Cooperative Motility, Force Generation and Mechanosensing in a Foraging Non-Photosynthetic Diatom
Zheng, P.; Kumadaki, K.; Quek, C.; Lim, Z. H.; Ashenafi, Y.; Yip, Z. T.; Newby, J.; Alverson, A. J.; Jedd, G.
10.1101/2023.03.27.533254 bioRxivShow abstract
Diatoms are ancestrally photosynthetic microalgae. However, some underwent a major evolutionary transition, losing photosynthesis to become obligate heterotrophs. The molecular and physiological basis for this transition is unclear. Here, we isolate and characterize new strains of non-photosynthetic diatoms from the coastal waters of Singapore. These diatoms occupy diverse ecological niches and display glucose-mediated catabolite repression, a classical feature of bacterial and fungal heterotrophs. Live-cell imaging reveals deposition of secreted extracellular polymeric substance (EPS). Diatoms moving on pre-existing EPS trails (runners) move faster than those laying new trails (blazers). This leads to cell-to-cell coupling where runners can push blazers to make them move faster. Calibrated micropipettes measure substantial single cell pushing forces, which are consistent with high-order myosin motor cooperativity. Collisions that impede forward motion induce reversal, revealing navigation-related force sensing. Together, these data identify aspects of metabolism and motility that are likely to promote and underpin diatom heterotrophy.
Matching journals
The top 1 journal accounts for 50% of the predicted probability mass.
Similar papers in this journal
- A conserved pressure-driven mechanism for regulating cytosolic osmolarity 96%
- Polymodal sensory perception of mechanical and chemical cues drives robust settlement and metamorphosis of a marine pre-vertebrate zooplanktonic larva. 95%
- Rediversification Following Ecotype Isolation Reveals Hidden Adaptive Potential 95%
Similar papers in this journal
Similar papers in this journal
- Microbial piggy-back: how Streptomyces spores are transported by motile soil bacteria 96%
- Environment-mediated interactions cause an externalized and collective memory in microbes 95%
- Saccharibacteria deploy two distinct Type IV pili, driving episymbiosis, host competition, and twitching motility 95%
Similar papers in this journal
- Pleiotropic win-win mutations can rapidly evolve in a nascent cooperative community despite unfavorable conditions 95%
- Spontaneous body wall contractions stabilize the fluid microenvironment that shapes host-microbe associations 95%
- Novel multicellular prokaryote discovered next to an underground stream 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.