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Home NEWS Science News Biology

A potential new therapeutic approach for curing neurodegenerative diseases

Bioengineer by Bioengineer
June 12, 2023
in Biology
Reading Time: 5 mins read
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Dr. Thomas Herrmannsdörfer (left) and Prof. Richard Funk investigate the therapeutic effect of magnetic fields on impaired motor neurons.
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Motor neurons in healthy individuals send signals to the skeletal muscles. Amyotrophic lateral sclerosis (ALS), however, is currently an incurable, neurodegenerative disease in which motor neurons are severely damaged and can therefore no longer transmit these signals. As a result, the muscles fail to receive instructions and can no longer work, and they gradually waste away. An interdisciplinary team led by physicist Dr. Thomas Herrmannsdörfer and cell biologist Dr. Arun Pal from the Helmholtz-Zentrum Dresden-Rossendorf (HZDR) as well as physician Prof. Richard Funk has proven in cell experiments that magnetic fields can restore impaired motor neurons. This could serve as the groundwork for an entirely new therapeutic approach in curing neurodegenerative diseases, as currently reported in Cells, the international journal for cell and molecular biology as well as biophysics (DOI: 10.3390/cells12111502).

Dr. Thomas Herrmannsdörfer (left) and Prof. Richard Funk investigate the therapeutic effect of magnetic fields on impaired motor neurons.

Credit: HZDR/Amac Garbe

Motor neurons in healthy individuals send signals to the skeletal muscles. Amyotrophic lateral sclerosis (ALS), however, is currently an incurable, neurodegenerative disease in which motor neurons are severely damaged and can therefore no longer transmit these signals. As a result, the muscles fail to receive instructions and can no longer work, and they gradually waste away. An interdisciplinary team led by physicist Dr. Thomas Herrmannsdörfer and cell biologist Dr. Arun Pal from the Helmholtz-Zentrum Dresden-Rossendorf (HZDR) as well as physician Prof. Richard Funk has proven in cell experiments that magnetic fields can restore impaired motor neurons. This could serve as the groundwork for an entirely new therapeutic approach in curing neurodegenerative diseases, as currently reported in Cells, the international journal for cell and molecular biology as well as biophysics (DOI: 10.3390/cells12111502).

ALS is an incurable motor neuron disease, which generally leads to death within two to five years. No successful therapy has yet been developed.

Thomas Herrmannsdörfer, department head at HZDR’s Dresden High Magnetic Field Laboratory (HLD), works closely with physician Prof. Richard Funk. Together with colleagues from the Universities of Dresden and Rostock, they have assembled a research team stemming from the fields of physics, medicine, biology and biotechnology to investigate the therapeutic effect of magnetic fields on impaired motor neurons. In addition to the HLD, the HZDR’s Center for Radiopharmaceutical Cancer Research (ZRT) was also involved in the project.

 
Promising in vitro trials

The cell biologists first reprogrammed skin cells from both healthy individuals as well as from ALS patients into motor neurons. Motor neurons possess projections (axons) measuring up to one meter long, which are used to transport substances and to transmit information. Researchers led by Arun Pal subsequently exposed motor neurons programmed in this way to magnetic fields of different strengths for different periods of time in petri dishes. Additional magnetic field parameters such as frequency, orientation and waveform were also varied. “In the numerous series of experiments, we were able to demonstrate that the motor neurons from ALS patients respond to the magnetic fields,” Pal says, summarizing the results. “The axonal transport of mitochondria (the power stations of the cell) and other organelles that are impaired in ALS cells is reactivated by stimulation with magnetic fields. Furthermore, the axonal regeneration—which is the ability to regrow and reconnect—can be restored.” The team used live cell imaging and cell biological methods for their study. At the same time, the team could also demonstrate that healthy cells were not damaged by this stimulation.

Although the results are a milestone for Herrmannsdörfer and his team, he nevertheless puts them into perspective: “We regard these in vitro results as an encouraging approach on the path to a potential novel therapy for ALS as well as other neurogenerative diseases. We also know, however, that detailed follow-up studies are required to corroborate our findings.”

 
Transition to in vivo studies

Scientists are subsequently planning long-term and in vivo studies to further expand the therapeutic potential of magnetic field treatments. These studies include investigating the optimal technical parameters of the applied magnetic field. In addition, they aim to deepen the understanding of the cellular response to the various magnetic stimuli and therefore better comprehend the underlying mechanisms. They will also study how cellular changes in other neurodegenerative disorders such as Parkinson’s, Huntington’s and Alzheimer’s diseases react to magnetic field stimulation. In the long-term, the scientists are planning clinical pilot studies using specialized equipment for magnetic simulation.

The research project is now called “ThaXonian” – Magnetic Axon Therapy. The pioneers of the project include:

  •     idea, concept and project management: Richard Funk (TU Dresden) and Thomas Herrmannsdörfer (HZDR)
  •     stem cell technology, skin cell reprogramming, establishment of neuronal cell lines: Andreas Hermann (University of Rostock)
  •     cellular assay development including video evaluation: team of Andreas Hermann (Rostock University) and Arun Pal (HZDR)
  •     magnetic field technology and coil construction: Thomas Herrmannsdörfer with HLD team at HZDR
  •     cellular assays in the magnetic field: Arun Pal, Wonphorn Kandhavivorn, Thomas Herrmannsdörfer with HLD team at HZDR as well as Jens  Pietzsch with ZRT team at HZDR.

Publication:

W. Kandhavivorn, H. Glaß, T. Herrmannsdörfer, T. M. Böckers, M. Uhlarz, J. Gronemann, R. H. W. Funk, J. Pietzsch, A. Pal and A. Hermann: Restoring Axonal Organelle Motility and Regeneration in Cultured FUS-ALS Motoneurons through Magnetic Field Stimulation Suggests an Alternative Therapeutic Approach, Cells (2023) DOI: 10.3390/cells12111502

 

Further information:

Dr. Arun Pal I HZDR Dresden High Magnetic Field Laboratory
Phone: +49 351 260 3549, 2631 I Email: [email protected]

Dr. Thomas Herrmannsdörfer I HZDR Dresden High Magnetic Field Laboratory
Phone: +49 351 260 3320 I Email: [email protected]
https://www.hzdr.de/thaxonian

Media Contact “ThaXonian”
Kim-Astrid Magister | HZDR Department of Communications and Media Relations
Phone: +49 351 260 3406 | Email: [email protected]

 

The Helmholtz-Zentrum Dresden-Rossendorf (HZDR) performs – as an independent German research center – research in the fields of energy, health, and matter. We focus on answering the following questions:

• How can energy and resources be utilized in an efficient, safe, and sustainable way?

• How can malignant tumors be more precisely visualized, characterized, and more effectively treated?

• How do matter and materials behave under the influence of strong fields and in smallest   dimensions?

To help answer these research questions, HZDR operates large-scale facilities, which are also used by visiting researchers: the Ion Beam Center, the Dresden High Magnetic Field Laboratory and the ELBE Center for High-Power Radiation Sources.

HZDR is a member of the Helmholtz Association and has six sites (Dresden, Freiberg, Görlitz, Grenoble, Leipzig, Schenefeld near Hamburg) with almost 1,500 members of staff, of whom about 670 are scientists, including 220 Ph.D. candidates.



Journal

Cells

DOI

10.3390/cells12111502

Method of Research

Experimental study

Subject of Research

Cells

Article Title

Restoring Axonal Organelle Motility and Regeneration in Cultured FUS-ALS Motoneurons through Magnetic Field Stimulation Suggests an Alternative Therapeutic Approach

Article Publication Date

29-May-2023

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