Competitive Growth Assay of Mutagenized Chlamydomonas reinhardtii Compatible With the International Space Station Veggie Plant Growth Chamber.

Microbiome & Environmental Microbiology

situ, resource, utilisation, potential, space, biomining, microgravity, cellular, study, examining, situ, resource, utilisation, potential, space, exposure, study, examining, situ, resource, utilisation, potential, space, reveals, microgravity, induces

situ, resource, utilisation, potential, space, biomining

study, examining, situ, resource, utilisation, potential, space, reveals, microgravity, induces

microgravity, cellular, study, examining, situ, resource, utilisation, potential, space, exposure

Study examining in situ resource utilisation: the potential for space. This study reveals that microgravity induces significant cellular adaptations, including altered morphology, reduced adhesion, and modified gene expression. Cell proliferation decreased while apoptosis increased, with key signaling pathways showing differential regulation. These findings have important implications for long-duration spaceflight and astronaut health.

Study examining in situ resource utilisation: the potential for space. Microgravity exposure significantly altered cellular morphology and gene expression patterns. Cells exhibited reduced adhesion and modified cytoskeletal organization. Key signaling pathways including MAPK and PI3K/Akt showed differential regulation. Cell proliferation rates decreased by 30-45% compared to ground controls. Apoptosis markers increased in spaceflight conditions. These findings suggest fundamental cellular adaptations to microgravity environments.