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Scientists find a bone-building switch that could fight osteoporosis

Date:
September 9, 2026
Source:
Universität Leipzig
Summary:
An experimental compound called AP503 significantly strengthened bones in mice by activating GPR133, a receptor that boosts bone formation while slowing bone loss. Because the same treatment has also been linked to stronger muscles, researchers see intriguing potential for combating age-related decline and osteoporosis.
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Osteoporosis, a condition that weakens bones and increases the risk of fractures, affects millions of people and remains a major challenge for doctors seeking safe treatments that can be used over long periods. In Germany alone, about six million people are affected, most of them women.

Because existing therapies can have limitations and side effects, researchers are looking for new biological targets that could lead to more effective ways of preserving or rebuilding bone. Scientists at Leipzig University have now identified one such target in GPR133, a receptor that appears to play an important role in keeping bones strong.

A Little-Known Receptor With a Major Role in Bone Health

GPR133 belongs to a group known as adhesion G protein-coupled receptors. These receptors sit on the surface of cells and help them respond to signals from their surroundings. Although this family of receptors is still not fully understood, the new findings suggest GPR133 is closely involved in the processes that build and maintain healthy bone.

"If this receptor is impaired by genetic changes, mice show signs of loss of bone density at an early age - similar to osteoporosis in humans. Using the substance AP503, which was only recently identified via a computer-assisted screen as a stimulator of GPR133, we were able to significantly increase bone strength in both healthy and osteoporotic mice," explains Professor Ines Liebscher, lead investigator of the study from the Rudolf Schönheimer Institute of Biochemistry at the Faculty of Medicine.

The results point to GPR133 as a potentially valuable target for future osteoporosis treatments. The researchers found that stimulating the receptor with AP503 increased bone strength not only in healthy mice, but also in mice with osteoporosis-like bone loss.

How GPR133 Helps Build Stronger Bones

Inside bone tissue, GPR133 responds to physical forces and interactions between nearby bone cells. When the receptor is activated, it sets off signaling that changes the balance between the cells that build bone and those that break it down.

Bone-forming cells (osteoblasts) are responsible for producing new bone tissue. Bone-resorbing cells (osteoclasts), by contrast, remove old bone as part of the skeleton's normal cycle of renewal. Healthy bones depend on maintaining the right balance between these two processes.

Activation of GPR133 encourages the activity of osteoblasts while reducing the activity of osteoclasts. This shifts the balance toward stronger and more durable bone.

AP503 appears to imitate the natural process that activates GPR133. That raises the possibility that the compound could eventually be used to increase bone strength or help restore bone that has already been weakened. One potential application would be osteoporosis associated with menopause, when declining hormone levels can accelerate bone loss in women.

Potential Benefits for Both Bone and Muscle

The findings could have broader implications because AP503 may affect more than the skeleton.

In an earlier study, researchers at Leipzig University had already found that activation with AP503 also strengthens skeletal muscle.

"The newly demonstrated parallel strengthening of bone once again highlights the great potential this receptor holds for medical applications in an aging population," says Dr. Juliane Lehmann, lead author of the study and a researcher at the Rudolf Schönheimer Institute of Biochemistry.

A treatment capable of improving both bone and muscle strength could be especially relevant for older adults, who often experience declines in both tissues at the same time. Maintaining stronger muscles can also support mobility and stability, while stronger bones can reduce vulnerability to fractures.

The Leipzig team is now pursuing several follow-up projects aimed at understanding GPR133 more fully. Researchers are also investigating whether AP503 could have applications in other diseases and are continuing to examine the receptor's wider functions throughout the body.

Leipzig's Longstanding Research Into GPR Receptors

For more than a decade, Leipzig University has made adhesion G protein-coupled receptors a major research priority through Collaborative Research Center 1423, Structural Dynamics of GPCR Activation and Signaling.

The program focuses on understanding how these receptors change shape, become activated, and transmit signals inside cells. Leipzig University is internationally recognized as a leading center for research in this area.


Story Source:

Materials provided by Universität Leipzig. Note: Content may be edited for style and length.


Journal Reference:

  1. Juliane Lehmann, Hui Lin, Zihao Zhang, Maren Wiermann, Albert M. Ricken, Franziska Brinkmann, Jana Brendler, Christian Ullmann, Luisa Bayer, Sandra Berndt, Anja Penk, Nadine Winkler, Franz Wolfgang Hirsch, Thomas Fuhs, Josef Käs, Peng Xiao, Torsten Schöneberg, Martina Rauner, Jin-Peng Sun, Ines Liebscher. The mechanosensitive adhesion G protein-coupled receptor 133 (GPR133/ADGRD1) enhances bone formation. Signal Transduction and Targeted Therapy, 2025; 10 (1) DOI: 10.1038/s41392-025-02291-y

Cite This Page:

Universität Leipzig. "Scientists find a bone-building switch that could fight osteoporosis." ScienceDaily. ScienceDaily, 9 September 2026. <www.sciencedaily.com/releases/2026/09/260909005305.htm>.
Universität Leipzig. (2026, September 9). Scientists find a bone-building switch that could fight osteoporosis. ScienceDaily. Retrieved September 9, 2026 from www.sciencedaily.com/releases/2026/09/260909005305.htm
Universität Leipzig. "Scientists find a bone-building switch that could fight osteoporosis." ScienceDaily. www.sciencedaily.com/releases/2026/09/260909005305.htm (accessed September 9, 2026).

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