With this project, we aim to understand how living unicellular organisms build symbiotic relationships to synergistically manipulate light and to develop new hybrid materials combining functional living building blocks within synthetic matrices. By bridging the gap between artificial and living matter, we can produce materials that have radically new functionalities “borrowed” from living organisms, which can be challenging to achieve with only synthetic systems alone. Additionally, such novel hybrid systems, being composed of cells and bio-compatible and bio-based matrices, will be inherently biodegradable and hence more sustainable. As an example, we envision the development of novel photonic pigments that change colour in presence of volatiles pollutants or autonomous self-shading coatings that change their absorption in function of light conditions, while simultaneously producing oxygen. These novel materials can be achieved by combining artificial matrices that can host and autonomously support the living organisms performing the function. The pigments can be developed by encapsulating into symbiotic-hydrogels structural coloured bacterial colonies that change colour by sensing the external environment, while self-shading coatings can be achieved by maintaining motile phototactic cyanobacteria into soft-matrices. Such functionalities are challenging to achieve with traditional materials and often requires building blocks that are energetically expensive to produce and not sustainable.