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1.
Clin Immunol ; 256: 109808, 2023 11.
Article in English | MEDLINE | ID: mdl-37852344

ABSTRACT

We sought to better understand the immune response during the immediate post-diagnosis phase of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) by identifying molecular associations with longitudinal disease outcomes. Multi-omic analyses identified differences in immune cell composition, cytokine levels, and cell subset-specific transcriptomic and epigenomic signatures between individuals on a more serious disease trajectory (Progressors) as compared to those on a milder course (Non-progressors). Higher levels of multiple cytokines were observed in Progressors, with IL-6 showing the largest difference. Blood monocyte cell subsets were also skewed, showing a comparative decrease in non-classical CD14-CD16+ and intermediate CD14+CD16+ monocytes. In lymphocytes, the CD8+ T effector memory cells displayed a gene expression signature consistent with stronger T cell activation in Progressors. These early stage observations could serve as the basis for the development of prognostic biomarkers of disease risk and interventional strategies to improve the management of severe COVID-19. BACKGROUND: Much of the literature on immune response post-SARS-CoV-2 infection has been in the acute and post-acute phases of infection. TRANSLATIONAL SIGNIFICANCE: We found differences at early time points of infection in approximately 160 participants. We compared multi-omic signatures in immune cells between individuals progressing to needing more significant medical intervention and non-progressors. We observed widespread evidence of a state of increased inflammation associated with progression, supported by a range of epigenomic, transcriptomic, and proteomic signatures. The signatures we identified support other findings at later time points and serve as the basis for prognostic biomarker development or to inform interventional strategies.


Subject(s)
COVID-19 , Humans , Multiomics , Proteomics , SARS-CoV-2 , Cytokines
2.
Nature ; 618(7966): 818-826, 2023 Jun.
Article in English | MEDLINE | ID: mdl-37316669

ABSTRACT

Correct development and maturation of the enteric nervous system (ENS) is critical for survival1. At birth, the ENS is immature and requires considerable refinement to exert its functions in adulthood2. Here we demonstrate that resident macrophages of the muscularis externa (MMϕ) refine the ENS early in life by pruning synapses and phagocytosing enteric neurons. Depletion of MMϕ before weaning disrupts this process and results in abnormal intestinal transit. After weaning, MMϕ continue to interact closely with the ENS and acquire a neurosupportive phenotype. The latter is instructed by transforming growth factor-ß produced by the ENS; depletion of the ENS and disruption of transforming growth factor-ß signalling result in a decrease in neuron-associated MMϕ associated with loss of enteric neurons and altered intestinal transit. These findings introduce a new reciprocal cell-cell communication responsible for maintenance of the ENS and indicate that the ENS, similarly to the brain, is shaped and maintained by a dedicated population of resident macrophages that adapts its phenotype and transcriptome to the timely needs of the ENS niche.


Subject(s)
Enteric Nervous System , Intestines , Macrophages , Enteric Nervous System/cytology , Enteric Nervous System/growth & development , Enteric Nervous System/physiology , Intestines/innervation , Lymphotoxin-alpha/metabolism , Macrophages/metabolism , Macrophages/physiology , Neurons/physiology , Weaning , Cell Communication , Transcriptome , Phenotype , Phagocytosis , Synapses , Neuronal Plasticity , Gastrointestinal Transit
3.
bioRxiv ; 2023 May 26.
Article in English | MEDLINE | ID: mdl-37292797

ABSTRACT

The pandemic caused by the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has led to a rapid response by the scientific community to further understand and combat its associated pathologic etiology. A focal point has been on the immune responses mounted during the acute and post-acute phases of infection, but the immediate post-diagnosis phase remains relatively understudied. We sought to better understand the immediate post-diagnosis phase by collecting blood from study participants soon after a positive test and identifying molecular associations with longitudinal disease outcomes. Multi-omic analyses identified differences in immune cell composition, cytokine levels, and cell subset-specific transcriptomic and epigenomic signatures between individuals on a more serious disease trajectory (Progressors) as compared to those on a milder course (Non-progressors). Higher levels of multiple cytokines were observed in Progressors, with IL-6 showing the largest difference. Blood monocyte cell subsets were also skewed, showing a comparative decrease in non-classical CD14-CD16+ and intermediate CD14+CD16+ monocytes. Additionally, in the lymphocyte compartment, CD8+ T effector memory cells displayed a gene expression signature consistent with stronger T cell activation in Progressors. Importantly, the identification of these cellular and molecular immune changes occurred at the early stages of COVID-19 disease. These observations could serve as the basis for the development of prognostic biomarkers of disease risk and interventional strategies to improve the management of severe COVID-19.

5.
Gut ; 68(8): 1406-1416, 2019 08.
Article in English | MEDLINE | ID: mdl-30472681

ABSTRACT

OBJECTIVES: Vagus nerve stimulation (VNS), most likely via enteric neurons, prevents postoperative ileus (POI) by reducing activation of alpha7 nicotinic receptor (α7nAChR) positive muscularis macrophages (mMφ) and dampening surgery-induced intestinal inflammation. Here, we evaluated if 5-HT4 receptor (5-HT4R) agonist prucalopride can mimic this effect in mice and human. DESIGN: Using Ca2+ imaging, the effect of electrical field stimulation (EFS) and prucalopride was evaluated in situ on mMφ activation evoked by ATP in jejunal muscularis tissue. Next, preoperative and postoperative administration of prucalopride (1-5 mg/kg) was compared with that of preoperative VNS in a model of POI in wild-type and α7nAChR knockout mice. Finally, in a pilot study, patients undergoing a Whipple procedure were preoperatively treated with prucalopride (n=10), abdominal VNS (n=10) or sham/placebo (n=10) to evaluate the effect on intestinal inflammation and clinical recovery of POI. RESULTS: EFS reduced the ATP-induced Ca2+ response of mMφ, an effect that was dampened by neurotoxins tetrodotoxin and ω-conotoxin and mimicked by prucalopride. In vivo, prucalopride administered before, but not after abdominal surgery reduced intestinal inflammation and prevented POI in wild-type, but not in α7nAChR knockout mice. In humans, preoperative administration of prucalopride, but not of VNS, decreased Il6 and Il8 expression in the muscularis externa and improved clinical recovery. CONCLUSION: Enteric neurons dampen mMφ activation, an effect mimicked by prucalopride. Preoperative, but not postoperative treatment with prucalopride prevents intestinal inflammation and shortens POI in both mice and human, indicating that preoperative administration of 5-HT4R agonists should be further evaluated as a treatment of POI. TRIAL REGISTRATION NUMBER: NCT02425774.


Subject(s)
Benzofurans , Ileus , Intestine, Small , Muscle, Smooth , Pancreaticoduodenectomy/adverse effects , Postoperative Complications , Adult , Animals , Benzofurans/administration & dosage , Benzofurans/pharmacology , Disease Models, Animal , Female , Gastrointestinal Motility/drug effects , Humans , Ileus/etiology , Ileus/immunology , Ileus/physiopathology , Ileus/prevention & control , Inflammation/immunology , Inflammation/prevention & control , Intestine, Small/immunology , Intestine, Small/innervation , Intestine, Small/pathology , Intestine, Small/physiopathology , Macrophages/immunology , Macrophages/pathology , Male , Mice , Muscle, Smooth/drug effects , Muscle, Smooth/pathology , Muscle, Smooth/physiopathology , Pancreaticoduodenectomy/methods , Pilot Projects , Postoperative Complications/immunology , Postoperative Complications/physiopathology , Postoperative Complications/prevention & control , Serotonin 5-HT4 Receptor Agonists/administration & dosage , Serotonin 5-HT4 Receptor Agonists/pharmacology , Treatment Outcome , alpha7 Nicotinic Acetylcholine Receptor/metabolism
6.
Cell ; 175(2): 400-415.e13, 2018 10 04.
Article in English | MEDLINE | ID: mdl-30173915

ABSTRACT

Macrophages are highly heterogeneous tissue-resident immune cells that perform a variety of tissue-supportive functions. The current paradigm dictates that intestinal macrophages are continuously replaced by incoming monocytes that acquire a pro-inflammatory or tissue-protective signature. Here, we identify a self-maintaining population of macrophages that arise from both embryonic precursors and adult bone marrow-derived monocytes and persists throughout adulthood. Gene expression and imaging studies of self-maintaining macrophages revealed distinct transcriptional profiles that reflect their unique localization (i.e., closely positioned to blood vessels, submucosal and myenteric plexus, Paneth cells, and Peyer's patches). Depletion of self-maintaining macrophages resulted in morphological abnormalities in the submucosal vasculature and loss of enteric neurons, leading to vascular leakage, impaired secretion, and reduced intestinal motility. These results provide critical insights in intestinal macrophage heterogeneity and demonstrate the strategic role of self-maintaining macrophages in gut homeostasis and intestinal physiology.


Subject(s)
Intestines/immunology , Macrophages/immunology , Animals , Body Patterning/physiology , Cell Differentiation/genetics , Cell Differentiation/immunology , Gastrointestinal Motility/immunology , Gastrointestinal Motility/physiology , Homeostasis , Inflammation/immunology , Intestinal Mucosa/immunology , Intestine, Small/metabolism , Mice , Monocytes/metabolism , Neurons/metabolism , Phagocytes/immunology , Transcriptome
7.
PLoS One ; 13(5): e0197487, 2018.
Article in English | MEDLINE | ID: mdl-29791477

ABSTRACT

BACKGROUND: Oxazolone-induced colitis has been frequently used in literature as a model of IBD, but insights into the underlying immune response and pathological features are surprisingly still very limited. Vagus nerve stimulation (VNS) has proven to be effective in innate and Th1/Th17 predominant inflammatory models, including pre-clinical models of colitis, however to what extent VNS is also effective in ameliorating Th2-driven colitis remains to be studied. In the present study, we therefore further characterized the immune response in oxazolone-induced colitis and investigated the potential therapeutic effect of VNS. METHODS: Colitis was induced in Balb/c mice by cutaneous sensitization with 3% oxazolone followed by intracolonic administration of 1% oxazolone 7 days later. To evaluate the effect of VNS on the development of Th2-driven colitis, VNS and sham-treated mice were challenged with 1% oxazolone. RESULTS: Intracolonic oxazolone administration resulted in a severe destruction of the colonic mucosa and a rapid drop in body temperature leading to a 65% mortality rate at day 5. Severe infiltration of neutrophils and monocytes was detected 6h after oxazolone administration which was associated with a Th2-type inflammatory response. VNS significantly improved survival rate which correlated with decreased levels of HMGB1 and reduced colonic (il6 and cxcl1 mRNA) and serum cytokine levels (IL-6, TNFα and CXCL1) compared to sham treated mice. CONCLUSIONS: Oxazolone-induced colitis rather represents a model of sepsis and, at best, may resemble a severe type of ulcerative colitis, associated with early and severe mucosal damage and a high mortality rate. VNS reduces colonic inflammation and improves survival in this model, supporting the anti-inflammatory properties of VNS, even in an aggressive model as oxazolone-induced colitis.


Subject(s)
Colitis/physiopathology , Colitis/therapy , Vagus Nerve Stimulation , Animals , Colitis/chemically induced , Colitis/immunology , Cytokines/metabolism , Disease Models, Animal , Female , Hypothermia/complications , Hypothermia/immunology , Hypothermia/pathology , Hypothermia/physiopathology , Inflammation/complications , Inflammation/pathology , Intestinal Mucosa/pathology , Mice, Inbred BALB C , Natural Killer T-Cells/immunology , Oxazolone , Survival Analysis
8.
Cell Immunol ; 330: 142-150, 2018 08.
Article in English | MEDLINE | ID: mdl-29291892

ABSTRACT

Macrophages residing in the muscularis externa of the gastrointestinal tract are highly specialized cells that are essential for tissue homeostasis during steady-state conditions as well as during disease. They are characterized by their unique protective functional phenotype that is undoubtedly a consequence of the reciprocal interaction with their environment, including the enteric nervous system. This muscularis macrophage-neuron interaction dictates intestinal motility and promotes tissue-protection during injury and infection, but can also contribute to tissue damage in gastrointestinal disorders such as post-operative ileus and gastroparesis. Although the importance of muscularis macrophages is clearly recognized, different aspects of these cells remain largely unexplored such their origin, longevity and instructive signals that determine their function and phenotype. In this review, we will discuss the phenotype, functions and origin of muscularis macrophages during steady-state and disease conditions. We will highlight the bidirectional crosstalk with neurons and potential therapeutic strategies that target and manipulate muscularis macrophages to restore their protective signature as a treatment for disease.


Subject(s)
Homeostasis/immunology , Intestinal Diseases/immunology , Intestines/immunology , Macrophages/immunology , Muscle, Smooth/immunology , Animals , Enteric Nervous System/immunology , Gastrointestinal Motility/immunology , Humans , Intestines/innervation , Muscle, Smooth/cytology , Muscle, Smooth/innervation , Neurons/immunology
9.
Immunology ; 153(3): 342-356, 2018 03.
Article in English | MEDLINE | ID: mdl-28940384

ABSTRACT

Macrophage activation is characterized by pronounced metabolic adaptation. Classically activated macrophages show decreased rates of mitochondrial fatty acid oxidation and oxidative phosphorylation and acquire a glycolytic state together with their pro-inflammatory phenotype. In contrast, alternatively activated macrophages require oxidative phosphorylation and mitochondrial fatty acid oxidation for their anti-inflammatory function. Although it is evident that mitochondrial metabolism is regulated during macrophage polarization and essential for macrophage function, little is known on the regulation and role of peroxisomal ß-oxidation during macrophage activation. In this study, we show that peroxisomal ß-oxidation is strongly decreased in classically activated bone-marrow-derived macrophages (BMDM) and mildly induced in alternatively activated BMDM. To examine the role of peroxisomal ß-oxidation in macrophages, we used Mfp2-/- BMDM lacking the key enzyme of this pathway. Impairment of peroxisomal ß-oxidation in Mfp2-/- BMDM did not cause lipid accumulation but rather an altered distribution of lipid species with very-long-chain fatty acids accumulating in the triglyceride and phospholipid fraction. These lipid alterations in Mfp2-/- macrophages led to decreased inflammatory activation of Mfp2-/- BMDM and peritoneal macrophages evidenced by impaired production of several inflammatory cytokines and chemokines, but did not affect anti-inflammatory polarization. The disturbed inflammatory responses of Mfp2-/- macrophages did not affect immune cell infiltration, as mice with selective elimination of MFP2 from myeloid cells showed normal monocyte and neutrophil influx upon challenge with zymosan. Together, these data demonstrate that peroxisomal ß-oxidation is involved in fine-tuning the phenotype of macrophages, probably by influencing the dynamic lipid profile during macrophage polarization.


Subject(s)
Homeostasis/immunology , Inflammation/immunology , Lipids/immunology , Macrophages/immunology , Animals , Cytokines/immunology , Macrophage Activation/immunology , Mice , Monocytes/immunology , Neutrophils/immunology , Oxidation-Reduction , Oxidative Phosphorylation , Phenotype
10.
Am J Physiol Gastrointest Liver Physiol ; 314(1): G75-G80, 2018 01 01.
Article in English | MEDLINE | ID: mdl-28912251

ABSTRACT

Many essential gastrointestinal functions, including motility, secretion, and blood flow, are regulated by the autonomic nervous system (ANS), both through intrinsic enteric neurons and extrinsic (sympathetic and parasympathetic) innervation. Recently identified neuroimmune mechanisms, in particular the interplay between enteric neurons and muscularis macrophages, are now considered to be essential for fine-tuning peristalsis. These findings shed new light on how intestinal immune cells can support enteric nervous function. In addition, both intrinsic and extrinsic neural mechanisms control intestinal immune homeostasis in different layers of the intestine, mainly by affecting macrophage activation through neurotransmitter release. In this mini-review, we discuss recent insights on immunomodulation by intrinsic enteric neurons and extrinsic innervation, with a particular focus on intestinal macrophages. In addition, we discuss the relevance of these novel mechanisms for intestinal immune homeostasis in physiological and pathological conditions, mainly focusing on motility disorders (gastroparesis and postoperative ileus) and inflammatory disorders (colitis).


Subject(s)
Enteric Nervous System/physiology , Intestines/immunology , Intestines/innervation , Macrophages/immunology , Neuroimmunomodulation , Animals , Colitis/immunology , Colitis/physiopathology , Gastroparesis/immunology , Gastroparesis/physiopathology , Homeostasis , Humans , Ileus/immunology , Ileus/physiopathology , Macrophage Activation
11.
Gastroenterology ; 152(4): 730-744, 2017 03.
Article in English | MEDLINE | ID: mdl-27988382

ABSTRACT

Although the gastrointestinal tract contains intrinsic neural plexuses that allow a significant degree of independent control over gastrointestinal functions, the central nervous system provides extrinsic neural inputs that modulate, regulate, and integrate these functions. In particular, the vagus nerve provides the parasympathetic innervation to the gastrointestinal tract, coordinating the complex interactions between central and peripheral neural control mechanisms. This review discusses the physiological roles of the afferent (sensory) and motor (efferent) vagus in regulation of appetite, mood, and the immune system, as well as the pathophysiological outcomes of vagus nerve dysfunction resulting in obesity, mood disorders, and inflammation. The therapeutic potential of vagus nerve modulation to attenuate or reverse these pathophysiological outcomes and restore autonomic homeostasis is also discussed.


Subject(s)
Colitis/physiopathology , Enteritis/physiopathology , Vagus Nerve Stimulation , Vagus Nerve/physiology , Affect/physiology , Afferent Pathways , Animals , Appetite Regulation , Cytokines/metabolism , Diet , Efferent Pathways , Gastrointestinal Microbiome , Humans , Neuronal Plasticity , Neurons, Afferent/physiology , Obesity/physiopathology , Vagus Nerve/anatomy & histology
12.
Neurobiol Dis ; 94: 157-68, 2016 Oct.
Article in English | MEDLINE | ID: mdl-27353294

ABSTRACT

The cerebellar pathologies in peroxisomal diseases underscore that these organelles are required for the normal development and maintenance of the cerebellum, but the mechanisms have not been resolved. Here we investigated the origins of the early-onset coordination impairment in a mouse model with neural selective deficiency of multifunctional protein-2, the central enzyme of peroxisomal ß-oxidation. At the age of 4weeks, Nestin-Mfp2(-/-) mice showed impaired motor learning on the accelerating rotarod and underperformed on the balance beam test. The gross morphology of the cerebellum and Purkinje cell arborization were normal. However, electrophysiology revealed a reduced Purkinje cell firing rate, a decreased excitability and an increased membrane capacitance. The distribution of climbing and parallel fiber synapses on Purkinje cells was immature and was accompanied by an increased spine length. Despite normal myelination, Purkinje cell axon degeneration was evident from the occurrence of axonal swellings containing accumulated organelles. In conclusion, the electrical activity, axonal integrity and wiring of Purkinje cells are exquisitely dependent on intact peroxisomal ß-oxidation in neural cells.


Subject(s)
Cerebellum/metabolism , Peroxisomal Multifunctional Protein-2/metabolism , Purkinje Cells/metabolism , Synapses/physiology , Animals , Axons/metabolism , Cerebellar Ataxia/metabolism , Mice, Knockout , Peroxisomal Multifunctional Protein-2/deficiency
13.
Front Immunol ; 6: 590, 2015.
Article in English | MEDLINE | ID: mdl-26635804

ABSTRACT

One of the main tasks of the immune system is to discriminate and appropriately react to "danger" or "non-danger" signals. This is crucial in the gastrointestinal tract, where the immune system is confronted with a myriad of food antigens and symbiotic microflora that are in constant contact with the mucosa, in addition to any potential pathogens. This large number of antigens and commensal microflora, which are essential for providing vital nutrients, must be tolerated by the intestinal immune system to prevent aberrant inflammation. Hence, the balance between immune activation versus tolerance should be tightly regulated to maintain intestinal homeostasis and to prevent immune activation indiscriminately against all luminal antigens. Loss of this delicate equilibrium can lead to chronic activation of the intestinal immune response resulting in intestinal disorders, such as inflammatory bowel diseases (IBD). In order to maintain homeostasis, the immune system has evolved diverse regulatory strategies including additional non-immunological actors able to control the immune response. Accumulating evidence strongly indicates a bidirectional link between the two systems in which the brain modulates the immune response via the detection of circulating cytokines and via direct afferent input from sensory fibers and from enteric neurons. In the current review, we will highlight the most recent findings regarding the cross-talk between the nervous system and the mucosal immune system and will discuss the potential use of these neuronal circuits and neuromediators as novel therapeutic tools to reestablish immune tolerance and treat intestinal chronic inflammation.

14.
Front Cell Neurosci ; 9: 403, 2015.
Article in English | MEDLINE | ID: mdl-26528133

ABSTRACT

Intestinal macrophages are strategically located in different layers of the intestine, including the mucosa, submucosa and muscularis externa, where they perform complex tasks to maintain intestinal homeostasis. As the gastrointestinal tract is continuously challenged by foreign antigens, macrophage activation should be tightly controlled to prevent chronic inflammation and tissue damage. Unraveling the precise cellular and molecular mechanisms underlying the tissue-specific control of macrophage activation is crucial to get more insight into intestinal immune regulation. Two recent reports provide unanticipated evidence that the enteric nervous system (ENS) acts as a critical regulator of macrophage function in the myenteric plexus. Both studies clearly illustrate that enteric neurons reciprocally interact with intestinal macrophages and are actively involved in shaping their phenotype. This concept has striking parallels with the central nervous system (CNS), where neuronal signals maintain microglia, the resident macrophages of the CNS, in a quiescent, anti-inflammatory state. This inevitably evokes the perception that the ENS and CNS share mechanisms of neuroimmune interaction. In line, intestinal macrophages, both in the muscularis externa and (sub)mucosa, express high levels of CX3CR1, a feature that was once believed to be unique for microglia. CX3CR1 is the sole receptor of fractalkine (CX3CL1), a factor mainly produced by neurons in the CNS to facilitate neuron-microglia communication. The striking parallels between resident macrophages of the brain and intestine might provide a promising new line of thought to get more insight into cellular and molecular mechanisms controlling macrophage activation in the gut.

15.
Brain Pathol ; 25(6): 663-78, 2015 Nov.
Article in English | MEDLINE | ID: mdl-26201894

ABSTRACT

Peroxisomes are organelles with diverse metabolic tasks including essential roles in lipid metabolism. They are of utmost importance for the normal functioning of the nervous system as most peroxisomal disorders are accompanied with neurological symptoms. Remarkably, the cerebellum exquisitely depends on intact peroxisomal function both during development and adulthood. In this review, we cover all aspects of cerebellar pathology that were reported in peroxisome biogenesis disorders and in diseases caused by dysfunction of the peroxisomal α-oxidation, ß-oxidation or ether lipid synthesis pathways. We also discuss the phenotypes of mouse models in which cerebellar pathologies were recapitulated and search for connections with the metabolic abnormalities. It becomes increasingly clear that besides the most severe forms of peroxisome dysfunction that are associated with developmental cerebellar defects, milder impairments can give rise to ataxia later in life.


Subject(s)
Peroxisomal Disorders/physiopathology , Animals , Cerebellum/growth & development , Cerebellum/physiopathology , Humans , Oxidation-Reduction , Peroxisomes/physiology
16.
Glia ; 63(9): 1606-20, 2015 Sep.
Article in English | MEDLINE | ID: mdl-25846981

ABSTRACT

The functional diversity and molecular adaptations of reactive microglia in the chronically inflamed central nervous system (CNS) are poorly understood. We previously showed that mice lacking multifunctional protein 2 (MFP2), a pivotal enzyme in peroxisomal ß-oxidation, persistently accumulate reactive myeloid cells in the gray matter of the CNS. Here, we show that the increased numbers of myeloid cells solely derive from the proliferation of resident microglia and not from infiltrating monocytes. We defined the signature of Mfp2(-/-) microglia by gene expression profiling after acute isolation, which was validated by quantitative polymerase reaction (qPCR), immunohistochemical, and flow cytometric analysis. The features of Mfp2(-/-) microglia were compared with those from SOD1(G93A) mice, an amyotrophic lateral sclerosis model. In contrast to the neurodegenerative milieu of SOD1(G93A) spinal cord, neurons were intact in Mfp2(-/-) brain and Mfp2(-/-) microglia lacked signs of phagocytic and neurotoxic activity. The chronically reactive state of Mfp2(-/-) microglia was accompanied by the downregulation of markers that specify the unique microglial signature in homeostatic conditions. In contrast, mammalian target of rapamycin (mTOR) and downstream glycolytic and protein translation pathways were induced, indicative of metabolic adaptations. Mfp2(-/-) microglia were immunologically activated but not polarized to a pro- or anti-inflammatory phenotype. A peripheral lipopolysaccharide challenge provoked an exaggerated inflammatory response in Mfp2(-/-) brain, consistent with a primed state. Taken together, we demonstrate that chronic activation of resident microglia does not necessarily lead to phagocytosis nor overt neurotoxicity.


Subject(s)
Microglia/physiology , Peroxisomal Multifunctional Protein-2/deficiency , Alternative Splicing , Amyotrophic Lateral Sclerosis/pathology , Amyotrophic Lateral Sclerosis/physiopathology , Animals , Brain/pathology , Brain/physiopathology , Cells, Cultured , Disease Models, Animal , Homeostasis/physiology , Lipopolysaccharides , Mice, Knockout , Mice, Transgenic , Microglia/pathology , Neuroimmunomodulation/physiology , Neurons/pathology , Neurons/physiology , Peroxisomal Multifunctional Protein-2/genetics , Phagocytosis/physiology , Spinal Cord/pathology , Spinal Cord/physiopathology , TOR Serine-Threonine Kinases/metabolism
17.
Biochimie ; 98: 119-26, 2014 Mar.
Article in English | MEDLINE | ID: mdl-23969159

ABSTRACT

Multifunctional protein-2 (MFP2), also known as D-bifunctional protein, is a central enzyme of the peroxisomal ß-oxidation pathway. Defects in this enzyme are associated with a spectrum of neurological disorders encompassing developmental and degenerative pathologies. In order to investigate the cellular and molecular mechanisms of these neuropathologies, mouse models with general and cell type selective loss of MFP2 were generated. In this review the distinct anomalies in the CNS of adult Mfp2 knockout mice are discussed, in particular the cerebellar degeneration and neuroinflammation. The potential underlying mechanisms are considered with regard to the cellular origin and biochemical causes. Finally, the similarities and differences between the CNS phenotypes of mice lacking MFP2 and mice with peroxisome biogenesis disorders are assessed.


Subject(s)
Central Nervous System/pathology , Peroxisomal Multifunctional Protein-2/deficiency , Animals , Cerebellum/pathology , Mice , Mice, Knockout , Peroxisomal Disorders/pathology
18.
Neurobiol Dis ; 58: 258-69, 2013 Oct.
Article in English | MEDLINE | ID: mdl-23777740

ABSTRACT

Although peroxisome biogenesis and ß-oxidation disorders are well known for their neurodevelopmental defects, patients with these disorders are increasingly diagnosed with neurodegenerative pathologies. In order to investigate the cellular mechanisms of neurodegeneration in these patients, we developed a mouse model lacking multifunctional protein 2 (MFP2, also called D-bifunctional protein), a central enzyme of peroxisomal ß-oxidation, in all neural cells (Nestin-Mfp2(-/-)) or in oligodendrocytes (Cnp-Mfp2(-/-)) and compared these models with an already established general Mfp2 knockout. Nestin-Mfp2 but not Cnp-Mfp2 knockout mice develop motor disabilities and ataxia, similar to the general mutant. Deterioration of motor performance correlates with the demise of Purkinje cell axons in the cerebellum, which precedes loss of Purkinje cells and cerebellar atrophy. This closely mimics spinocerebellar ataxias of patients affected with mild peroxisome ß-oxidation disorders. However, general knockouts have a much shorter life span than Nestin-Mfp2 knockouts which is paralleled by a disparity in activation of the innate immune system. Whereas in general mutants a strong and chronic proinflammatory reaction proceeds throughout the brain, elimination of MFP2 from neural cells results in minor neuroinflammation. Neither the extent of the inflammatory reaction nor the cerebellar degeneration could be correlated with levels of very long chain fatty acids, substrates of peroxisomal ß-oxidation. In conclusion, MFP2 has multiple tasks in the adult brain, including the maintenance of Purkinje cells and the prevention of neuroinflammation but this is not mediated by its activity in oligodendrocytes nor by its role in very long chain fatty acid degradation.


Subject(s)
Deficiency Diseases/complications , Encephalitis/etiology , Fatty Acids/metabolism , Nerve Degeneration/etiology , Peroxisomal Multifunctional Protein-2/deficiency , Purkinje Cells/pathology , 2',3'-Cyclic Nucleotide 3'-Phosphodiesterase/genetics , Age Factors , Animals , Antigens, Differentiation/metabolism , Brain/metabolism , Brain/pathology , Calcium-Binding Proteins/metabolism , Cytokines/metabolism , Gas Chromatography-Mass Spectrometry , Gene Expression Regulation/genetics , Locomotion/physiology , Mice , Mice, Transgenic , Microfilament Proteins/metabolism , Myelin Basic Protein/metabolism , Nestin/genetics , Peroxisomal Multifunctional Protein-2/genetics
19.
J Neuroinflammation ; 9: 61, 2012 Mar 29.
Article in English | MEDLINE | ID: mdl-22458306

ABSTRACT

BACKGROUND: Mice with peroxisome deficiency in neural cells (Nestin-Pex5-/-) develop a neurodegenerative phenotype leading to motor and cognitive disabilities and early death. Major pathologies at the end stage of disease include severe demyelination, axonal degeneration and neuroinflammation. We now investigated the onset and progression of these pathological processes, and their potential interrelationship. In addition, the putative role of oxidative stress, the impact of plasmalogen depletion on the neurodegenerative phenotype, and the consequences of peroxisome elimination in the postnatal period were studied. METHODS: Immunohistochemistry in association with gene expression analysis was performed on Nestin-Pex5-/- mice to document demyelination, axonal damage and neuroinflammation. Also Gnpat-/- mice, with selective plasmalogen deficiency and CMV-Tx-Pex5-/- mice, with tamoxifen induced generalized loss of peroxisomes were analysed. RESULTS: Activation of the innate immune system is a very early event in the pathological process in Nestin-Pex5-/- mice which evolves in chronic neuroinflammation. The complement factor C1q, one of the earliest up regulated transcripts, was expressed on neurons and oligodendrocytes but not on microglia. Transcripts of other pro- and anti-inflammatory genes and markers of phagocytotic activity were already significantly induced before detecting pathologies with immunofluorescent staining. Demyelination, macrophage activity and axonal loss co-occurred throughout the brain. As in patients with mild peroxisome biogenesis disorders who develop regressive changes, demyelination in cerebellum and brain stem preceded major myelin loss in corpus callosum of both Nestin-Pex5-/- and CMV-Tx-Pex5-/- mice. These lesions were not accompanied by generalized oxidative stress throughout the brain. Although Gnpat-/- mice displayed dysmyelination and Purkinje cell axon damage in cerebellum, confirming previous observations, no signs of inflammation or demyelination aggravating with age were observed. CONCLUSIONS: Peroxisome inactivity triggers a fast neuroinflammatory reaction, which is not solely due to the depletion of plasmalogens. In association with myelin abnormalities this causes axon damage and loss.


Subject(s)
Axons/physiology , Central Nervous System/physiology , Immunity, Innate/physiology , Plasmalogens/biosynthesis , Receptors, Cytoplasmic and Nuclear/deficiency , Animals , Axons/pathology , Central Nervous System/pathology , Demyelinating Diseases/immunology , Demyelinating Diseases/metabolism , Demyelinating Diseases/pathology , Intermediate Filament Proteins/deficiency , Lipid Metabolism/physiology , Mice , Mice, Knockout , Nerve Tissue Proteins/deficiency , Nestin , Peroxisome-Targeting Signal 1 Receptor , Peroxisomes/metabolism
20.
Glia ; 58(13): 1532-43, 2010 Oct.
Article in English | MEDLINE | ID: mdl-20578053

ABSTRACT

Ablation of functional peroxisomes from all neural cells in Nestin-Pex5 knockout mice caused remarkable neurological abnormalities including motoric and cognitive malfunctioning accompanied by demyelination, axonal degeneration, and gliosis. An oligodendrocyte selective Cnp-Pex5 knockout mouse model shows a similar pathology, but with later onset and slower progression. Until now, the link between these neurological anomalies and the known metabolic alterations, namely the accumulation of very long-chain fatty acids (VLCFA) and reduction of plasmalogens, has not been established. We now focused on the role of peroxisomes in neurons and astrocytes. A neuron-specific peroxisome knockout model, NEX-Pex5, showed neither microscopic nor metabolic abnormalities indicating that the lack of functional peroxisomes within neurons does not cause axonal damage. Axonal integrity and normal behavior was also preserved when peroxisomes were deleted from astrocytes in GFAP-Pex5(-/-) mice. Nevertheless, peroxisomal metabolites were dysregulated in brain including a marked accumulation of VLCFA and a slight reduction in plasmalogens. Interestingly, despite minor targeting of oligodendrocytes in GFAP-Pex5(-/-) mice, these metabolic perturbations were also present in isolated myelin indicating that peroxisomal metabolites are shuttled between different brain cell types. We conclude that absence of peroxisomal metabolism in neurons and astrocytes does not provoke the neurodegenerative phenotype observed after deleting peroxisomes from oligodendrocytes. Lack of peroxisomal metabolism in astrocytes causes increased VLCFA levels in myelin, but this has no major impact on neurological functioning.


Subject(s)
Astrocytes/cytology , Axons/physiology , Neurons/cytology , Peroxisomes/metabolism , Up-Regulation/genetics , Animals , Animals, Newborn , Basic Helix-Loop-Helix Transcription Factors/genetics , Behavior, Animal/physiology , Cells, Cultured , Cerebellum/cytology , Embryo, Mammalian , Glial Fibrillary Acidic Protein/genetics , Intermediate Filament Proteins/metabolism , Lipid Metabolism/genetics , Mice , Mice, Transgenic , Motor Activity/genetics , Myelin Basic Protein/metabolism , Myelin Sheath/metabolism , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Nestin , Peroxisome-Targeting Signal 1 Receptor , Peroxisomes/genetics , Receptors, Cytoplasmic and Nuclear/deficiency , Rotarod Performance Test/methods
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