91青青草

News

Getting bacteria into line

Physicists use magnetic fields to manipulate bacterial behaviour
bakteereja ohjataan magneettikent盲n avulla
Magnetic nanoparticles are mixed with a dense bacterial suspension. Switching the uniform magnetic field on and off causes the system to transition between long-range orientational order and active turbulence. Image: Kazusa Beppu / Aalto University

Researchers at Finland鈥檚 Aalto University have found a way to use magnets to line up bacteria as they swim. The approach offers more than just a way to nudge bacteria into order 鈥 it also provides a useful tool for a wide range of research, such as work on complex materials, phase transitions and condensed matter physics.

Bacterial cells generally aren鈥檛 magnetic, so the magnets don鈥檛 directly interact with the bacteria. Instead, the bacteria are mixed into a liquid with millions of magnetic nanoparticles. This means the rod-shaped bacteria are effectively non-magnetic voids inside the magnetic fluid. When the magnets are switched on, creating a magnetic field, the bacteria are nudged to line up with the magnetic field because any other arrangement takes more energy 鈥 it鈥檚 harder to keep the rod-shaped holes at an angle to the magnetic field.

鈥榃e have managed to control perfectly regular Bacillus subtilis bacteria with magnetic fields. These bacteria are not magnetic, unlike some rare magnetotactic bacteria鈥, says assistant professor Jaakko Timonen who led the study. 

鈥業n a nutshell, the most stable arrangement is for the bacterial 鈥渉oles鈥 to align with the magnetic field, resulting in a torque on the bacteria鈥檚 body, pushing them to line up,鈥 explains postdoctoral researcher Kazusa Beppu.

The strength of the magnetic field controls the alignment of the bacteria. When the magnets were off, the bacteria swam around haphazardly. As the researchers dialled up the strength of the magnetic field, the bacteria became more and more aligned, eventually swimming in nearly perfect rows.

The amount of bacteria also made a difference. When the population density was high, it took a stronger magnetic field to get the bacteria into alignment. That鈥檚 because the swimming bacteria affect the liquid in a way that鈥檚 similar to turbulence. When there are lots of bacteria, the turbulence-like effect is strong, and it takes a stronger magnetic field to overcome it.

鈥楾he fluid flow created by bacteria in dense suspensions is called active turbulence because it contains structures characteristic to turbulent flows, such as vortices. However, it is important to understand that this so-called active turbulence is fundamentally different from the normal turbulence encountered for example in aviation,鈥 clarifies Timonen.  

Active turbulence is an extremely common phenomenon in nature. It鈥檚 caused by the combined actions of individual units, like cells that are swimming or moving about, ie. bacteria, sperm or epithelial cells. 鈥楢ctive turbulence is an important research topic in active matter physics, and the dense bacterial suspensions in our system are an excellent tool for studying it,鈥 says Beppu.

The micro-couriers of the future?

Ultimately, as fun as it sounds, this work isn鈥檛 just about getting bacteria to swim in an orderly fashion. The ability to control bacterial movement along with turbulent flow is important for understanding and manipulating active matter 鈥 materials in which dynamic patterns emerge from the behaviour of individual parts. Think flocks of birds, but on a cellular level.

The researchers envision applications around self-sustaining materials or harnessing the potential of microrobotics or biological engines to harvest energy or transport material. Targeted drug delivery could, for example, take place on a microscopic scale.

鈥業t鈥檚 exciting to be able to control active matter in a spatiotemporal and versatile manner over a space much larger than the size of individual active units,鈥 adds Beppu. 鈥楢nd because our method is versatile, it can be applied not only to bacterial systems but also to a variety of other systems, which will greatly advance the experimental study of active matter.鈥

The ability to fine-tune alignments in this way will also be an invaluable tool in other research domains, such as work on phase transitions or condensed matter physics. Meanwhile, the researchers plan to expand on their work by testing what happens when the magnetic field is dynamic 鈥 for example, with a rotating magnetic field. Beppu expects to see a rich variety of new phenomena in those experiments, adding that 鈥榰nderstanding the magnetic controllability of orientation and flow is important for designing functional active materials.鈥

Original article in Communications Physics:

Jaakko Timonen

Jaakko Timonen

Professor (Associate Professor)
Department of Applied Physics
  • Updated:
  • Published:
Share
URL copied!

Read more news

A man in a suit standing next to a large green metal door in an underground bunker.
Press releases Published:

Doctoral thesis: Finland鈥檚 civil defence shelters protect nearly everyone 鈥 but hotter summers may test their limits

Built over decades, Finland鈥檚 civil defence shelter system covers almost the entire population and has cost the equivalent of three years of defence spending.
Laajalahti nature reserve in Espoo
Press releases, Research & Art Published:

Rising sea could erase a significant portion of coastal habitats in Finland

More than a fifth of coastal meadows and sandy beaches may disappear by the turn of the century.
A spacious hall with people seated and standing, mannequins wearing costumes, and large windows letting in natural light.
Research & Art Published:

N盲yt枚s/N盲yttely25 award-winning works on display in the Bio Rex lobby

Aalto University and Konstsamfundet are deepening their collaboration. As part of this, the award-winning works of N盲yt枚s/N盲yttely25 will be showcased in Helsinki city centre at Bio Rex in the Lasipalatsi block.
Sustainability Action Boosterin hankekoordinaattori Jasmin J盲rvinen vastaanotti palkinnon New Yorkissa.
Press releases Published:

Groundbreaking grant model supporting student sustainability projects wins award in New York

Sustainability Action Booster grant model, developed by Aalto University, has received a prestigious international recognition from an UN-affiliated educational initiative. The model funds students' own experiments, ideas, and prototypes, and is now being praised for its bold, student-centered approach.