We have studied the motility, growth, spatial distribution, and photosynthetic activity of eukaryotic microalga Chlamydomonas reinhardtii in a nanoporous hydrogel matrix. 3D printing has been used to control the shape of the biohybrid living hydrogel material as a whole, while light exposure and access to carbon source has been used to control the growth and location of the cells within the material. A custom-built CO2 measurement chamber has been designed and used to monitor the cells photosynthetic activity. The microalgal cells inside the hydrogel are found to photosynthesize and to form confined cell clusters, which grow faster when located close to the periphery of the hydrogel due to favorable gas exchange and light conditions. We have identified that a higher surface to volume ratio leads to higher photosynthetic activity in living materials. Interestingly, this strategy resembles the established adaptations found in multicellular plant leaves. These results have been published in the journal Advanced Materials in January 2024 (Oh JJ et al. “Growth, Distribution, and Photosynthesis of Chlamydomonas reinhardtii in 3D Hydrogels” Adv. Mater. 2305505, 2024).
We have developed a new bio-ink for 3D printing of engineered living materials. Various polymers (κ-carrageenan, sodium alginate, agar, and cellulose-based thickener) are mixed in precise amounts together with Chlamydomonas reinhardtii cells. This bioink could be used with other types of cells (e.g. bacteria, fungi, …) and used in a variety of applications of engineered living materials.
Additionally, we have investigated the coordinated flagellar swimming and the effect of external mechanical forces on C. reinhardtii. For this purpose, we have applied an external flow to selectively load mechanically each flagellum. We showed that the coordinated beating essentially only responds to mechanical load exerted on the cis flagellum (i.e. the flagellum that is organized by a basal body that develops from a pre-matured one in the mother cell); and that such asymmetry in response derives from a unilateral coupling between the two flagella (Wei D, et al. “The younger flagellum sets the beat for C. reinhardtii”, eLife, accepted for publication). We continue similar investigations to understand better the influence of external mechanical forces on C. reinhardtii, which will be instrumental to the development of microalgae-based living materials.