Flagella can be used to make magnetically-controlled microfluidic and nanoscale devices for biomedical applications in both vitro and vivo environments. They are capable of operating with high precision on the cellular and subcellular level. So far, scientists and engineers have successfully used monolithic inorganic materials or photoactive polymers [1] to mimic the helical bacterial flagella whose rotary-propulsion mechanism effectively overcomes the dominant viscous forces that prevail in a low Reynolds-number environment. Here, we focus on bacterial flagella and their rotary motion. The bacterial flagellum is an ideal biomaterial for constructing self-propelling nanoswimmers because it can reversibly change its geometry in response to d...
The bacterial flagellum is probably the most complex organelle found in bacteria. Although the ribos...
Nature consists of numerous solutions to overcome challenges in designing artificial systems. Variou...
The bacterial flagellar motor is the most complex structure in the bacterial cell, driving the ion-d...
Flagella can be used to make magnetically-controlled microfluidic and nanoscale devices for biomedic...
Currently there is a great deal of interest in micro and nano scale robotics for biomedical applicat...
Artificial bacterial flagella (ABFs) consist of helical tails resembling natural flagella fabricated...
We show that DNA-based self-assembly can serve as a general and flexible tool to construct artificia...
We show that DNA-based self-assembly can serve as a general and flexible tool to construct artificia...
In this article, a porous hollow biotemplated nanoscale helix that can serve as a low Reynolds numbe...
Abstract — Swimming microrobots have the potential to be used in medical applications such as target...
The present work describes for the first time the production of artificial bacterial flagella (ABFs)...
The bacterial flagellar motor (BFM) is a molecular complex ca. 45 nm in diameter that rotates the pr...
The bacterial flagellar motor (BFM) is a molecular complex ca. 45 nm in diameter that rotates the pr...
Bacterial flagella with their exceptional primary properties have demonstrated to be promising bio-f...
Bacterial rotational motor complexes that propel flagellated bacteria possess unique properties like...
The bacterial flagellum is probably the most complex organelle found in bacteria. Although the ribos...
Nature consists of numerous solutions to overcome challenges in designing artificial systems. Variou...
The bacterial flagellar motor is the most complex structure in the bacterial cell, driving the ion-d...
Flagella can be used to make magnetically-controlled microfluidic and nanoscale devices for biomedic...
Currently there is a great deal of interest in micro and nano scale robotics for biomedical applicat...
Artificial bacterial flagella (ABFs) consist of helical tails resembling natural flagella fabricated...
We show that DNA-based self-assembly can serve as a general and flexible tool to construct artificia...
We show that DNA-based self-assembly can serve as a general and flexible tool to construct artificia...
In this article, a porous hollow biotemplated nanoscale helix that can serve as a low Reynolds numbe...
Abstract — Swimming microrobots have the potential to be used in medical applications such as target...
The present work describes for the first time the production of artificial bacterial flagella (ABFs)...
The bacterial flagellar motor (BFM) is a molecular complex ca. 45 nm in diameter that rotates the pr...
The bacterial flagellar motor (BFM) is a molecular complex ca. 45 nm in diameter that rotates the pr...
Bacterial flagella with their exceptional primary properties have demonstrated to be promising bio-f...
Bacterial rotational motor complexes that propel flagellated bacteria possess unique properties like...
The bacterial flagellum is probably the most complex organelle found in bacteria. Although the ribos...
Nature consists of numerous solutions to overcome challenges in designing artificial systems. Variou...
The bacterial flagellar motor is the most complex structure in the bacterial cell, driving the ion-d...