Cerebral Amyloid Angiopathy (CAA), characterized by the presence of amyloid β (Aβ) deposits in cerebral blood vessels has been associated with cognitive impairment and Alzheimer’s disease (AD). Vascular risk factors, such as type 2 diabetes (T2D), are known to affect vascular pathology and CAA-like depositions. Furthermore, Aβ deposition in blood vessels accompanied my inflammation especially gliosis, has been reported in the transgenic AD mouse models 5xFAD and APP SL that express human Aβ. In this study, we therefore investigated the prevalence of CAA-like pathology in T2D-induced APPxhQC transgenic mice. Male transgenic APPxhQC mice, expressing human APP751 with the Swedish and the London mutation and human glutaminyl cyclase (hQC) enzyme, were used. Mice were either fed with high fat (HFD) or control diet and daily treated with streptozocin for 3 days. Brain concentrations of soluble and insoluble Aβ 1-38 , 1-40 and 1-42 peptides were determined using an immunosorbent assay. Aβ deposits and gliosis were detected by immunofluorescent labelling. Exceptionally strong but hollow Aβ deposits in the thalamus that go in medio-lateral direction were found surrounding deposit free areas. These hollow Aβ deposits were accompanied by intense microglia and astrocytic activation upon HFD-streptozocin treatment. The location and course of these hollow deposits indicated that they surrounded blood vessels. Additionally, plaque-associated insoluble Aβ 40 deposits in T2D-induced APPxhQC mice were significantly higher compared to the control group. Presence of Aβ deposits surrounding blood vessels accompanied by intense gliosis seems common in APPxhQC mice and might indicate a CAA-like pathology specific to this AD model.
Parkinson's disease (PD) is a neurodegenerative movement disorder of high global burden. Uncertainties regarding its exact etiology have been hindering the development of curative therapies. As microglia, the brain's immune cells, are suspected to contribute to neurodegeneration by instigating neuroinflammation, existing anti-inflammatory agents could potentially serve as disease-modifying treatments for PD. Here we evaluated the impact of montelukast, a leukotriene receptor antagonist and anti-inflammatory drug, on motor symptoms and neuropathology in an α-synuclein transgenic mouse model (Line 61) for early onset/genetic PD. Two -weeks -old male Line 61 mice and non-transgenic littermates received daily 10 mg/kg montelukast or vehicle orally for 10 weeks. Motor functions were assessed through behavioral tests. Brain tissue was analyzed via unbiased transcriptomics, biochemically, and histologically for various parameters, including microglial and inflammation mediators. Upon montelukast treatment, Line 61 mice significantly improved their beam walk performance compared to vehicle -treated mice. The striatum and cerebellum of the montelukast -treated group showed microglial changes toward a smaller but more ramified appearance. Transcriptomics analysis revealed SGK1, a serine/threonine kinase upstream of NFκB and known target in PD, as the most downregulated gene in the striatum of montelukast -treated animals. This downregulation correlated with reduced striatal protein levels of activated IκB kinase, suggesting a reduced NFκB pathway activity upon montelukast treatment. Thus, oral montelukast administration might be promising for the management of PD, with specific effects on motor coordination and balance.
Objectives: Aggregation and misfolding of amyloid beta (Af3) and tau proteins, suggested to arise from post-translational modification processes, are thought to be the main cause of Alzheimer 's disease (AD). Additionally, a plethora of evidence exists that links metabolic dysfunctions such as obesity, type 2 diabetes (T2D), and dyslipidemia to the pathogenesis of AD. We thus investigated the combinatory effect of T2D and human glutaminyl cyclase activity (pyroglutamylation), on the pathology of AD and whether astaxanthin (ASX) treatment ameliorates accompanying pathophysiological manifestations. Methods: Male transgenic AD mice, APPxhQC, expressing human APP751 with the Swedish and the London mutation and human glutaminyl cyclase (hQC) enzyme and their non-transgenic (NTG) littermates were used. Both APPxhQC and NTG mice were allocated to 3 groups, control, T2D-control, and T2D-ASX. Mice were fed control or high fat diet + ASX for 13 weeks starting at an age of 11-12 months. High fat diet fed mice were further treated with streptozocin for T2D induction. Effects of genotype, T2D induction, and ASX treatment were evaluated by analysing glycemic readouts, lipid concentration, Af3 deposition, hippocampus-dependent cognitive function and nutrient sensing using immunosorbent assay, ELISA-based assays, western blotting, immuno fluorescence staining, and behavioral testing via Morris water maze (MWM), respectively. Results: APPxhQC mice presented a higher glucose sensitivity compared to NTG mice. T2D-induced brain dysfunction was more severe in NTG compared to the APPxhQC mice. T2D induction impaired memory functions while increasing hepatic LC3B, ABCA1, and p65 levels in NTG mice. T2D induction resulted in a progressive shift of Af3 from the soluble to insoluble form in APPxhQC mice. ASX treatment reversed T2D-induced memory dysfunction in NTG mice and in parallel increased hepatic pAKT while decreasing p65 and increasing cerebral p-S6rp and p65 levels. ASX treatment reduced soluble Af338 and Af340 and insoluble Af340 levels in T2D-induced APPxhQC mice. Conclusions: We demonstrate that T2D induction in APPxhQC mice poses additional risk for AD pathology as seen by increased Af3 deposition. Although ASX treatment reduced Af3 expression in T2D-induced APPxhQC mice and rescued T2D-induced memory impairment in NTG mice, ASX treatment alone may not be effective in cases of T2D comorbidity and AD. m 2024 The Author(s). Published by Elsevier GmbH. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
IntroductionAutism spectrum disorder (ASD) is a persistent neurodevelopmental condition characterized by two core behavioral symptoms: impaired social communication and interaction, as well as stereotypic, repetitive behavior. No distinct cause of ASD is known so far; however, excitatory/inhibitory imbalance and a disturbed serotoninergic transmission have been identified as prominent candidates responsible for ASD etiology.MethodsThe GABAB receptor agonist R-Baclofen and the selective agonist for the 5HT7 serotonin receptor LP-211 have been reported to correct social deficits and repetitive behaviors in mouse models of ASD. To evaluate the efficacy of these compounds in more details, we treated BTBR T+ Itpr3tf/J and B6.129P2-Fmr1tm1Cgr/J mice acutely with R-Baclofen or LP-211 and evaluated the behavior of animals in a series of tests.ResultsBTBR mice showed motor deficits, elevated anxiety, and highly repetitive behavior of self-grooming. Fmr1-KO mice exhibited decreased anxiety and hyperactivity. Additionally, Fmr1-KO mice’s ultrasonic vocalizations were impaired suggesting a reduced social interest and communication of this strain. Acute LP-211 administration did not affect the behavioral abnormalities observed in BTBR mice but improved repetitive behavior in Fmr1-KO mice and showed a trend to change anxiety of this strain. Acute R-Baclofen treatment improved repetitive behavior only in Fmr1-KO mice.ConclusionOur results add value to the current available data on these mouse models and the respective compounds. Yet, additional studies are needed to further test R-Baclofen and LP-211 as potential treatments for ASD therapy.
Accumulation of amyloid beta (Aβ) and tau proteins have for decades been thought to be central in the pathogenesis of Alzheimer’s disease (AD). More recently, a plethora of evidence emerged that links metabolic dysfunctions such as obesity, type 2 diabetes (T2D), and dyslipidemia with the pathophysiology of AD. In this study, we investigated the effects of streptozocin and high fat diet (HFD) induced T2D on lipid and amyloid beta metabolism in APPxhQC transgenic mice and their wild-type littermates. APPxhQC mice were generated by crossbreeding APP SL with hQC mice. As controls wild-type littermates were used. APP SL mice express human APP751 with the Swedish and the London mutation on a C57Bl/6RccHsd background. hQC mice express human glutaminyl cyclase (QC) enzyme on B6CBAF1/J background. Plasma lipids (triglycerides and cholesterol) and liver function enzymes (aspartate aminotransferase and alanine transaminase, ALT and ALT, respectively) were determined by ELISA. Brain concentrations of soluble and insoluble Aβ 1-38 , 1-40 and 1-42 peptides were determined using an immunosorbent assay (Mesoscale discovery immunosorbent assay) while pGlu Aβ 1-42 was measured by ELISA. Hepatic mRNA expression levels of genes involved in cholesterol efflux and lipid metabolism were determined by quantitative real time polymerase chain reaction (qRT-PCR). T2D induced increased concentrations of plasma cholesterol as well as AST and ALT levels. The magnitudes, however, were dependent on sex and genotype and were statistically significant in female wild-type mice, while a similar pattern was observed in APPxhQC transgenes. These increased plasma concentrations were accompanied by a down-regulation of hepatic gene expression levels of LRP1, ABCA1, PPARα, PBC1β, and NEP that were statistically significant in female wild-type mice, while a similarly pattern was observed in APPxhQC transgenic mice. More interestingly, T2D provoked a progressive shift of brain Aβ 1-38 and 1-40 from soluble to insoluble forms in male APPxhQC mice and a significant increase of pyroglutamate modified Aβ 1-42 in female mice. T2D in APPxhQC mice provokes a shift from soluble to large insoluble polymers of Aβ in the brain, corroborates the deteriorating role of T2D in the progression of AD
Defective degradation and clearance of amyloid-β as well as inflammation per se are crucial players in the pathology of Alzheimer's disease (AD). A defective transport across the blood-brain barrier is causative for amyloid-β (Aβ) accumulation in the brain, provoking amyloid plaque formation. Using primary porcine brain capillary endothelial cells and murine organotypic hippocampal slice cultures as in vitro models of AD, we investigated the effects of the antioxidant astaxanthin (ASX) on Aβ clearance and neuroinflammation. We report that ASX enhanced the clearance of misfolded proteins in primary porcine brain capillary endothelial cells by inducing autophagy and altered the Aβ processing pathway. We observed a reduction in the expression levels of intracellular and secreted amyloid precursor protein/Aβ accompanied by an increase in ABC transporters ABCA1, ABCG1 as well as low density lipoprotein receptor-related protein 1 mRNA levels. Furthermore, ASX treatment increased autophagic flux as evidenced by increased lipidation of LC3B-II as well as reduced protein expression of phosphorylated S6 ribosomal protein and mTOR. In LPS-stimulated brain slices, ASX exerted anti-inflammatory effects by reducing the secretion of inflammatory cytokines while shifting microglia polarization from M1 to M2 phenotype. Our data suggest ASX as potential therapeutic compound ameliorating AD-related blood brain barrier impairment and inflammation.
Parkinson's disease (PD) and dementia with Lewy bodies (DLB) are two common types of α-synucleinopathies and represent a high unmet medical need. Despite diverging clinical manifestations, both neurodegenerative diseases share several facets of their complex pathophysiology. Apart from α-synuclein aggregation, an impairment of mitochondrial functions, defective protein clearance systems and excessive inflammatory responses are consistently observed in the brains of PD as well as DLB patients. Leukotrienes are lipid mediators of inflammatory signaling traditionally known for their role in asthma. However, recent research advances highlight a possible contribution of leukotrienes, along with their rate-limiting synthesis enzyme 5-lipoxygenase, in the pathogenesis of central nervous system disorders. This review provides an overview of in vitro as well as in vivo studies, in summary suggesting that dysregulated leukotriene signaling is involved in the pathological processes underlying PD and DLB. In addition, we discuss how the leukotriene signaling pathway could serve as a future drug target for the therapy of PD and DLB.
EDITORIAL article Front. Mol. Neurosci., 08 November 2022Sec. Brain Disease Mechanisms https://doi.org/10.3389/fnmol.2022.1078804
Alzheimer’s disease (AD) is a debilitating neurodegenerative disease characterized by the accumulation of amyloid beta (Aβ) plaques in the brain. Aβ peptides are commonly subjected to post‐translational modifications like truncation known to play pivotal role in Aβ plaque aggregation. N‐terminally truncated Aβ peptides containing pyroglutamatic acid (pGlu) catalyzed by glutaminyl cyclase (QC) e.g., pGlu3‐Aβ (3‐40/42) are the major Aβ peptide fragments within the core of the neuritic plaques and correlate with disease severity and progression. Type 2 diabetes (T2D) is one of the major risk factors associated with AD and compelling evidence supports the notion that insulin resistance, a key feature of T2D, is involved in AD‐type neurodegeneration. Hence, in this study, we aim to establish a T2D phenotype in APPxhQC transgenic using low‐dose Streptozocin injection in combination with high fat diet (HFD).
Brain capillary endothelial cells (BCECs) are integral components of both the blood-brain barrier (BBB) and the neurovascular unit (NVU). Transport across the BBB is an important mediator of beta-amyloid (Aβ) accumulation in the brain and a contributing factor in the pathogenesis of Alzheimer's disease (AD). One of the receptors responsible for the transport of Aβ through the BBB is the low-density lipoprotein receptor-related protein 1 (LRP1). In addition, the development of AD and diabetes share many pathophysiological features including defective insulin signalling, impaired glucose metabolism, and cognitive decline. LRP1 is known to modulate insulin signalling by forming a dimer with insulin receptor beta when stimulated using insulin. Furthermore, LRP1 expression at the BBB is reduced during normal aging and in AD. Hence, we hypothesize that LRP1 activity in BCEC can be modulated using astaxanthin to improve Aβ clearance and insulin-mediated signalling at the BBB.By using the established in vitro porcine brain capillary endothelial cell (pBCEC) model of the BBB, we analyzed the effects of astaxanthin on LRP1 expression, Aβ clearance, insulin-mediated signalling and other systemic dysfunctions associated with AD at the protein and mRNA level. We also examined the ultra-structures by electron microscopy.pBCECs showed enhanced expression of LRP1 when treated with astaxanthin. We further observed improved insulin sensitivity when cells pre-incubated with astaxanthin were treated with Aβ1-40 , Aβ1-42 and Aβ1-40 + Aβ1-42 and insulin and further stimulated with insulin (10 nM). Increased expression of LRP1, Aβ-degrading enzymes, as well as autophagy and insulin signalling markers were observed when pBCECs pre-incubated with astaxanthin were further treated with amyloid beta peptides.Our results suggest that increased LRP1 expression by astaxanthin enhances insulin sensitivity, autophagy induction and improves Aβ degradation. Astaxanthin could thus be a promising therapeutic candidate for Alzheimer's disease.
Abstract Background To better understand the etiology and pathomechanisms of Alzheimer’s disease, several transgenic animal models that overexpress human tau or human amyloid-beta (Aβ) have been developed. In the present study, we generated a novel transgenic rat model by cross-breeding amyloid precursor protein (APP) rats with tau rats. We characterized this model by performing positron emission tomography scans combined with immunofluorescent labeling and cerebrospinal fluid analyses. Methods APP/Tau rats were generated by cross-breeding male McGill-R-Thy1-APP transgenic rats with female hTau-40/P301L transgenic rats. APP/Tau double transgenic rats and non-transgenic (ntg) littermates aged 7, 13, and 21 months were subjected to dynamic [11C] PiB scan and dynamic [18F]THK-5317 scans. For regional brain analysis, a template was generated from anatomical MR images of selected animals, which was co-registered with the PET images. Regional analysis was performed by application of the simplified reference tissue model ([11C]PiB data), whereas [18F]THK-5317 data were analyzed using a 2-tissue compartment model and Logan graphical analysis. In addition, immunofluorescent labeling (tau, amyloid) and cerebrospinal fluid analyses were performed. Results [11C]PiB binding potential (BP ND ) and [18F]THK-5317 volume of distribution (V T ) showed an increase with age in several brain regions in the APP/Tau group but not in the ntg control group. Immunohistochemical analysis of brain slices of PET-scanned animals revealed a positive correlation between Aβ labeling and [11C]PiB regional BP ND . Tau staining yielded a trend towards higher levels in the cortex and hippocampus of APP/Tau rats compared with ntg littermates, but without reaching statistical significance. No correlation was found between tau immunofluorescence labeling results and the respective [18F]THK-5317 V T values. Conclusions We thoroughly characterized a novel APP/Tau rat model using combined PET imaging and immunofluorescence analysis. We observed an age-related increase in [11C]PiB and [18F]THK-5317 binding in several brain regions in the APP/Tau group but not in the ntg group. Although we were able to reveal a positive correlation between amyloid labeling and [11C]PiB regional brain uptake, we observed relatively low human tau and amyloid fibril expression levels and a somewhat unstable brain pathology which questions the utility of this animal model for further studies.
Huntington’s disease (HD) is caused by an expansion of CAG triplets in the huntingtin gene, leading to severe neuropathological changes that result in a devasting and lethal phenotype. Neurodegeneration in HD begins in the striatum and spreads to other brain regions such as cortex and hippocampus, causing motor and cognitive dysfunctions. To understand the signaling pathways involved in HD, animal models that mimic the human pathology are used. The R6/2 mouse as model of HD was already shown to present major neuropathological changes in the caudate putamen and other brain regions, but recently established biomarkers in HD patients were yet not analyzed in these mice. We therefore performed an in-depth analysis of R6/2 mice to establish new and highly translational readouts focusing on Ctip2 as biological marker for motor system-related neurons and translocator protein (TSPO) as a promising readout for early neuroinflammation. Our results validate already shown pathologies like mutant huntingtin aggregates, ubiquitination, and brain atrophy, but also provide evidence for decreased tyrosine hydroxylase and Ctip2 levels as indicators of a disturbed motor system, while vesicular acetyl choline transporter levels as marker for the cholinergic system barely change. Additionally, increased astrocytosis and activated microglia were observed by GFAP, Iba1 and TSPO labeling, illustrating, that TSPO is a more sensitive marker for early neuroinflammation compared to GFAP and Iba1. Our results thus demonstrate a high sensitivity and translational value of Ctip2 and TSPO as new marker for the preclinical evaluation of new compounds in the R6/2 mouse model of HD.
Background: Preclinical Alzheimer’s disease (AD) research strongly depends on transgenic mouse models that display major symptoms of the disease. Although several AD mouse models have been developed representing relevant pathologies, only a fraction of available mouse models, like the Tg4-42 mouse model, display hippocampal atrophy caused by the death of neurons as the key feature of AD. The Tg4-42 mouse model is therefore very valuable for use in preclinical research. Furthermore, metabolic biomarkers which have the potential to detect biochemical changes, are crucial to gain deeper insights into the pathways, the underlying pathological mechanisms and disease progression. Objective: We thus performed an in-depth characterization of Tg4-42 mice by using an integrated approach to analyze alterations of complex biological networks in this AD in vivo model. Methods: Therefore, untargeted NMR-based metabolomic phenotyping was combined with behavioral tests and immunohistological and biochemical analyses. Results: Our in vivo experiments demonstrate a loss of body weight increase in homozygous Tg4-42 mice over time as well as severe impaired learning behavior and memory deficits in the Morris water maze behavioral test. Furthermore, we found significantly altered metabolites in two different brain regions and metabolic changes of the glutamate/4-aminobutyrate-glutamine axis. Based on these results, downstream effects were analyzed showing increased Aβ42 levels, increased neuroinflammation as indicated by increased astro- and microgliosis as well as neuronal degeneration and neuronal loss in homozygous Tg4-42 mice. Conclusion: Our study provides a comprehensive characterization of the Tg4-42 mouse model which could lead to a deeper understanding of pathological features of AD. Additionally this study reveals changes in metabolic biomarker which set the base for future preclinical studies or drug development.
The leukotriene receptor antagonist Montelukast (MTK) is an approved medication for the treatment of asthma and allergic rhinitis. The existing marketed tablet forms of MTK exhibit inconsistent uptake and bioavailability, which partially explains the presence of a significant proportion of MTK low- and non-responders in the population. Besides that, tablets are suboptimal formulations for patients suffering from dysphagia, for example, seen in patients with neurodegenerative diseases such as Alzheimer's disease, a disease with increasing interest in repurposing of MTK. This, and the need for an improved bioavailability, triggered us to reformulate MTK. Our aim was to develop a mucoadhesive MTK film with good safety and improved pharmacological features, i.e., an improved bioavailability profile in humans as well as in a mouse model of Alzheimer's disease. We tested dissolution of the MTK mucoadhesive film and assessed pharmacoexposure and kinetics after acute and chronic oral application in mice. Furthermore, we performed a Phase I analysis in humans, which included a comparison with the marketed tablet form as well as a quantitative analysis of the MTK levels in the cerebrospinal fluid. The novel MTK film demonstrated significantly improved bioavailability compared to the marketed tablet in the clinical Phase 1a study. Furthermore, there were measurable amounts of MTK present in the cerebrospinal fluid (CSF). In mice, MTK was detected in serum and CSF after acute and chronic exposure in a dose-dependent manner. The mucoadhesive film of MTK represents a promising alternative for the tablet delivery. The oral film might lower the non-responder rate in patients with asthma and might be an interesting product for repurposing of MTK in other diseases. As we demonstrate Blood-Brain-Barrier (BBB) penetrance in a preclinical model, as well as in a clinical study, the oral film of MTK might find its use as a therapeutic for acute and chronic neurodegenerative diseases such as dementias and stroke.
Compelling evidence suggests that pyroglutamate-modified Aβ (pGlu3-Aβ; AβN3pG) peptides play a pivotal role in the development and progression of Alzheimer’s disease (AD). Approaches targeting pGlu3-Aβ by glutaminyl cyclase (QC) inhibition (Varoglutamstat) or monoclonal antibodies (Donanemab) are currently in clinical development. Here, we aimed at an assessment of combination therapy of Varoglutamstat (PQ912) and a pGlu3-Aβ-specific antibody (m6) in transgenic mice. Whereas the single treatments at subtherapeutic doses show moderate (16–41%) but statistically insignificant reduction of Aβ42 and pGlu-Aβ42 in mice brain, the combination of both treatments resulted in significant reductions of Aβ by 45–65%. Evaluation of these data using the Bliss independence model revealed a combination index of ≈1, which is indicative for an additive effect of the compounds. The data are interpreted in terms of different pathways, in which the two drugs act. While PQ912 prevents the formation of pGlu3-Aβ in different compartments, the antibody is able to clear existing pGlu3-Aβ deposits. The results suggest that combination of the small molecule Varoglutamstat and a pE3Aβ-directed monoclonal antibody may allow a reduction of the individual compound doses while maintaining the therapeutic effect.
Huntington's disease is known to be a purely genetic disease based on an expansion of a CAG base triplet repeat in the coding region of the Huntingtin gene. Some years ago, researchers were able to introduce the extensive full-length gene sequence of the mutant huntingtin gene into a rodent model. The resulting BACHD rat is already well characterized for behavioral deficits. So far, all analyses in this preclinical rat model were performed in male hemizygous animals. As homozygosity of transgenic models often causes an amplification of the phenotype and female HD patients present a stronger phenotype compared to men, we established a homozygous breeding colony and tested 2 and 5 months old homozygous male and female BACHD rats in a behavioral test battery. The tests included the grip strength test, Rota Rod, elevated plus maze, passive avoidance, and Barnes maze test. Our results show strong deficits in young female homozygous BACHD rats including increased body weight, motor deficits, muscle weakness, reduced anxiety and hypoactivity, as well as learning and memory deficits. Analysis of male homozygous BACHD rats showed only weak disease symptoms, similar compared to male hemizygous BACHD rats of already published studies. Evaluation of the breeding success showed that homozygous BACHD have a reduced number of pups at the time of birth that even decreases until weaning. Our results suggest that the phenotype of homozygous male BACHD rats barely differs from already published results of hemizygous BACHD rats while female homozygous BACHD rats display strong and early alterations.