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1.
Nat Immunol ; 18(6): 633-641, 2017 06.
Article in English | MEDLINE | ID: mdl-28459434

ABSTRACT

Microglia and other tissue-resident macrophages within the central nervous system (CNS) have essential roles in neural development, inflammation and homeostasis. However, the molecular pathways underlying their development and function remain poorly understood. Here we report that mice deficient in NRROS, a myeloid-expressed transmembrane protein in the endoplasmic reticulum, develop spontaneous neurological disorders. NRROS-deficient (Nrros-/-) mice show defects in motor functions and die before 6 months of age. Nrros-/- mice display astrogliosis and lack normal CD11bhiCD45lo microglia, but they show no detectable demyelination or neuronal loss. Instead, perivascular macrophage-like myeloid cells populate the Nrros-/- CNS. Cx3cr1-driven deletion of Nrros shows its crucial role in microglial establishment during early embryonic stages. NRROS is required for normal expression of Sall1 and other microglial genes that are important for microglial development and function. Our study reveals a NRROS-mediated pathway that controls CNS-resident macrophage development and affects neurological function.


Subject(s)
Astrocytes/metabolism , Central Nervous System/embryology , Gene Expression Regulation, Developmental , Microglia/metabolism , Myeloid Cells/metabolism , Nervous System Diseases/genetics , Proteins/genetics , Animals , Astrocytes/cytology , Blotting, Western , Central Nervous System/cytology , Flow Cytometry , Immunohistochemistry , Lameness, Animal/genetics , Latent TGF-beta Binding Proteins , Locomotion , Macrophages/cytology , Macrophages/metabolism , Membrane Proteins , Mice , Mice, Knockout , Microglia/cytology , Myeloid Cells/cytology , Posture , Transcription Factors/genetics , Urinary Incontinence/genetics , Urinary Retention/genetics
2.
Cell ; 145(6): 863-74, 2011 Jun 10.
Article in English | MEDLINE | ID: mdl-21640374

ABSTRACT

Metabolites in the kynurenine pathway, generated by tryptophan degradation, are thought to play an important role in neurodegenerative disorders, including Alzheimer's and Huntington's diseases. In these disorders, glutamate receptor-mediated excitotoxicity and free radical formation have been correlated with decreased levels of the neuroprotective metabolite kynurenic acid. Here, we describe the synthesis and characterization of JM6, a small-molecule prodrug inhibitor of kynurenine 3-monooxygenase (KMO). Chronic oral administration of JM6 inhibits KMO in the blood, increasing kynurenic acid levels and reducing extracellular glutamate in the brain. In a transgenic mouse model of Alzheimer's disease, JM6 prevents spatial memory deficits, anxiety-related behavior, and synaptic loss. JM6 also extends life span, prevents synaptic loss, and decreases microglial activation in a mouse model of Huntington's disease. These findings support a critical link between tryptophan metabolism in the blood and neurodegeneration, and they provide a foundation for treatment of neurodegenerative diseases.


Subject(s)
Alzheimer Disease/drug therapy , Huntington Disease/drug therapy , Kynurenic Acid/analysis , Kynurenine 3-Monooxygenase/antagonists & inhibitors , Sulfonamides/therapeutic use , Thiazoles/therapeutic use , Administration, Oral , Alzheimer Disease/physiopathology , Animals , Brain Chemistry , Disease Models, Animal , Female , Humans , Kynurenic Acid/blood , Male , Mice , Mice, Transgenic , Sulfonamides/administration & dosage , Thiazoles/administration & dosage
3.
Mov Disord ; 38(3): 386-398, 2023 03.
Article in English | MEDLINE | ID: mdl-36807624

ABSTRACT

BACKGROUND: Leucine-rich repeat kinase 2 (LRRK2) inhibition is a promising therapeutic approach for the treatment of Parkinson's disease (PD). OBJECTIVE: The aim of this study was to evaluate the safety, tolerability, pharmacokinetics, and pharmacodynamics of the potent, selective, CNS-penetrant LRRK2 inhibitor BIIB122 (DNL151) in healthy participants and patients with PD. METHODS: Two randomized, double-blind, placebo-controlled studies were completed. The phase 1 study (DNLI-C-0001) evaluated single and multiple doses of BIIB122 for up to 28 days in healthy participants. The phase 1b study (DNLI-C-0003) evaluated BIIB122 for 28 days in patients with mild to moderate PD. The primary objectives were to investigate the safety, tolerability, and plasma pharmacokinetics of BIIB122. Pharmacodynamic outcomes included peripheral and central target inhibition and lysosomal pathway engagement biomarkers. RESULTS: A total of 186/184 healthy participants (146/145 BIIB122, 40/39 placebo) and 36/36 patients (26/26 BIIB122, 10/10 placebo) were randomized/treated in the phase 1 and phase 1b studies, respectively. In both studies, BIIB122 was generally well tolerated; no serious adverse events were reported, and the majority of treatment-emergent adverse events were mild. BIIB122 cerebrospinal fluid/unbound plasma concentration ratio was ~1 (range, 0.7-1.8). Dose-dependent median reductions from baseline were observed in whole-blood phosphorylated serine 935 LRRK2 (≤98%), peripheral blood mononuclear cell phosphorylated threonine 73 pRab10 (≤93%), cerebrospinal fluid total LRRK2 (≤50%), and urine bis (monoacylglycerol) phosphate (≤74%). CONCLUSIONS: At generally safe and well-tolerated doses, BIIB122 achieved substantial peripheral LRRK2 kinase inhibition and modulation of lysosomal pathways downstream of LRRK2, with evidence of CNS distribution and target inhibition. These studies support continued investigation of LRRK2 inhibition with BIIB122 for the treatment of PD. © 2023 Denali Therapeutics Inc and The Authors. Movement Disorders published by Wiley Periodicals LLC on behalf of International Parkinson and Movement Disorder Society.


Subject(s)
Parkinson Disease , Humans , Parkinson Disease/drug therapy , Parkinson Disease/metabolism , Leukocytes, Mononuclear/metabolism , Healthy Volunteers , Leucine-Rich Repeat Serine-Threonine Protein Kinase-2/metabolism , Biomarkers/metabolism , Mutation
4.
Int J Mol Sci ; 21(15)2020 Jul 22.
Article in English | MEDLINE | ID: mdl-32707880

ABSTRACT

Mucopolysaccharidosis type II is a lysosomal storage disorder caused by a deficiency of iduronate-2-sulfatase (IDS) and characterized by the accumulation of the primary storage substrate, glycosaminoglycans (GAGs). Understanding central nervous system (CNS) pathophysiology in neuronopathic MPS II (nMPS II) has been hindered by the lack of CNS biomarkers. Characterization of fluid biomarkers has been largely focused on evaluating GAGs in cerebrospinal fluid (CSF) and the periphery; however, GAG levels alone do not accurately reflect the broad cellular dysfunction in the brains of MPS II patients. We utilized a preclinical mouse model of MPS II, treated with a brain penetrant form of IDS (ETV:IDS) to establish the relationship between markers of primary storage and downstream pathway biomarkers in the brain and CSF. We extended the characterization of pathway and neurodegeneration biomarkers to nMPS II patient samples. In addition to the accumulation of CSF GAGs, nMPS II patients show elevated levels of lysosomal lipids, neurofilament light chain, and other biomarkers of neuronal damage and degeneration. Furthermore, we find that these biomarkers of downstream pathology are tightly correlated with heparan sulfate. Exploration of the responsiveness of not only CSF GAGs but also pathway and disease-relevant biomarkers during drug development will be crucial for monitoring disease progression, and the development of effective therapies for nMPS II.


Subject(s)
Brain/metabolism , Glycosaminoglycans/metabolism , Iduronate Sulfatase/metabolism , Lipid Metabolism , Lysosomes/metabolism , Mucopolysaccharidosis II/blood , Mucopolysaccharidosis II/cerebrospinal fluid , Adolescent , Animals , Biomarkers/metabolism , Brain/pathology , Child , Child, Preschool , Dermatan Sulfate/blood , Dermatan Sulfate/cerebrospinal fluid , Dermatan Sulfate/metabolism , Enzyme Replacement Therapy , Female , Gangliosides/metabolism , Glycosaminoglycans/cerebrospinal fluid , Hematopoietic Stem Cell Transplantation , Heparitin Sulfate/blood , Heparitin Sulfate/cerebrospinal fluid , Heparitin Sulfate/metabolism , Humans , Iduronate Sulfatase/genetics , Iduronate Sulfatase/pharmacology , Infant , Inflammation/metabolism , Lysosomes/pathology , Male , Mass Spectrometry , Mice , Mice, Knockout , Mucopolysaccharidosis II/metabolism , Mucopolysaccharidosis II/therapy , Neurofilament Proteins/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/metabolism
5.
Proc Natl Acad Sci U S A ; 112(4): E371-9, 2015 Jan 27.
Article in English | MEDLINE | ID: mdl-25583485

ABSTRACT

Transmembrane AMPA receptor regulatory proteins (TARPs) play an essential role in excitatory synaptic transmission throughout the central nervous system (CNS) and exhibit subtype-specific effects on AMPA receptor (AMPAR) trafficking, gating, and pharmacology. The function of TARPs has largely been determined through work on canonical type I TARPs such as stargazin (TARP γ-2), absent in the ataxic stargazer mouse. Little is known about the function of atypical type II TARPs, such as TARP γ-7, which exhibits variable effects on AMPAR function. Because γ-2 and γ-7 are both strongly expressed in multiple cell types in the cerebellum, we examined the relative contribution of γ-2 and γ-7 to both synaptic transmission in the cerebellum and motor behavior by using both the stargazer mouse and a γ-7 knockout (KO) mouse. We found that the loss of γ-7 alone had little effect on climbing fiber (cf) responses in Purkinje neurons (PCs), yet the additional loss of γ-2 all but abolished cf responses. In contrast, γ-7 failed to make a significant contribution to excitatory transmission in stellate cells and granule cells. In addition, we generated a PC-specific deletion of γ-2, with and without γ-7 KO background, to examine the relative contribution of γ-2 and γ-7 to PC-dependent motor behavior. Selective deletion of γ-2 in PCs had little effect on motor behavior, yet the additional loss of γ-7 resulted in a severe disruption in motor behavior. Thus, γ-7 is capable of supporting a component of excitatory transmission in PCs, sufficient to maintain essentially normal motor behavior, in the absence of γ-2.


Subject(s)
Behavior, Animal , Calcium Channels/metabolism , Membrane Proteins/metabolism , Motor Activity , Purkinje Cells/metabolism , Synaptic Transmission , Animals , Ataxia/genetics , Ataxia/metabolism , Ataxia/pathology , Calcium Channels/genetics , Membrane Proteins/genetics , Mice , Mice, Knockout , Purkinje Cells/pathology , Receptors, AMPA/genetics , Receptors, AMPA/metabolism
6.
J Neurosci ; 36(38): 9962-75, 2016 09 21.
Article in English | MEDLINE | ID: mdl-27656033

ABSTRACT

UNLABELLED: After traumatic brain injury (TBI), neurons surviving the initial insult can undergo chronic (secondary) degeneration via poorly understood mechanisms, resulting in long-term cognitive impairment. Although a neuroinflammatory response is promptly activated after TBI, it is unknown whether it has a significant role in chronic phases of TBI (>1 year after injury). Using a closed-head injury model of TBI in mice, we showed by MRI scans that TBI caused substantial degeneration at the lesion site within a few weeks and these did not expand significantly thereafter. However, chronic alterations in neurons were observed, with reduced dendritic spine density lasting >1 year after injury. In parallel, we found a long-lasting inflammatory response throughout the entire brain. Deletion of one allele of CX3CR1, a chemokine receptor, limited infiltration of peripheral immune cells and largely prevented the chronic degeneration of the injured brain and provided a better functional recovery in female, but not male, mice. Therefore, targeting persistent neuroinflammation presents a new therapeutic option to reduce chronic neurodegeneration. SIGNIFICANCE STATEMENT: Traumatic brain injury (TBI) often causes chronic neurological problems including epilepsy, neuropsychiatric disorders, and dementia through unknown mechanisms. Our study demonstrates that inflammatory cells invading the brain lead to secondary brain damage. Sex-specific amelioration of chronic neuroinflammation rescues the brain degeneration and results in improved motor functions. Therefore, this study pinpoints an effective therapeutic approach to preventing secondary complications after TBI.


Subject(s)
Brain Injuries, Traumatic/complications , Inflammation/etiology , Nerve Degeneration , Recovery of Function/physiology , Animals , Brain/pathology , CX3C Chemokine Receptor 1 , Calcium-Binding Proteins/metabolism , Chronic Disease , Dendritic Spines/immunology , Dendritic Spines/pathology , Dendritic Spines/ultrastructure , Disease Models, Animal , Exploratory Behavior/physiology , Female , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Microfilament Proteins/metabolism , Motor Activity , Nerve Degeneration/diagnostic imaging , Nerve Degeneration/etiology , Nerve Degeneration/pathology , Neurons/metabolism , Neurons/pathology , Psychomotor Performance/physiology , Receptors, Chemokine/genetics , Receptors, Chemokine/metabolism , Time Factors
7.
J Neurosci ; 35(5): 2118-32, 2015 Feb 04.
Article in English | MEDLINE | ID: mdl-25653368

ABSTRACT

The ability to attend to relevant stimuli and to adapt dynamically as demands change is a core aspect of cognition, and one that is impaired in several neuropsychiatric diseases, including attention deficit/hyperactivity disorder. However, the cellular and molecular mechanisms underlying such cognitive adaptability are poorly understood. We found that deletion of the caspase-3 gene, encoding an apoptosis protease with newly discovered roles in neural plasticity, disrupts attention in mice while preserving multiple learning and memory capabilities. Attention-related deficits include distractibility, impulsivity, behavioral rigidity, and reduced habituation to novel stimuli. Excess exploratory activity in Casp3(-/-) mice was correlated with enhanced novelty-induced activity in the dentate gyrus, which may be related to our findings that caspase-3 is required for homeostatic synaptic plasticity in vitro and homeostatic expression of AMPA receptors in vivo in response to chronic or repeated stimuli. These results suggest an important role for caspase-3 in synaptic suppression of irrelevant stimuli.


Subject(s)
Attention Deficit Disorder with Hyperactivity/genetics , Attention , Caspase 3/deficiency , Homeostasis , Synapses/physiology , Animals , Attention Deficit Disorder with Hyperactivity/physiopathology , Caspase 3/genetics , Dentate Gyrus/metabolism , Dentate Gyrus/physiology , Gene Deletion , Maze Learning , Mice , Mice, Inbred C57BL , Neuronal Plasticity
8.
J Neurosci ; 34(24): 8277-88, 2014 Jun 11.
Article in English | MEDLINE | ID: mdl-24920631

ABSTRACT

Extensive evidence implicates GluN2B-containing NMDA receptors (GluN2B-NMDARs) in excitotoxic-insult-induced neurodegeneration and amyloid ß (Aß)-induced synaptic dysfunction. Therefore, inhibiting GluN2B-NMDARs would appear to be a potential therapeutic strategy to provide neuroprotection and improve cognitive function in Alzheimer's disease (AD). However, there are no reports of long-term in vivo treatment of AD mouse models with GluN2B antagonists. We used piperidine18 (Pip18), a potent and selective GluN2B-NMDAR antagonist with favorable pharmacokinetic properties, for long-term dosing in AD mouse models. Reduced freezing behavior in Tg2576 mice during fear conditioning was partially reversed after subchronic (17 d) Pip18 treatment. However, analysis of freezing behavior in different contexts indicated that this increased freezing likely involves elevated anxiety or excessive memory generalization in both nontransgenic (NTG) and Tg2576 mice. In PS2APP mice chronically fed with medicated food containing Pip18 for 4 months, spatial learning and memory deficits were not rescued, plaque-associated spine loss was not affected, and synaptic function was not altered. At the same time, altered open field activity consistent with increased anxiety and degraded performance in an active avoidance task were observed in NTG after chronic treatment. These results indicate that long-term treatment with a GluN2B-NMDAR antagonist does not provide a disease-modifying benefit and could cause cognitive liabilities rather than symptomatic benefit in AD mouse models. Therefore, these results challenge the expectation of the therapeutic potential for GluN2B-NMDAR antagonists in AD.


Subject(s)
Alzheimer Disease/complications , Attention Deficit and Disruptive Behavior Disorders/chemically induced , Memory Disorders/etiology , Memory Disorders/pathology , Synapses/pathology , Alzheimer Disease/genetics , Amyloid beta-Peptides/metabolism , Amyloid beta-Protein Precursor/genetics , Animals , Behavior, Animal/drug effects , Disease Models, Animal , Female , HEK293 Cells , Humans , In Vitro Techniques , Male , Maze Learning/drug effects , Maze Learning/physiology , Membrane Potentials/drug effects , Membrane Potentials/genetics , Mice , Mice, Inbred C57BL , Mice, Transgenic , Mutation/genetics , Piperidines/pharmacology
9.
J Neurosci ; 34(19): 6425-37, 2014 May 07.
Article in English | MEDLINE | ID: mdl-24806669

ABSTRACT

Recent studies implicate death receptor 6 (DR6) in an amyloid precursor protein (APP)-dependent pathway regulating developmental axon pruning, and in a pruning pathway operating during plastic rearrangements in adult brain. DR6 has also been suggested to mediate toxicity in vitro of Aß peptides derived from APP. Given the link between APP, Aß, and Alzheimer's disease (AD), these findings have raised the possibility that DR6 contributes to aspects of neurodegeneration in AD. To test this possibility, we have used mouse models to characterize potential function(s) of DR6 in the adult CNS and in AD-related pathophysiology. We show that DR6 is broadly expressed within the adult CNS and regulates the density of excitatory synaptic connections onto pyramidal neurons in a genetic pathway with APP. DR6 knock-out also gives rise to behavioral abnormalities, some of which are similar to those previously documented in APP knock-out animals. However, in two distinct APP transgenic models of AD, we did not observe any alteration in the formation of amyloid plaques, gliosis, synaptic loss, or cognitive behavioral deficits with genetic deletion of DR6, though we did observe a transient reduction in the degree of microglial activation in one model. Our results support the view that DR6 functions with APP to modulate synaptic density in the adult CNS, but do not provide evidence for a role of DR6 in the pathophysiology of AD.


Subject(s)
Alzheimer Disease/physiopathology , Amyloid beta-Protein Precursor/physiology , Central Nervous System/cytology , Receptors, Tumor Necrosis Factor/physiology , Signal Transduction/physiology , Synapses/physiology , Alzheimer Disease/pathology , Animals , Avoidance Learning/physiology , Central Nervous System/growth & development , Conditioning, Operant/physiology , Dendritic Spines/physiology , Disease Models, Animal , Enzyme-Linked Immunosorbent Assay , Fear/psychology , Gliosis/pathology , Humans , In Situ Hybridization , Maze Learning/physiology , Mice , Mice, Inbred C57BL , Motor Activity/physiology , Neural Pathways/physiology , Plaque, Amyloid/pathology
10.
bioRxiv ; 2024 Feb 12.
Article in English | MEDLINE | ID: mdl-38405775

ABSTRACT

Background: Frontotemporal dementia (FTD) is the most common cause of early-onset dementia with 10-20% of cases caused by mutations in one of three genes: GRN, C9orf72, or MAPT. To effectively develop therapeutics for FTD, the identification and characterization of biomarkers to understand disease pathogenesis and evaluate the impact of specific therapeutic strategies on the target biology as well as the underlying disease pathology are essential. Moreover, tracking the longitudinal changes of these biomarkers throughout disease progression is crucial to discern their correlation with clinical manifestations for potential prognostic usage. Methods: We conducted a comprehensive investigation of biomarkers indicative of lysosomal biology, glial cell activation, synaptic and neuronal health in cerebrospinal fluid (CSF) and plasma from non-carrier controls, sporadic FTD (symptomatic non-carriers) and symptomatic carriers of mutations in GRN, C9orf72, or MAPT, as well as asymptomatic GRN mutation carriers. We also assessed the longitudinal changes of biomarkers in GRN mutation carriers. Furthermore, we examined biomarker levels in disease impacted brain regions including middle temporal gyrus (MTG) and superior frontal gyrus (SFG) and disease-unaffected inferior occipital gyrus (IOG) from sporadic FTD and symptomatic GRN carriers. Results: We confirmed glucosylsphingosine (GlcSph), a lysosomal biomarker regulated by progranulin, was elevated in the plasma from GRN mutation carriers, both symptomatic and asymptomatic. GlcSph and other lysosomal biomarkers such as ganglioside GM2 and globoside GB3 were increased in the disease affected SFG and MTG regions from sporadic FTD and symptomatic GRN mutation carriers, but not in the IOG, compared to the same brain regions from controls. The glial biomarkers GFAP in plasma and YKL40 in CSF were elevated in asymptomatic GRN carriers, and all symptomatic groups, except the symptomatic C9orf72 mutation group. YKL40 was also increased in SFG and MTG regions from sporadic FTD and symptomatic GRN mutation carriers. Neuronal injury and degeneration biomarkers NfL in CSF and plasma, and UCHL1 in CSF were elevated in patients with all forms of FTD. Synaptic biomarkers NPTXR, NPTX1/2, and VGF were reduced in CSF from patients with all forms of FTD, with the most pronounced reductions observed in symptomatic MAPT mutation carriers. Furthermore, we demonstrated plasma NfL was significantly positively correlated with disease severity as measured by CDR+NACC FTLD SB in genetic forms of FTD and CSF NPTXR was significantly negatively correlated with CDR+NACC FTLD SB in symptomatic GRN and MAPT mutation carriers. Conclusions: In conclusion, our comprehensive investigation replicated alterations in biofluid biomarkers indicative of lysosomal function, glial activation, synaptic and neuronal health across sporadic and genetic forms of FTD and unveiled novel insights into the dysregulation of these biomarkers within brain tissues from patients with GRN mutations. The observed correlations between biomarkers and disease severity open promising avenues for prognostic applications and for indicators of drug efficacy in clinical trials. Our data also implicated a complicated relationship between biofluid and tissue biomarker changes and future investigations should delve into the mechanistic underpinnings of these biomarkers, which will serve as a foundation for the development of targeted therapeutics for FTD.

11.
Elife ; 122024 Sep 17.
Article in English | MEDLINE | ID: mdl-39287504

ABSTRACT

The integrated stress response (ISR) is a conserved pathway in eukaryotic cells that is activated in response to multiple sources of cellular stress. Although acute activation of this pathway restores cellular homeostasis, intense or prolonged ISR activation perturbs cell function and may contribute to neurodegeneration. DNL343 is an investigational CNS-penetrant small-molecule ISR inhibitor designed to activate the eukaryotic initiation factor 2B (eIF2B) and suppress aberrant ISR activation. DNL343 reduced CNS ISR activity and neurodegeneration in a dose-dependent manner in two established in vivo models - the optic nerve crush injury and an eIF2B loss of function (LOF) mutant - demonstrating neuroprotection in both and preventing motor dysfunction in the LOF mutant mouse. Treatment with DNL343 at a late stage of disease in the LOF model reversed elevation in plasma biomarkers of neuroinflammation and neurodegeneration and prevented premature mortality. Several proteins and metabolites that are dysregulated in the LOF mouse brains were normalized by DNL343 treatment, and this response is detectable in human biofluids. Several of these biomarkers show differential levels in CSF and plasma from patients with vanishing white matter disease (VWMD), a neurodegenerative disease that is driven by eIF2B LOF and chronic ISR activation, supporting their potential translational relevance. This study demonstrates that DNL343 is a brain-penetrant ISR inhibitor capable of attenuating neurodegeneration in mouse models and identifies several biomarker candidates that may be used to assess treatment responses in the clinic.


Subject(s)
Eukaryotic Initiation Factor-2B , Animals , Mice , Eukaryotic Initiation Factor-2B/metabolism , Eukaryotic Initiation Factor-2B/genetics , Neurodegenerative Diseases/drug therapy , Neurodegenerative Diseases/prevention & control , Stress, Physiological/drug effects , Disease Models, Animal , Male , Humans , Neuroprotective Agents/pharmacology , Mice, Inbred C57BL , Female , Acetamides , Cyclohexylamines
12.
J Med Chem ; 67(7): 5758-5782, 2024 Apr 11.
Article in English | MEDLINE | ID: mdl-38511649

ABSTRACT

Eukaryotic translation initiation factor 2B (eIF2B) is a key component of the integrated stress response (ISR), which regulates protein synthesis and stress granule formation in response to cellular insult. Modulation of the ISR has been proposed as a therapeutic strategy for treatment of neurodegenerative diseases such as vanishing white matter (VWM) disease and amyotrophic lateral sclerosis (ALS) based on its ability to improve cellular homeostasis and prevent neuronal degeneration. Herein, we report the small-molecule discovery campaign that identified potent, selective, and CNS-penetrant eIF2B activators using both structure- and ligand-based drug design. These discovery efforts culminated in the identification of DNL343, which demonstrated a desirable preclinical drug profile, including a long half-life and high oral bioavailability across preclinical species. DNL343 was progressed into clinical studies and is currently undergoing evaluation in late-stage clinical trials for ALS.


Subject(s)
Amyotrophic Lateral Sclerosis , Leukoencephalopathies , Neurodegenerative Diseases , Humans , Neurodegenerative Diseases/drug therapy , Neurodegenerative Diseases/metabolism , Amyotrophic Lateral Sclerosis/drug therapy , Amyotrophic Lateral Sclerosis/metabolism , Mutation , Eukaryotic Initiation Factor-2B/genetics , Eukaryotic Initiation Factor-2B/metabolism , Brain/metabolism , Leukoencephalopathies/metabolism
13.
Drug Metab Dispos ; 41(7): 1319-28, 2013 Jul.
Article in English | MEDLINE | ID: mdl-23584887

ABSTRACT

This study was conducted to determine the pharmacokinetics (PK) and pharmacodynamics (PD) of two novel inhibitors of ß-site amyloid precursor protein (APP)-cleaving enzyme (BACE1), GNE-629 [(4S,4a'S,10a'S)-2-amino-8'-(2-fluoropyridin-3-yl)-1-methyl-3',4',4a',10a'-tetrahydro-1'H-spiro[imidazole-4,10'-pyrano[4,3-b]chromen]-5(1H)-one] and GNE-892 [(R)-2-amino-1,3',3'-trimethyl-7'-(pyrimidin-5-yl)-3',4'-dihydro-2'H-spiro[imidazole-4,1'-naphthalen]-5(1H)-one], and to develop a PK-PD model to predict in vivo effects based solely on in vitro activity and PK. GNE-629 and GNE-892 concentrations and PD biomarkers including amyloid ß (Aß) in the plasma and cerebrospinal fluid (CSF), and secreted APPß (sAPPß) and secreted APPα (sAPPα) in the CSF were measured after a single oral administration of GNE-629 (100 mg/kg) or GNE-892 (30 or 100 mg/kg) in cynomolgus monkeys. A mechanistic PK-PD model was developed to simultaneously characterize the plasma Aß and CSF Aß, sAPPα, and sAPPß using GNE-629 in vivo data. This model was used to predict the in vivo effects of GNE-892 after adjustments based on differences in in vitro cellular activity and PK. The PK-PD model estimated GNE-629 CSF and free plasma IC50 of 0.0033 µM and 0.065 µM, respectively. These differences in CSF and free plasma IC50 suggest that different mechanisms are involved in Aß formation in these two compartments. The predicted in vivo effects for GNE-892 using the PK-PD model were consistent with the observed data. In conclusion, a PK-PD model was developed to mechanistically describe the effects of BACE1 inhibition on Aß, sAPPß, and sAPPα in the CSF, and Aß in the plasma. This model can be used to prospectively predict in vivo effects of new BACE1 inhibitors using just their in vitro activity and PK data.


Subject(s)
Amyloid Precursor Protein Secretases/antagonists & inhibitors , Amyloid beta-Protein Precursor/metabolism , Aspartic Acid Endopeptidases/antagonists & inhibitors , Enzyme Inhibitors/pharmacology , Imidazoles/pharmacology , Spiro Compounds/pharmacology , Amino Acid Sequence , Animals , Chromatography, Liquid , Dogs , HEK293 Cells , Humans , Macaca fascicularis , Models, Biological , Molecular Sequence Data , Pyrimidines/pharmacology , Tandem Mass Spectrometry , Thiazines/pharmacology
14.
J Exp Med ; 219(3)2022 03 07.
Article in English | MEDLINE | ID: mdl-35226042

ABSTRACT

Delivery of biotherapeutics across the blood-brain barrier (BBB) is a challenge. Many approaches fuse biotherapeutics to platforms that bind the transferrin receptor (TfR), a brain endothelial cell target, to facilitate receptor-mediated transcytosis across the BBB. Here, we characterized the pharmacological behavior of two distinct TfR-targeted platforms fused to iduronate 2-sulfatase (IDS), a lysosomal enzyme deficient in mucopolysaccharidosis type II (MPS II), and compared the relative brain exposures and functional activities of both approaches in mouse models. IDS fused to a moderate-affinity, monovalent TfR-binding enzyme transport vehicle (ETV:IDS) resulted in widespread brain exposure, internalization by parenchymal cells, and significant substrate reduction in the CNS of an MPS II mouse model. In contrast, IDS fused to a standard high-affinity bivalent antibody (IgG:IDS) resulted in lower brain uptake, limited biodistribution beyond brain endothelial cells, and reduced brain substrate reduction. These results highlight important features likely to impact the clinical development of TfR-targeting platforms in MPS II and potentially other CNS diseases.


Subject(s)
Iduronate Sulfatase , Mucopolysaccharidosis II , Receptors, Transferrin , Recombinant Fusion Proteins , Animals , Blood-Brain Barrier/metabolism , Brain/metabolism , Disease Models, Animal , Endothelial Cells/metabolism , Iduronate Sulfatase/metabolism , Iduronate Sulfatase/pharmacology , Lysosomes/metabolism , Mice , Mucopolysaccharidosis II/metabolism , Receptors, Transferrin/metabolism , Recombinant Fusion Proteins/metabolism , Recombinant Fusion Proteins/pharmacology , Tissue Distribution
15.
J Med Chem ; 65(24): 16290-16312, 2022 12 22.
Article in English | MEDLINE | ID: mdl-36469401

ABSTRACT

Dual leucine zipper kinase (DLK) and leucine zipper-bearing kinase (LZK) are regulators of neuronal degeneration and axon growth. Therefore, there is a considerable interest in developing DLK/LZK inhibitors for neurodegenerative diseases. Herein, we use ligand- and structure-based drug design approaches for identifying novel amino-pyrazine inhibitors of DLK/LZK. DN-1289 (14), a potent and selective dual DLK/LZK inhibitor, demonstrated excellent in vivo plasma half-life across species and is anticipated to freely penetrate the central nervous system with no brain impairment based on in vivo rodent pharmacokinetic studies and human in vitro transporter data. Proximal target engagement and disease relevant pathway biomarkers were also favorably regulated in an in vivo model of amyotrophic lateral sclerosis.


Subject(s)
Amyotrophic Lateral Sclerosis , Neurodegenerative Diseases , Humans , Amyotrophic Lateral Sclerosis/drug therapy , Amyotrophic Lateral Sclerosis/metabolism , Leucine Zippers , MAP Kinase Kinase Kinases , Central Nervous System/metabolism , Brain/metabolism , Neurodegenerative Diseases/metabolism
16.
Clin Transl Sci ; 15(8): 2010-2023, 2022 08.
Article in English | MEDLINE | ID: mdl-35649245

ABSTRACT

RIPK1 is a master regulator of inflammatory signaling and cell death and increased RIPK1 activity is observed in human diseases, including Alzheimer's disease (AD) and amyotrophic lateral sclerosis (ALS). RIPK1 inhibition has been shown to protect against cell death in a range of preclinical cellular and animal models of diseases. SAR443060 (previously DNL747) is a selective, orally bioavailable, central nervous system (CNS)-penetrant, small-molecule, reversible inhibitor of RIPK1. In three early-stage clinical trials in healthy subjects and patients with AD or ALS (NCT03757325 and NCT03757351), SAR443060 distributed into the cerebrospinal fluid (CSF) after oral administration and demonstrated robust peripheral target engagement as measured by a reduction in phosphorylation of RIPK1 at serine 166 (pRIPK1) in human peripheral blood mononuclear cells compared to baseline. RIPK1 inhibition was generally safe and well-tolerated in healthy volunteers and patients with AD or ALS. Taken together, the distribution into the CSF after oral administration, the peripheral proof-of-mechanism, and the safety profile of RIPK1 inhibition to date, suggest that therapeutic modulation of RIPK1 in the CNS is possible, conferring potential therapeutic promise for AD and ALS, as well as other neurodegenerative conditions. However, SAR443060 development was discontinued due to long-term nonclinical toxicology findings, although these nonclinical toxicology signals were not observed in the short duration dosing in any of the three early-stage clinical trials. The dose-limiting toxicities observed for SAR443060 preclinically have not been reported for other RIPK1-inhibitors, suggesting that these toxicities are compound-specific (related to SAR443060) rather than RIPK1 pathway-specific.


Subject(s)
Alzheimer Disease , Amyotrophic Lateral Sclerosis , Receptor-Interacting Protein Serine-Threonine Kinases , Alzheimer Disease/drug therapy , Amyotrophic Lateral Sclerosis/drug therapy , Double-Blind Method , Healthy Volunteers , Humans , Leukocytes, Mononuclear , Receptor-Interacting Protein Serine-Threonine Kinases/antagonists & inhibitors
17.
Mol Neurodegener ; 17(1): 41, 2022 06 11.
Article in English | MEDLINE | ID: mdl-35690868

ABSTRACT

BACKGROUND: Genetic mutations underlying familial Alzheimer's disease (AD) were identified decades ago, but the field is still in search of transformative therapies for patients. While mouse models based on overexpression of mutated transgenes have yielded key insights in mechanisms of disease, those models are subject to artifacts, including random genetic integration of the transgene, ectopic expression and non-physiological protein levels. The genetic engineering of novel mouse models using knock-in approaches addresses some of those limitations. With mounting evidence of the role played by microglia in AD, high-dimensional approaches to phenotype microglia in those models are critical to refine our understanding of the immune response in the brain. METHODS: We engineered a novel App knock-in mouse model (AppSAA) using homologous recombination to introduce three disease-causing coding mutations (Swedish, Arctic and Austrian) to the mouse App gene. Amyloid-ß pathology, neurodegeneration, glial responses, brain metabolism and behavioral phenotypes were characterized in heterozygous and homozygous AppSAA mice at different ages in brain and/ or biofluids. Wild type littermate mice were used as experimental controls. We used in situ imaging technologies to define the whole-brain distribution of amyloid plaques and compare it to other AD mouse models and human brain pathology. To further explore the microglial response to AD relevant pathology, we isolated microglia with fibrillar Aß content from the brain and performed transcriptomics and metabolomics analyses and in vivo brain imaging to measure energy metabolism and microglial response. Finally, we also characterized the mice in various behavioral assays. RESULTS: Leveraging multi-omics approaches, we discovered profound alteration of diverse lipids and metabolites as well as an exacerbated disease-associated transcriptomic response in microglia with high intracellular Aß content. The AppSAA knock-in mouse model recapitulates key pathological features of AD such as a progressive accumulation of parenchymal amyloid plaques and vascular amyloid deposits, altered astroglial and microglial responses and elevation of CSF markers of neurodegeneration. Those observations were associated with increased TSPO and FDG-PET brain signals and a hyperactivity phenotype as the animals aged. DISCUSSION: Our findings demonstrate that fibrillar Aß in microglia is associated with lipid dyshomeostasis consistent with lysosomal dysfunction and foam cell phenotypes as well as profound immuno-metabolic perturbations, opening new avenues to further investigate metabolic pathways at play in microglia responding to AD-relevant pathogenesis. The in-depth characterization of pathological hallmarks of AD in this novel and open-access mouse model should serve as a resource for the scientific community to investigate disease-relevant biology.


Subject(s)
Alzheimer Disease , Amyloid beta-Protein Precursor , Alzheimer Disease/genetics , Alzheimer Disease/metabolism , Amyloid beta-Peptides/metabolism , Amyloid beta-Protein Precursor/genetics , Amyloid beta-Protein Precursor/metabolism , Amyloidosis/metabolism , Animals , Brain/metabolism , Disease Models, Animal , Mice , Mice, Transgenic , Microglia/metabolism , Plaque, Amyloid/pathology , Receptors, GABA/metabolism
18.
Sci Transl Med ; 14(648): eabj2658, 2022 06 08.
Article in English | MEDLINE | ID: mdl-35675433

ABSTRACT

Mutations in leucine-rich repeat kinase 2 (LRRK2) are the most common genetic risk factors for Parkinson's disease (PD). Increased LRRK2 kinase activity is thought to impair lysosomal function and may contribute to the pathogenesis of PD. Thus, inhibition of LRRK2 is a potential disease-modifying therapeutic strategy for PD. DNL201 is an investigational, first-in-class, CNS-penetrant, selective, ATP-competitive, small-molecule LRRK2 kinase inhibitor. In preclinical models, DNL201 inhibited LRRK2 kinase activity as evidenced by reduced phosphorylation of both LRRK2 at serine-935 (pS935) and Rab10 at threonine-73 (pT73), a direct substrate of LRRK2. Inhibition of LRRK2 by DNL201 demonstrated improved lysosomal function in cellular models of disease, including primary mouse astrocytes and fibroblasts from patients with Gaucher disease. Chronic administration of DNL201 to cynomolgus macaques at pharmacologically relevant doses was not associated with adverse findings. In phase 1 and phase 1b clinical trials in 122 healthy volunteers and in 28 patients with PD, respectively, DNL201 at single and multiple doses inhibited LRRK2 and was well tolerated at doses demonstrating LRRK2 pathway engagement and alteration of downstream lysosomal biomarkers. Robust cerebrospinal fluid penetration of DNL201 was observed in both healthy volunteers and patients with PD. These data support the hypothesis that LRRK2 inhibition has the potential to correct lysosomal dysfunction in patients with PD at doses that are generally safe and well tolerated, warranting further clinical development of LRRK2 inhibitors as a therapeutic modality for PD.


Subject(s)
Leucine-Rich Repeat Serine-Threonine Protein Kinase-2 , Parkinson Disease , Animals , Humans , Leucine-Rich Repeat Serine-Threonine Protein Kinase-2/antagonists & inhibitors , Lysosomes/metabolism , Mice , Mutation , Parkinson Disease/drug therapy , Parkinson Disease/metabolism , Phosphorylation
19.
JCI Insight ; 6(19)2021 10 08.
Article in English | MEDLINE | ID: mdl-34622797

ABSTRACT

Mucopolysaccharidosis type II (MPS II) is a lysosomal storage disorder caused by deficiency of the iduronate-2-sulfatase (IDS) enzyme, resulting in cellular accumulation of glycosaminoglycans (GAGs) throughout the body. Treatment of MPS II remains a considerable challenge as current enzyme replacement therapies do not adequately control many aspects of the disease, including skeletal and neurological manifestations. We developed an IDS transport vehicle (ETV:IDS) that is engineered to bind to the transferrin receptor; this design facilitates receptor-mediated transcytosis of IDS across the blood-brain barrier and improves its distribution into the brain while maintaining distribution to peripheral tissues. Here we show that chronic systemic administration of ETV:IDS in a mouse model of MPS II reduced levels of peripheral and central nervous system GAGs, microgliosis, and neurofilament light chain, a biomarker of neuronal injury. Additionally, ETV:IDS rescued auricular and skeletal abnormalities when introduced in adult MPS II mice. These effects were accompanied by improvements in several neurobehavioral domains, including motor skills, sensorimotor gating, and learning and memory. Together, these results highlight the therapeutic potential of ETV:IDS for treating peripheral and central abnormalities in MPS II. DNL310, an investigational ETV:IDS molecule, is currently in clinical trials as a potential treatment for patients with MPS II.


Subject(s)
Blood-Brain Barrier/metabolism , Enzyme Replacement Therapy/methods , Iduronate Sulfatase/administration & dosage , Mucopolysaccharidosis II/drug therapy , Receptors, Transferrin/metabolism , Transport Vesicles/metabolism , Animals , Behavior, Animal/drug effects , Disease Models, Animal , Glycosaminoglycans/metabolism , Iduronate Sulfatase/genetics , Memory/drug effects , Mice , Mice, Knockout , Motor Skills/drug effects , Mucopolysaccharidosis II/genetics , Mucopolysaccharidosis II/metabolism , Mucopolysaccharidosis II/physiopathology , Phenotype , Sensory Gating/drug effects , Skeleton/drug effects , Spatial Learning/drug effects , Transcytosis
20.
Sci Transl Med ; 13(593)2021 05 12.
Article in English | MEDLINE | ID: mdl-33980574

ABSTRACT

Tau has become an attractive alternative target for passive immunotherapy efforts for Alzheimer's disease (AD). The anatomical distribution and extent of tau pathology correlate with disease course and severity better than other disease markers to date. We describe here the generation, preclinical characterization, and phase 1 clinical characterization of semorinemab, a humanized anti-tau monoclonal antibody with an immunoglobulin G4 (igG4) isotype backbone. Semorinemab binds all six human tau isoforms and protects neurons against tau oligomer neurotoxicity in cocultures of neurons and microglia. In addition, when administered intraperitoneally once weekly for 13 weeks, murine versions of semorinemab reduced the accumulation of tau pathology in a transgenic mouse model of tauopathy, independent of antibody effector function status. Semorinemab also showed clear evidence of target engagement in vivo, with increases in systemic tau concentrations observed in tau transgenic mice, nonhuman primates, and humans. Higher concentrations of systemic tau were observed after dosing in AD participants compared to healthy control participants. No concerning safety signals were observed in the phase 1 clinical trial at single doses up to 16,800 mg and multiple doses totaling 33,600 mg in a month.


Subject(s)
Alzheimer Disease , Tauopathies , Alzheimer Disease/drug therapy , Animals , Brain/metabolism , Disease Models, Animal , Humans , Immunization, Passive , Mice , Mice, Transgenic , Tauopathies/drug therapy , tau Proteins/metabolism
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