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MMP-9 in translation: from molecule to brain physiology, pathology, and therapy
Behnam Vafadari1, Ahmad Salamian1, Leszek Kaczmarek2
1Nencki Institute, Warsaw, Pasteura, Poland.
Abstract:
Matrix metalloproteinase-9 (MMP-9) is a member of the metzincin family of mostly extracellularly operating proteases. Despite the fact that all of these enzymes might be target promiscuous, with largely overlapping catalogs of potential substrates, MMP-9 has recently emerged as a major and apparently unique player in brain physiology and pathology. The specificity of MMP-9 may arise from its very local and time-restricted actions, even when released in the brain from cells of various types, including neurons, glia, and leukocytes. In fact, the quantity of MMP-9 is very low in the naive brain, but it is markedly activated at the levels of enzymatic activity, protein abundance, and gene expression following various physiological stimuli and pathological insults. Neuronal MMP-9 participates in synaptic plasticity by controlling the shape of dendritic spines and function of excitatory synapses, thus playing a pivotal role in learning, memory, and cortical plasticity. When improperly unleashed, MMP-9 contributes to a large variety of brain disorders, including epilepsy, schizophrenia, autism spectrum disorder, brain injury, stroke, neurodegeneration, pain, brain tumors, etc. The foremost mechanism of action of MMP-9 in brain disorders appears to be its involvement in immune/inflammation responses that are related to the enzyme's ability to process and activate various cytokines and chemokines, as well as its contribution to blood-brain barrier disruption, facilitating the extravasation of leukocytes into brain parenchyma. However, another emerging possibility (i.e., the control of MMP-9 over synaptic plasticity) should not be neglected. The translational potential of MMP-9 has already been recognized in both the diagnosis and treatment domains. The most striking translational aspect may be the discovery of MMP-9 up-regulation in a mouse model of Fragile X syndrome, quickly followed by human studies and promising clinical trials that have sought to inhibit MMP-9. With regard to diagnosis, suggestions have been made to use MMP-9 alone or combined with tissue inhibitor of matrix metalloproteinase-1 or brain-derived neurotrophic factor as disease biomarkers. MMP-9, through cleavage of specific target proteins, plays a major role in synaptic plasticity and neuroinflammation, and by those virtues contributes to brain physiology and a host of neurological and psychiatric disorders. This article is part of the 60th Anniversary special issue.
Insights
Matrix metalloproteinase-9 (MMP-9) is crucial for brain function and disease. Its role in synaptic plasticity and neuroinflammation impacts learning, memory, and neurological disorders, offering diagnostic and therapeutic potential.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Matrix metalloproteinase-9 (MMP-9) is an extracellular protease with diverse roles.
- While generally promiscuous, MMP-9 exhibits specific actions in the brain, crucial for both normal function and disease states.
- MMP-9 levels are low in naive brains but significantly increase during physiological and pathological conditions.
Purpose of the Study:
- To elucidate the multifaceted roles of MMP-9 in brain physiology and pathology.
- To explore MMP-9's involvement in synaptic plasticity, learning, memory, and neuroinflammation.
- To highlight the diagnostic and therapeutic translational potential of MMP-9 in neurological disorders.
Main Methods:
- Review and synthesis of existing literature on MMP-9 in the brain.
- Analysis of MMP-9's enzymatic activity, protein abundance, and gene expression.
- Investigation of MMP-9's interactions with cytokines, chemokines, and blood-brain barrier components.
Main Results:
- Neuronal MMP-9 regulates synaptic plasticity, impacting dendritic spine morphology and excitatory synapse function, vital for learning and memory.
- MMP-9 dysregulation contributes to various brain disorders, including epilepsy, schizophrenia, autism, injury, stroke, neurodegeneration, pain, and tumors.
- MMP-9's role in neuroinflammation involves processing cytokines/chemokines and compromising the blood-brain barrier, facilitating leukocyte infiltration.
Conclusions:
- MMP-9 is a key mediator of synaptic plasticity and neuroinflammation, influencing brain health and disease.
- Targeting MMP-9 shows promise for diagnosing and treating neurological and psychiatric conditions, such as Fragile X syndrome.
- Further research into MMP-9's specific mechanisms and biomarkers like MMP-9, TIMP-1, and BDNF is warranted for clinical applications.

