Li Alexander Zhan Tu, LiWang Andy, Subramaniam Anand Bala
Department of Bioengineering, University of California, Merced, CA, USA.
Department of Chemistry and Biochemistry, University of California, Merced, CA, USA.
Nat Commun. 2025 Jul 21;16(1):6686. doi: 10.1038/s41467-025-61844-5.
The cyanobacterial circadian clock maintains remarkable precision and synchrony, even in cells with femtoliter volumes. Here, we reconstitute the KaiABC post-translational oscillator (PTO) in giant unilamellar vesicles (GUVs) to investigate underlying mechanisms of this fidelity. We show that our encapsulation methodology replicates native protein variability. With long-term, single-vesicle tracking of circadian rhythms using fluorescent KaiB and confocal microscopy, we find that oscillator fidelity decreases with lower protein levels and smaller vesicle sizes. KaiB membrane association, observed in cyanobacteria, was recapitulated in GUV membranes. A mathematical model incorporating protein stoichiometry limitations suggests that high expression of PTO components and associated regulators (CikA and SasA) buffers stochastic variations in protein levels. Additionally, while the transcription-translation feedback loop contributes minimally to overall fidelity, it is essential for maintaining phase synchrony. These findings demonstrate synthetic cells capable of autonomous circadian rhythms and highlight a generalizable strategy for dissecting emergent biological behavior using minimal systems.
即使在体积仅为飞升级别的细胞中,蓝藻生物钟仍能保持极高的精度和同步性。在此,我们在巨型单层囊泡(GUVs)中重构了KaiABC翻译后振荡器(PTO),以探究这种精确性的潜在机制。我们表明,我们的封装方法能够复制天然蛋白质的变异性。通过使用荧光KaiB和共聚焦显微镜对昼夜节律进行长期的单囊泡追踪,我们发现随着蛋白质水平降低和囊泡尺寸减小,振荡器的精确性会下降。在蓝藻中观察到的KaiB与膜的结合现象,在GUV膜中也得到了重现。一个纳入蛋白质化学计量限制因素的数学模型表明,PTO组件及相关调节因子(CikA和SasA)的高表达能够缓冲蛋白质水平的随机变化。此外,虽然转录-翻译反馈环对整体精确性的贡献极小,但它对于维持相位同步至关重要。这些发现证明了合成细胞能够自主产生昼夜节律,并突出了一种使用最小系统剖析涌现生物行为的通用策略。