Close Menu
  • News
    • Medical
    • Nanomaterials
    • AI & Robotics
    • 2D Materials
    • Metamaterials
    • Nanoelectronics
    • ETF’s
    • Medicine
  • Environment
    • Earth.com
    • TreeHugger
    • Nanomuscle
  • Beauty
    • Makeupanalysis
What's Hot

Biomass-Derived Nanomaterials Offer a Greener Route to Pollution Cleanup

September 1, 2026

Nanozyme Aptasensors Show Promise for Faster Food, Health, and Environmental Testing

September 1, 2026

Researchers Solve Two Major Problems Holding Back SiC Electronics

September 1, 2026
Facebook X (Twitter) Instagram
  • Contact Us
  • Privacy Policy
  • Terms & Conditions
Facebook X (Twitter) Instagram
Elnano – Global Innovative Nanotechnology SolutionsElnano – Global Innovative Nanotechnology Solutions
  • News
    • Medical
    • Nanomaterials
    • AI & Robotics
    • 2D Materials
    • Metamaterials
    • Nanoelectronics
    • ETF’s
    • Medicine
  • Environment
    • Earth.com
    • TreeHugger
    • Nanomuscle
  • Beauty
    • Makeupanalysis
Elnano – Global Innovative Nanotechnology SolutionsElnano – Global Innovative Nanotechnology Solutions
Home » Soft microrobots can manipulate individual cells
Nanotech

Soft microrobots can manipulate individual cells

September 20, 2025No Comments3 Mins Read
Share
Facebook Twitter LinkedIn Pinterest Email

 

Soft microrobots can manipulate individual cells

Researchers in Hungary have developed microscopic tools able to capture and move individual cells with more ease and efficiency.

 

 

For decades, the dream of microscopic robots capable of performing intricate tasks within the human body and other environments has fuelled scientific research and innovation. These tiny machines, often referred to as microrobots, have the potential to revolutionise fields ranging from medicine to environmental science by offering unparalleled precision and control at the cellular level.

Now, this futuristic vision has moved another step closer to reality. Researchers in Hungary have made a significant advance by designing soft microrobots that can effortlessly capture and manipulate individual cells, without the cells needing any sort of pre-treatment.

A team at the HUN-REN Biological Research Centre, Szeged, recently published a study in Advanced Materials, describing their work. They explain how they developed flexible microrobots, guided by lasers, able to gently capture and release cells. Unlike previous methods that required cells to be treated beforehand, these microrobots can hold and move cells without any special preparation. This innovation allows for more efficient and less invasive methods.

Single-cell analysis has become a cornerstone of biological research, enabling scientists to delve into the genetic and proteomic makeup of individual cells. Achieving this feat requires the manipulation of delicate objects at tiny scales with extreme precision, often involving complex and cumbersome techniques. Traditional methods like microgrippers and optical tweezers have made significant strides, but they still face challenges, particularly concerning the treatment and potential damage to cells.

See also  'Bottlebrush' particles deliver big chemotherapy payloads directly to cancer cells

The new, soft microrobots developed at HUN-REN can overcome these limitations through their elasticity and precise control. As well as capturing and moving, another key advantage is their ability to release the cells at any time. The team demonstrated this versatility by designing three types of structures, each able to handle a distinct cell manipulation task:

 

 

1. Cell Transporter: This structure is designed to enclose and move a cell selected from among many surrounding cells in a microfluidic environment. It consists of two half-spheres that open to accommodate the cell, allowing it to be transported with minimal force and released at any desired location.

2. Cell Holder: The second type is somewhat the opposite to the first: it holds a cell firmly, restricting its movement to within 50 nanometres. This tool’s purpose is to keep the cell still for imaging. A huge additional benefit is being able to rotate it to any preferred orientation under the microscope to access imaging directions at will. The team demonstrated this microtool’s potential by using it to improve the optical resolution of 3D fluorescence imaging of cells.

3. Cell Interaction Initiator: This setup uses two structures to facilitate controlled cell-cell interactions. One structure holds a cell firmly, while the other manoeuvres a second cell into contact, enabling precise observation of the interaction process and the changes at a molecular level.

The microrobots are made using a laser-based, additive microfabrication technique known as two-photon polymerisation. This method allows the creation of intricate 3D structures that are both robust and flexible. The deformable parts of the structures are as thin as 300 nanometres, which is necessary for the optical tweezers to bend them.

See also  Targeted nanoparticles can jumpstart T cells, allowing them to attack ovarian tumors while avoiding side effects

“We believe that the presented optical tweezers-based methodology using task-specific microtools will allow the investigation of single, non-adherent cells in a much more efficient way,” the researchers write. “This proves that soft micro-robotics has huge potential in biological applications.”

 

 

Comments »

 


 

If you enjoyed this article, please consider sharing it:

 

 

 

Source link

cells individual manipulate microrobots Soft
Share. Facebook Twitter Pinterest LinkedIn Tumblr Email

Related Posts

New Versatile Nanoplatelet Platform Optimizes Tumor Imaging and Cancer Destruction

September 1, 2026

IBM debuts world’s first sub-1 nanometre chip technology

August 31, 2026

Atom-by-atom manufacturing takes a step forward

August 31, 2026

Pittcon Announces 2025 Nobel Laureate, Dr. Omar Yaghi, as Wallace H. Coulter Keynote Lecturer

August 31, 2026
Add A Comment

Comments are closed.

Top Posts

Light-powered micromotors can move through air

November 14, 2025

6-Channel Piezo Driver for Precision Actuators & Transducers

April 6, 2026

Electric fields steer nanoparticles through a liquid-filled maze, offering improved drug delivery and purification

November 12, 2025

Subscribe to Updates

Get the latest sports news from SportsSite about soccer, football and tennis.

Explore the future with our Nanotech blog—covering innovations, research, applications, and breakthroughs shaping science, medicine, and modern technology.

We're social. Connect with us:

Facebook X (Twitter) Instagram YouTube
Top Insights

Biomass-Derived Nanomaterials Offer a Greener Route to Pollution Cleanup

September 1, 2026

Nanozyme Aptasensors Show Promise for Faster Food, Health, and Environmental Testing

September 1, 2026

Researchers Solve Two Major Problems Holding Back SiC Electronics

September 1, 2026

Subscribe to Updates

Get the latest creative news from FooBar about art, design and business.

  • Contact Us
  • Privacy Policy
  • Terms & Conditions

© 2026 elnano.com - All rights reserved.

Type above and press Enter to search. Press Esc to cancel.