Kinin B2 Receptor Activation Prevents the Evolution of Alzheimer's Disease Pathological Characteristics in a Transgenic Mouse Model
PHARMACEUTICALS
Authors: Nunes, Marielza Andrade; Toricelli, Mariana; Schowe, Natalia Mendes; Malerba, Helena Nascimento; Dong-Creste, Karis Ester; Azevedo Tuma Farah, Daniela Moura; De Angelis, Katia; Irigoyen, Maria Claudia; Gobeil, Fernand; Viel, Tania Araujo; Buck, Hudson Sousa
Abstract
Background: Alzheimer's disease is mainly characterized by remarkable neurodegeneration in brain areas related to memory formation. This progressive neurodegeneration causes cognitive impairment, changes in behavior, functional disability, and even death. Our group has demonstrated changes in the kallikrein-kinin system (KKS) in Alzheimer's disease (AD) experimental models, but there is a lack of evidence about the role of the KKS in Alzheimer's disease. Aim: In order to answer this question, we evaluated the potential of the kinin B2 receptors (BKB2R) to modify AD characteristics, particularly memory impairment, neurodegeneration, and A beta peptide deposition. Methods: To assess the effects of B2, we used transgenic Alzheimer's disease mice treated with B2 receptor (B2R) agonists and antagonists, and performed behavioral and biochemical tests. In addition, we performed organotypic hippocampal culture of wild-type (WT) and transgenic (TG) animals, where the density of cytokines, neurotrophin BDNF, activated astrocyte marker S100B, and cell death were analyzed after treatments. Results: Treatment with the B2R agonist preserved the spatial memory of transgenic mice and decreased amyloid plaque deposition. In organotypic hippocampal culture, treatment with B2R agonist decreased cell death, neuroinflammation, and S100B levels, and increased BDNF release. Conclusions: Our results indicate that the kallikrein-kinin system plays a beneficial role in Alzheimer's disease through B2R activation. The use of B2R agonists could, therefore, be a possible therapeutic option for patients diagnosed with Alzheimer's disease.
Evaluating S100B as a serum biomarker for central neurosarcoidosis
RESPIRATORY MEDICINE
Authors: Moss, B. P.; Patel, D. C.; Tavee, J. O.; Culver, D. A.
Abstract
Background: S100B is a calcium-binding protein found primarily in glial cells. In the setting of neuronal injury and disruption of the blood brain barrier, S100B can leak into the cerebrospinal fluid and systemic circulation. Objectives: To determine if serum S100B distinguishes patients with central neurosarcoidosis (NS) from patients with extra-neurologic sarcoidosis (ENS) and healthy controls, and if S100B levels correlate with MRI measures of disease burden. Methods: Patients were enrolled from the Cleveland Clinic Sarcoidosis Center. Patients with traumatic brain injury, central nervous system (CNS) infections, CNS malignancy, neurodegenerative disorders, schizophrenia, bipolar disorder, or melanoma were excluded. S100B levels were compared between patients with NS, ENS, and healthy controls, and between NS patients with varying degrees of post-contrast enhancement on MRI. Results: Median (interquartile range) S100B levels were 101 pg/mL (92, 136) for 11 NS patients, 89 pg/mL (73, 107) for 11 ENS patients, and 60 pg/mL (39, 74) for 26 healthy controls. There was a significant difference between NS and control groups (p = 0.01). The difference between NS and ENS groups did not rise to the level of statistical significance (p = 0.178). S100B levels were significantly different between NS patients with varying degrees of enhancement on MRI (p = 0.04). Conclusions: S100B deserves additional study as a biomarker for CNS injury in NS. It may be useful as a longitudinal measure of disease activity.