycles molecules efficiently while incurring just a moderate slowdown compared with alternative counters that do not recycle strands. This counter is an n-bit binary reflecting Gray code counter that advances through 2n states. In the strand displacement realization of this counter, the waste—total number of nucleotides of the DNA strands consumed—is polynomial in n, the number of bits of the counter, while the waste of alternative counters grows exponentially in n. We also show that our n-bit counter fails to work correctly when many (Θ(n)) copies of the species that represent the bits of the counter are present initially. The proof applies more generally to show that in chemical reaction systems where all but one reactant of each reaction are catalysts, computations longer than a polynomial function of the size of the system are not possible when there are polynomially many copies of the system present.
机译:我们研究了化学反应系统中分子回收的潜力及其DNA链置换的实现。当一个反应的产物是后续反应中的反应物时,发生回收。回收的好处是减少了分子的消耗或浪费,并避免了燃料的消耗。与不循环链的替代计数器相比,我们提出了一种二进制计数器,该计数器可有效地回收分子,同时仅引起中等程度的减速。该计数器是一个n进制二进制代码,反映了格雷码计数器,该计数器前进到2 n 状态。在实现此计数器的链位移时,浪费(消耗的DNA链的核苷酸总数)是n的多项式(计数器的位数),而其他计数器的浪费则以n指数增长。我们还显示,当最初存在代表计数器位的种类的许多(Θ(n))副本时,我们的n位计数器无法正常工作。该证明更普遍地适用于表明,在化学反应系统中,每个反应中除一种反应以外的所有反应物都是催化剂,当存在系统的多项式副本时,不可能进行比系统大小的多项式函数更长的计算。

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