bioRxiv Science⌕ Search

Biology subjects

Ramirez-San-Juan, G. R.

Publications and source records attributed to Ramirez-San-Juan, G. R..

2 recordsLinked to original sources

Heterogeneity in cilia patterning enables multiple flow functions within a single cell

Free-living unicellular organisms known as ciliates rely on fluid flows to perform essential functions. These flows emerge from the coordinated activity of thousands of cilia organized into arrays with highly diverse architectures. Despite the importance of mesoscale cilia organization for flow generation, the relationship between the architecture of the ciliary array and the flow function it performs remains poorly understood. Here, we investigate how the ciliary array in the ciliate Paramecium tetraurelia enables this organism to feed and swim simultaneously. Using expansion microscopy and high-speed imaging, we measure ciliary organization and kinematics, from individual beat dynamics to collective metachronal wave patterns. We find that the cells surface is partitioned into arrays with distinct spatio-temporal patterns that perform specific functions. In addition to the oral apparatus, there are two structurally different domains: a densely ciliated high-frequency beating region located anterior to the oral apparatus and a second domain covering the remainder of the cells surface where cilia are more sparsely distributed and slower-beating. Selective removal of each region results in impaired feeding or swimming, demonstrating the functional specialization of each domain. Together, our findings show that a continuous cilia array can generate flows that perform different functions by locally encoding different ciliary architectures. More broadly, this work highlights spatio-temporal ciliary patterning as a key determinant of array function and provides insight into how organization of ciliary arrays governs swimming and transport in biological systems.

biophysics↗

Metachronal wave coordination encodes multimodal swimming in ciliated unicellular predators

Motile cilia are slender cellular appendages, conserved across eukaryotes ranging from unicellular protists to humans, that beat to generate fluid flow. In most organisms, cilia form dense arrays of thousands of filaments that coordinate their motion into persistent, temporally synchronized patterns known as metachronal waves. Despite their ubiquity, the dynamics of these patterns and their role in tuning propulsion remain poorly understood. Here, we investigate how metachronal coordination shapes the navigation of Didinium nasutum, a highly agile unicellular predator with two circumferential ciliary bands. Using high-speed imaging of freely swimming cells, we capture and quantify the dynamics of metachronal wave coordination and track their evolution across different swimming states and transitions. Combining these measurements with a hydrodynamic model, we uncover how dynamic changes in coordination directly regulate propulsion and maneuverability. We show that stable metachronal waves support persistent directed swimming, local inhomogeneities in coordination give rise to curved trajectories, and global wave reversals accommodate rapid evasion-like reorientations. Our findings reveal that transitions between coordination modes allow Didinium to access a diverse swimming repertoire, highlighting dynamic ciliary patterning as a key mechanism to encode complex microscale navigation strategies. More broadly, they provide mechanistic insights into how metachronal coordination shapes fluid flows generated by dense ciliary arrays found in unicellular protists and airway epithelia alike, ultimately influencing swimming and transport in biological systems.

biophysics↗