Phenotypic plasticity, life cycles and the evolutionary transition to multicellularity
Tang, S.; Pichugin, Y.; Hammerschmidt, K.
Show abstract
SUMMARYUnderstanding the evolutionary transition to multicellularity is a key problem in evolutionary biology (1-4). While around 25 independent instances of the evolution of multicellular existence are known across the tree of life (5), the ecological conditions that drive such transformations are not well understood. The first known transition to multicellularity occurred approximately 2.5 billion years ago in cyanobacteria (5-7), and todays cyanobacteria are characterized by an enormous morphological diversity, based upon which they have been classified into five sections. They range from single-celled species (section I), unicellular cyanobacteria with packet-like phenotypes, e.g., tetrads (section II) and simple filamentous species (section III) to highly differentiated filamentous ones (sections IV and V) (8-10). The unicellular cyanobacterium Cyanothece sp. ATCC 51142, an isolate from the intertidal zone of the U.S. Gulf Coast (11), has been classified as a section I species, and it phylogenetically clusters with the other N2-fixing unicellular cyanobacteria (12). Here we report a facultative multicellular life cycle for a unicellular cyanobacterium, where multicellular filaments and unicellular stages alternate. In a series of experiments we identify the environmental factors underlying the phenotypic switch between the two morphologies. Then we experimentally confirm that the dissolution of filaments into solitary cells is triggered by changes in the external environment, which in turn is modified by the Cyanothece cells. Finally, using numerical models, we test a number of hypotheses regarding the nature of the environmental cues and the physical mechanisms underlying filament dissolution. While results predict that the observed response can be caused by an excreted compound in the medium, we cannot fully exclude changes in nutrient availability (as in (13,14)). The best-fit modeling results demonstrate a nonlinear effect of the compound, which is characteristic for density-dependent sensing systems (15,16). Further, filament fragmentation is predicted to occur by means of connection cleavage rather than by cell death of every alternate cell, which is corroborated by results from fluorescent and scanning electron microscopy. The phenotypic switch between the single-celled and multicellular morphology constitutes an environmentally dependent life cycle, which likely represents an important step en route to permanent multicellularity.
Matching journals
The top 9 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- MultIscale MultiObjective Systems Analysis (MIMOSA): an advanced metabolic modeling framework for complex systems 95%
- Probing Patterning in Microbial Consortia with picCASO: a Cellular Automaton for Spatial Organisation 93%
- Predatory selection of mucoid, antibiotic resistant Pseudomonas putida phenotype by myxobacterium Cystobacter ferrugineus 93%
Similar papers in this journal
- When does a Lotka-Volterra model represent microbial interactions? Insights from in-vitro nasal bacterial communities 95%
- Kinetics-based Inference of Environment-Dependent Microbial Interactions and Their Dynamic Variation 95%
- Cell growth model with stochastic gene expression helps understand the growth advantage of metabolic exchange and auxotrophy 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.