Centre for Protolife Research and Centre for Organized Matter Chemistry, School of Chemistry, University of Bristol, Bristol, BS8 1TS, UK.
Max Planck Bristol Centre for Minimal Biology, School of Chemistry, University of Bristol, Bristol, BS8 1TS, UK.
Angew Chem Int Ed Engl. 2023 Jun 12;62(24):e202300932. doi: 10.1002/anie.202300932. Epub 2023 May 5.
Despite an emerging catalogue of collective behaviours in communities of homogeneously distributed cell-like objects, microscale protocell colonies with spatially segregated populations have received minimal attention. Here, we use microfluidics to fabricate Janus-like calcium alginate hydrogel microspheres with spatially partitioned populations of enzyme-containing inorganic colloidosomes and investigate their potential as integrated platforms for domain-mediated chemical communication and programmable protocell-matrix dynamics. Diffusive chemical signalling within the segregated communities gives rise to increased initial enzyme kinetics compared with a homogeneous distribution of protocells. We employ competing enzyme-mediated hydrogel crosslinking and decrosslinking reactions in different domains of the partitioned colonies to undertake selective expulsion of a specific protocell population from the community. Our results offer new possibilities for the design and construction of spatially organized cytomimetic consortia capable of endogenous chemical processing and protocell-environment interactivity.
尽管在同质分布的类似细胞物体的群落中出现了一系列集体行为,但具有空间分隔种群的微尺度原细胞菌落却很少受到关注。在这里,我们使用微流控技术制造了具有空间分隔的含酶无机胶体囊泡种群的类 Janus 钙藻酸盐水凝胶微球,并研究了它们作为用于域介导化学通讯和可编程原细胞-基质动力学的集成平台的潜力。与原细胞均匀分布相比,分隔群落中的扩散化学信号导致初始酶动力学增加。我们在分区菌落的不同区域中使用竞争酶介导的水凝胶交联和去交联反应,从群落中选择性地排出特定的原细胞群体。我们的结果为设计和构建能够进行内源性化学处理和原细胞-环境相互作用的空间组织细胞模拟联合体提供了新的可能性。