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Updated: Apr 12, 2026

Time-lapse Imaging of Bacterial Swarms and the Collective Stress Response
Published on: May 23, 2020
Bacterial swarms recruit cargo bacteria to pave the way in toxic environments
Alin Finkelshtein, Dalit Roth, Eshel Ben Jacob1
1colinutrecht@gmail.com eshel@rice.edu.
Unlabelled:
Swarming bacteria are challenged by the need to invade hostile environments. Swarms of the flagellated bacterium Paenibacillus vortex can collectively transport other microorganisms. Here we show that P. vortex can invade toxic environments by carrying antibiotic-degrading bacteria; this transport is mediated by a specialized, phenotypic subpopulation utilizing a process not dependent on cargo motility. Swarms of beta-lactam antibiotic (BLA)-sensitive P. vortex used beta-lactamase-producing, resistant, cargo bacteria to detoxify BLAs in their path. In the presence of BLAs, both transporter and cargo bacteria gained from this temporary cooperation; there was a positive correlation between BLA resistance and dispersal. P. vortex transported only the most beneficial antibiotic-resistant cargo (including environmental and clinical isolates) in a sustained way. P. vortex displayed a bet-hedging strategy that promoted the colonization of nontoxic niches by P. vortex alone; when detoxifying cargo bacteria were not needed, they were lost. This work has relevance for the dispersal of antibiotic-resistant microorganisms and for strategies for asymmetric cooperation with agricultural and medical implications.
Importance:
Antibiotic resistance is a major health threat. We show a novel mechanism for the local spread of antibiotic resistance. This involves interactions between different bacteria: one species provides an enzyme that detoxifies the antibiotic (a sessile cargo bacterium carrying a resistance gene), while the other (Paenibacillus vortex) moves itself and transports the cargo. P. vortex used a bet-hedging strategy, colonizing new environments alone when the cargo added no benefit, but cooperating when the cargo was needed. This work is of interest in an evolutionary context and sheds light on fundamental questions, such as how environmental antibiotic resistance may lead to clinical resistance and also microbial social organization, as well as the costs, benefits, and risks of dispersal in the environment.
Insights
Swarming bacteria Paenibacillus vortex transport antibiotic-degrading bacteria to invade toxic environments. This cooperation benefits both species, showcasing a bet-hedging strategy with medical and agricultural implications.
Area of Science:
- Microbiology
- Bacterial Swarming Dynamics
- Microbial Ecology
Background:
- Antibiotic resistance poses a significant global health challenge.
- Bacterial swarming is a collective behavior enabling exploration of new environments.
- Understanding microbial interactions is crucial for predicting the spread of resistance.
Purpose of the Study:
- To investigate the mechanism by which swarming bacteria invade toxic environments.
- To explore the role of cooperative transport of antibiotic-degrading bacteria.
- To elucidate the bet-hedging strategies employed by swarming bacteria.
Main Methods:
- Utilized swarms of beta-lactam antibiotic (BLA)-sensitive Paenibacillus vortex.
- Observed the transport of beta-lactamase-producing, resistant cargo bacteria.
- Analyzed the correlation between BLA resistance and bacterial dispersal.
Main Results:
- Paenibacillus vortex actively transports antibiotic-degrading bacteria to detoxify hostile environments.
- This symbiotic relationship enhances survival and dispersal for both P. vortex and its cargo.
- P. vortex selectively transports beneficial cargo and abandons it when no longer needed, demonstrating a bet-hedging strategy.
Conclusions:
- Swarming bacteria can overcome environmental toxins through cooperative transport of specialized microbes.
- This mechanism facilitates the spread of antibiotic resistance and has implications for microbial social organization.
- The findings offer insights into asymmetric cooperation with potential agricultural and medical applications.
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