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Updated: May 30, 2026

Immunohistochemical Visualization of Hippocampal Neuron Activity After Spatial Learning in a Mouse Model of Neurodevelopmental Disorders
Published on: May 12, 2015
Cathepsin K deficiency in mice induces structural and metabolic changes in the central nervous system that are
Stephanie Dauth1, Ruxandra F Sîrbulescu, Silvia Jordans
1School of Engineering and Science, Research Center MOLIFE-Molecular Life Science, Jacobs University Bremen, Campus Ring 1, 28759 Bremen, Germany.
Background:
Cathepsin K is a cysteine peptidase known for its importance in osteoclast-mediated bone resorption. Inhibitors of cathepsin K are in clinical trials for treatment of osteoporosis. However, side effects of first generation inhibitors included altered levels of related cathepsins in peripheral organs and in the central nervous system (CNS). Cathepsin K has been recently detected in brain parenchyma and it has been linked to neurobehavioral disorders such as schizophrenia. Thus, the study of the functions that cathepsin K fulfils in the brain becomes highly relevant.
Results:
Cathepsin K messenger RNA was detectable in all brain regions of wild type (WT) mice. At the protein level, cathepsin K was detected by immunofluorescence microscopy in vesicles of neuronal and non-neuronal cells throughout the mouse brain. The hippocampus of WT mice exhibited the highest levels of cathepsin K activity in fluorogenic assays, while the cortex, striatum, and cerebellum revealed significantly lower enzymatic activities. At the molecular level, the proteolytic network of cysteine cathepsins was disrupted in the brain of cathepsin K-deficient (Ctsk⁻/⁻) animals. Specifically, cathepsin B and L protein and activity levels were altered, whereas cathepsin D remained largely unaffected. Cystatin C, an endogenous inhibitor of cysteine cathepsins, was elevated in the striatum and hippocampus, pointing to regional differences in the tissue response to Ctsk ablation. Decreased levels of astrocytic glial fibrillary acidic protein, fewer and less ramified profiles of astrocyte processes, differentially altered levels of oligodendrocytic cyclic nucleotide phosphodiesterase, as well as alterations in the patterning of neuronal cell layers were observed in the hippocampus of Ctsk⁻/⁻ mice. A number of molecular and cellular changes were detected in other brain regions, including the cortex, striatum/mesencephalon, and cerebellum. Moreover, an overall induction of the dopaminergic system was found in Ctsk⁻/⁻ animals which exhibited reduced anxiety levels as well as short- and long-term memory impairments in behavioral assessments.
Conclusion:
We conclude that deletion of the Ctsk gene can lead to deregulation of related proteases, resulting in a wide range of molecular and cellular changes in the CNS with severe consequences for tissue homeostasis. We propose that cathepsin K activity has an important impact on the development and maintenance of the CNS in mice.
Insights
Cathepsin K deficiency in mice disrupts brain homeostasis, altering related proteases and leading to neurobehavioral deficits including anxiety and memory impairments. This highlights cathepsin K's crucial role in central nervous system development and maintenance.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Cathepsin K is vital for bone resorption and targeted by osteoporosis treatments.
- First-generation inhibitors caused side effects, altering cathepsin levels in the CNS.
- Cathepsin K's presence in the brain is linked to neurobehavioral disorders, necessitating functional studies.
Purpose of the Study:
- To investigate the role and function of cathepsin K within the mouse brain.
- To analyze the molecular and cellular consequences of cathepsin K deficiency in the CNS.
- To assess the impact of cathepsin K on neurobehavioral outcomes.
Main Methods:
- Detection of cathepsin K mRNA and protein via immunofluorescence microscopy in wild-type mice.
- Measurement of cathepsin K activity in various brain regions using fluorogenic assays.
- Analysis of cysteine cathepsin network, glial markers, and dopaminergic system in cathepsin K-deficient mice.
- Behavioral assessments including anxiety and memory tests.
Main Results:
- Cathepsin K is expressed in neurons and non-neuronal cells across the mouse brain, with highest activity in the hippocampus.
- Ctsk deficiency altered cathepsin B and L levels and increased cystatin C in specific brain regions.
- Cathepsin K deficiency led to molecular and cellular changes in astrocytes and oligodendrocytes, impacting neuronal layers.
- Mice lacking cathepsin K showed dopaminergic system induction, reduced anxiety, and impaired short- and long-term memory.
Conclusions:
- Cathepsin K gene deletion disrupts the CNS proteolytic network, causing widespread molecular and cellular alterations.
- These changes in the central nervous system have significant consequences for tissue homeostasis.
- Cathepsin K activity is essential for the proper development and maintenance of the mouse brain.

