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result(s) for
"Crow, Yanick J."
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Type I interferon-mediated autoinflammation due to DNase II deficiency
by
Lasne, Dominique
,
Beitz, Benoit
,
Quartier, Pierre
in
631/208/248/144
,
631/250/248
,
692/699/249/2510/2511
2017
Microbial nucleic acid recognition serves as the major stimulus to an antiviral response, implying a requirement to limit the misrepresentation of self nucleic acids as non-self and the induction of autoinflammation. By systematic screening using a panel of interferon-stimulated genes we identify two siblings and a singleton variably demonstrating severe neonatal anemia, membranoproliferative glomerulonephritis, liver fibrosis, deforming arthropathy and increased anti-DNA antibodies. In both families we identify biallelic mutations in
DNASE2
, associated with a loss of DNase II endonuclease activity. We record increased interferon alpha protein levels using digital ELISA, enhanced interferon signaling by RNA-Seq analysis and constitutive upregulation of phosphorylated STAT1 and STAT3 in patient lymphocytes and monocytes. A hematological disease transcriptomic signature and increased numbers of erythroblasts are recorded in patient peripheral blood, suggesting that interferon might have a particular effect on hematopoiesis. These data define a type I interferonopathy due to DNase II deficiency in humans.
Nucleic acid sensing is important to ensure that an innate immune response is only mounted against microbial nucleic acid. Here, the authors identify loss-of-function mutations in the
DNASE2
gene that cause type I interferon-mediated autoinflammation due to enhanced systemic interferon signaling.
Journal Article
Aicardi–Goutières syndrome and the type I interferonopathies
2015
Key Points
Type I interferons (IFNs) are antiviral cytokines, the regulation of which is tightly controlled. A type I IFN response is typically initiated by the sensing of exogenous nucleic acid ligands.
The term 'type I interferonopathies' refers to Mendelian disorders in which an upregulation of type I IFN expression is considered to have a central role in disease pathogenesis.
Inborn errors of type I IFN upregulation might be caused by the accumulation of an endogenous agonistic ligand or by unchecked signalling.
So far, mutations in any of
TREX1
,
RNASEH2A
,
RNASEH2B
,
RNASEH2C
,
SAMHD1
,
ADAR
,
IFIH1
,
TMEM173
,
ACP5
,
ISG15
or
DDX58
(possibly also
PSMB8
), as well as early components of the complement cascade (particularly C1 and C4), might all be considered to be causes of type I interferonopathies.
The definition of phenotypes as type I interferonopathies will be important in the context of directed therapeutics, and the identification of the source of endogenous ligands implicated in the respective interferonopathies may guide future treatment decisions.
This Review describes the type I interferonopathies — a set of Mendelian disorders associated with the upregulation of type I interferon activity. The authors explain how defects in key components of innate immune signalling pathways can lead to these diseases and discuss the immunological insights that have resulted from their study.
Dissection of the genetic basis of Aicardi–Goutières syndrome has highlighted a fundamental link between nucleic acid metabolism, innate immune sensors and type I interferon induction. This had led to the concept of the human interferonopathies as a broader set of Mendelian disorders in which a constitutive upregulation of type I interferon activity directly relates to disease pathology. Here, we discuss the molecular and cellular basis of the interferonopathies, their categorization, future treatment strategies and the insights they provide into normal physiology.
Journal Article
Mitochondrial Nucleic Acid as a Driver of Pathogenic Type I Interferon Induction in Mendelian Disease
2021
The immune response to viral infection involves the recognition of pathogen-derived nucleic acids by intracellular sensors, leading to type I interferon (IFN), and downstream IFN-stimulated gene, induction. Ineffective discrimination of self from non-self nucleic acid can lead to autoinflammation, a phenomenon implicated in an increasing number of disease states, and well highlighted by the group of rare genetic disorders referred to as the type I interferonopathies. To understand the pathogenesis of these monogenic disorders, and polyfactorial diseases associated with pathogenic IFN upregulation, such as systemic lupus erythematosus and dermatomyositis, it is important to define the self-derived nucleic acid species responsible for such abnormal IFN induction. Recently, attention has focused on mitochondria as a novel source of immunogenic self nucleic acid. Best appreciated for their function in oxidative phosphorylation, metabolism and apoptosis, mitochondria are double membrane-bound organelles that represent vestigial bacteria in the cytosol of eukaryotic cells, containing their own DNA and RNA enclosed within the inner mitochondrial membrane. There is increasing recognition that a loss of mitochondrial integrity and compartmentalization can allow the release of mitochondrial nucleic acid into the cytosol, leading to IFN induction. Here, we provide recent insights into the potential of mitochondrial-derived DNA and RNA to drive IFN production in Mendelian disease. Specifically, we summarize current understanding of how nucleic acids are detected as foreign when released into the cytosol, and then consider the findings implicating mitochondrial nucleic acid in type I interferonopathy disease states. Finally, we discuss the potential for IFN-driven pathology in primary mitochondrial disorders.
Journal Article
The type I interferonopathies: 10 years on
2022
As brutally demonstrated by the COVID-19 pandemic, an effective immune system is essential for survival. Developed over evolutionary time, viral nucleic acid detection is a central pillar in the defensive armamentarium used to combat foreign microbial invasion. To ensure cellular homeostasis, such a strategy necessitates the efficient discrimination of pathogen-derived DNA and RNA from that of the host. In 2011, it was suggested that an upregulation of type I interferon signalling might serve as a defining feature of a novel set of Mendelian inborn errors of immunity, where antiviral sensors are triggered by host nucleic acids due to a failure of self versus non-self discrimination. These rare disorders have played a surprisingly significant role in informing our understanding of innate immunity and the relevance of type I interferon signalling for human health and disease. Here we consider what we have learned in this time, and how the field may develop in the future.The term ‘type I interferonpathy’ was coined 10 years ago to describe rare genetic diseases that are caused by an aberrant upregulation of type I interferon signalling. Here, Crow and Stetson discuss our current understanding of the type I interferonpathies, 10 years on.
Journal Article
HIV-1 restriction factor SAMHD1 is a deoxynucleoside triphosphate triphosphohydrolase
2011
Antiretroviral role for SAMHD1 protein
Mutations in SAMHD1 protein are associated with the human autoimmune disease Aicardi–Goutières syndrome, and SAMHD1 was recently shown to be responsible for restriction of HIV-1 replication in myeloid cells. Ian Taylor and colleagues reveal a previously unknown function of SAMHD1 that could explain its antivirus role. They provide a crystal structure of the catalytic core of SAMHD1 and show that it is a dGTP-stimulated triphosphohydrolase that hydrolyses dNTPs, the building blocks of DNA. This activity may prevent reverse transcription and viral synthesis of complementary DNA by keeping the concentration of cellular dNTPs at a low level.
SAMHD1, an analogue of the murine interferon (IFN)-γ-induced gene
Mg11
(ref.
1
), has recently been identified as a human immunodeficiency virus-1 (HIV-1) restriction factor that blocks early-stage virus replication in dendritic and other myeloid cells
2
,
3
and is the target of the lentiviral protein Vpx, which can relieve HIV-1 restriction
4
,
5
,
6
,
7
. SAMHD1 is also associated with Aicardi–Goutières syndrome (AGS), an inflammatory encephalopathy characterized by chronic cerebrospinal fluid lymphocytosis and elevated levels of the antiviral cytokine IFN-α
8
. The pathology associated with AGS resembles congenital viral infection, such as transplacentally acquired HIV. Here we show that human SAMHD1 is a potent dGTP-stimulated triphosphohydrolase that converts deoxynucleoside triphosphates to the constituent deoxynucleoside and inorganic triphosphate. The crystal structure of the catalytic core of SAMHD1 reveals that the protein is dimeric and indicates a molecular basis for dGTP stimulation of catalytic activity against dNTPs. We propose that SAMHD1, which is highly expressed in dendritic cells, restricts HIV-1 replication by hydrolysing the majority of cellular dNTPs, thus inhibiting reverse transcription and viral complementary DNA (cDNA) synthesis.
Journal Article
Efficacy of JAK1/2 inhibition in the treatment of chilblain lupus due to TREX1 deficiency
by
Neven, Bénédicte
,
Duffy, Darragh
,
Briand, Coralie
in
[SDV.IMM]Life Sciences [q-bio]/Immunology
,
Chilblains - drug therapy
,
Chilblains - genetics
2019
The type I interferonopathies, Mendelian disorders characterised by constitutive upregulation of the type I interferon (IFN) pathway, are associated with a spectrum of phenotypes particularly involving the brain and the skin.1 Mutations in the 3′−5′ DNA exonuclease TREX1 were the first described cause of the severe encephalopathy Aicardi-Goutières syndrome (AGS),2 of which acral vasculitic lesions are a well-recognised feature [...]
Journal Article
The SKIV2L RNA exosome limits activation of the RIG-I-like receptors
2014
RIG-I-like receptors are activated by viral and other foreign RNAs. Stetson and colleagues show that the RNA exosome enzyme SKIV2L prevents RIG-I activation by endogenous RNAs generated by IRE-1 in stressed cells.
Sensors of the innate immune system that detect intracellular nucleic acids must be regulated to prevent inappropriate activation by endogenous DNA and RNA. The exonuclease Trex1 regulates the DNA-sensing pathway by metabolizing potential DNA ligands that trigger it. However, an analogous mechanism for regulating the RIG-I-like receptors (RLRs) that detect RNA remains unknown. We found here that the SKIV2L RNA exosome potently limited the activation of RLRs. The unfolded protein response (UPR), which generated endogenous RLR ligands through the cleavage of cellular RNA by the endonuclease IRE-1, triggered the production of type I interferons in cells depleted of SKIV2L. Humans with deficiency in
SKIV2L
had a type I interferon signature in their peripheral blood. Our findings reveal a mechanism for the intracellular metabolism of immunostimulatory RNA, with implications for specific autoimmune disorders.
Journal Article
CNS disease associated with enhanced type I interferon signalling
2024
The ability to mount an interferon-mediated innate immune response is essential in protection against neurotropic viruses, but antiviral type I interferons also have neurotoxic potential. The production of type I interferons can be triggered by self-derived nucleic acids, and the brain can be susceptible to inappropriate upregulation of type I interferon signalling. Homoeostatic dysregulation of type I interferons has been implicated in rare inborn errors of immunity (referred to as type I interferonopathies) and more common neurodegenerative disorders (eg, Parkinson's disease, Alzheimer's disease, and amyotrophic lateral sclerosis). Recent developments include new insights into the pathogenesis of these disorders that involve dysregulated type I interferon signalling, as well as advances in their diagnosis and management. The role of type I interferons in brain cellular health suggests the future therapeutic potential of approaches that target these interferons and their signalling.
Journal Article
Adult-Onset ANCA-Associated Vasculitis in SAVI: Extension of the Phenotypic Spectrum, Case Report and Review of the Literature
by
Crow, Yanick J.
,
Doubel, Peter
,
Schrijvers, Rik
in
Adults
,
Antibodies
,
Antineutrophil cytoplasmic antibodies
2020
STING-associated vasculopathy with onset in infancy (SAVI) is an autosomal dominant disorder due to gain-of-function mutations in
, also known as
, encoding for STING. It was reported as a vasculopathy of infancy. However, since its description a wider spectrum of associated manifestations and disease-onset has been observed. We report a kindred with a heterozygous STING mutation (p.V155M) in which the 19-year-old proband suffered from isolated adult-onset ANCA-associated vasculitis. His father suffered from childhood-onset pulmonary fibrosis and renal failure attributed to ANCA-associated vasculitis, and died at the age of 30 years due to respiratory failure. In addition, an overview of the phenotypic spectrum of SAVI is provided highlighting (a) a high phenotypic variability with in some cases isolated manifestations, (b) the potential of adult-onset disease, and (c) a novel manifestation with ANCA-associated vasculitis.
Journal Article