Engineered yeast multicellularity via synthetic cell-cell adhesion and direct-contact signalling

Fankang Meng, William M Shaw, Yue Kei Keith Kam, Tom Ellis
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Abstract

Coordination of behaviour in multicellular systems is one the main ways that nature increases the complexity of biological function in organisms and communities. While Saccharomyces cerevisiae yeast is used extensively in research and biotechnology, it is a unicellular organism capable of only limited multicellular states. Here we expand the possibilities for engineering multicellular behaviours in yeast by developing modular toolkits for two key mechanisms seen in multicellularity, contact-dependent signalling and specific cell-to-cell adhesion. MARS (Mating-peptide Anchored Response System) is a toolkit based on surface-displayed fungal mating peptides and G protein-coupled receptor (GPCR) signalling which can mimic juxtacrine signalling between yeasts. SATURN (Saccharomyces Adhesion Toolkit for multicellUlar patteRNing) surface displays adhesion-proteins pairs on yeasts and facilitates the creation of cell aggregation patterns. Together they can be used to create multicellular logic circuits, equivalent to developmental programs that lead to cell differentiation based on the local population. Using MARS and SATURN, we further developed JUPITER (JUxtacrine sensor for Protein-protein InTERaction), a genetic sensor for assaying protein-protein interactions in culture, demonstrating this as a tool to select for high affinity binders among a population of mutated nanobodies. Collectively, MARS, SATURN, and JUPITER present valuable tools that facilitate the engineering of complex multicellularity with yeast and expand the scope of its biotechnological applications.
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通过合成细胞-细胞粘附和直接接触信号设计酵母多细胞性
多细胞系统中的行为协调是大自然增加生物体和群落中生物功能复杂性的主要方式之一。虽然酵母菌被广泛用于研究和生物技术领域,但它是一种单细胞生物,只能实现有限的多细胞状态。在这里,我们开发了模块化工具包,用于多细胞性中的两个关键机制,即依赖接触的信号传导和特定的细胞间粘附,从而拓展了酵母多细胞行为工程的可能性。MARS(交配肽锚定反应系统)是一个基于表面显示的真菌交配肽和G蛋白偶联受体(GPCR)信号的工具包,它可以模拟酵母菌之间的共生信号。SATURN(酵母菌多细胞粘附工具包)表面可显示酵母菌上的粘附蛋白对,并有助于创建细胞聚集模式。它们可共同用于创建多细胞逻辑电路,相当于根据本地群体进行细胞分化的发育程序。利用 MARS 和 SATURN,我们进一步开发了 JUPITER(用于蛋白质-蛋白质相互作用的 JUxtacrine 传感器),这是一种用于检测培养物中蛋白质-蛋白质相互作用的基因传感器。总之,MARS、SATURN 和 JUPITER 提供了宝贵的工具,有助于利用酵母进行复杂的多细胞工程,并扩大了生物技术的应用范围。
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