General Information of Drug Off-Target (DOT) (ID: OTJYIXNB)

DOT Name Cyclic GMP-AMP synthase (CGAS)
Synonyms cGAMP synthase; cGAS; h-cGAS; EC 2.7.7.86; 2'3'-cGAMP synthase; Mab-21 domain-containing protein 1
Gene Name CGAS
Related Disease
Malaria ( )
Advanced cancer ( )
Aicardi-Goutieres syndrome ( )
Autoimmune disease ( )
Blindness ( )
Dengue ( )
Herpes simplex infection ( )
Lupus ( )
Neoplasm ( )
Systemic lupus erythematosus ( )
Tuberculosis ( )
Bacterial infection ( )
leukaemia ( )
Leukemia ( )
Pulmonary disease ( )
Kaposi sarcoma ( )
Myocardial infarction ( )
Psychotic disorder ( )
UniProt ID
CGAS_HUMAN
3D Structure
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2D Sequence (FASTA)
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3D Structure (PDB)
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PDB ID
4KM5 ; 4LEV ; 4LEW ; 4MKP ; 4O67 ; 4O68 ; 4O69 ; 5V8O ; 5VDO ; 5VDP ; 5VDQ ; 5VDR ; 5VDS ; 5VDT ; 5VDU ; 5VDV ; 5VDW ; 6CT9 ; 6CTA ; 6EDB ; 6EDC ; 6LRC ; 6LRE ; 6LRI ; 6LRJ ; 6LRK ; 6LRL ; 6MJU ; 6MJW ; 6MJX ; 6NAO ; 6NFG ; 6NFO ; 6O47 ; 6Y5D ; 6Y5E ; 7C0M ; 7CCQ ; 7CCR ; 8WR8
EC Number
2.7.7.86
Pfam ID
PF03281 ; PF20266
Sequence
MQPWHGKAMQRASEAGATAPKASARNARGAPMDPTESPAAPEAALPKAGKFGPARKSGSR
QKKSAPDTQERPPVRATGARAKKAPQRAQDTQPSDATSAPGAEGLEPPAAREPALSRAGS
CRQRGARCSTKPRPPPGPWDVPSPGLPVSAPILVRRDAAPGASKLRAVLEKLKLSRDDIS
TAAGMVKGVVDHLLLRLKCDSAFRGVGLLNTGSYYEHVKISAPNEFDVMFKLEVPRIQLE
EYSNTRAYYFVKFKRNPKENPLSQFLEGEILSASKMLSKFRKIIKEEINDIKDTDVIMKR
KRGGSPAVTLLISEKISVDITLALESKSSWPASTQEGLRIQNWLSAKVRKQLRLKPFYLV
PKHAKEGNGFQEETWRLSFSHIEKEILNNHGKSKTCCENKEEKCCRKDCLKLMKYLLEQL
KERFKDKKHLDKFSSYHVKTAFFHVCTQNPQDSQWDRKDLGLCFDNCVTYFLQCLRTEKL
ENYFIPEFNLFSSNLIDKRSKEFLTKQIEYERNNEFPVFDEF
Function
Nucleotidyltransferase that catalyzes the formation of cyclic GMP-AMP (2',3'-cGAMP) from ATP and GTP and plays a key role in innate immunity. Catalysis involves both the formation of a 2',5' phosphodiester linkage at the GpA step and the formation of a 3',5' phosphodiester linkage at the ApG step, producing c[G(2',5')pA(3',5')p]. Acts as a key DNA sensor: directly binds double-stranded DNA (dsDNA), inducing the formation of liquid-like droplets in which CGAS is activated, leading to synthesis of 2',3'-cGAMP, a second messenger that binds to and activates STING1, thereby triggering type-I interferon production. Preferentially recognizes and binds curved long dsDNAs of a minimal length of 40 bp. Acts as a key foreign DNA sensor, the presence of double-stranded DNA (dsDNA) in the cytoplasm being a danger signal that triggers the immune responses. Has antiviral activity by sensing the presence of dsDNA from DNA viruses in the cytoplasm. Also acts as an innate immune sensor of infection by retroviruses, such as HIV-2, by detecting the presence of reverse-transcribed DNA in the cytosol. In contrast, HIV-1 is poorly sensed by CGAS, due to its capsid that cloaks viral DNA from CGAS detection. Detection of retroviral reverse-transcribed DNA in the cytosol may be indirect and be mediated via interaction with PQBP1, which directly binds reverse-transcribed retroviral DNA. Also detects the presence of DNA from bacteria, such as M.tuberculosis. 2',3'-cGAMP can be transferred from producing cells to neighboring cells through gap junctions, leading to promote STING1 activation and convey immune response to connecting cells. 2',3'-cGAMP can also be transferred between cells by virtue of packaging within viral particles contributing to IFN-induction in newly infected cells in a cGAS-independent but STING1-dependent manner. Also senses the presence of neutrophil extracellular traps (NETs) that are translocated to the cytosol following phagocytosis, leading to synthesis of 2',3'-cGAMP. In addition to foreign DNA, can also be activated by endogenous nuclear or mitochondrial DNA. When self-DNA leaks into the cytosol during cellular stress (such as mitochondrial stress, SARS-CoV-2 infection causing severe COVID-19 disease, DNA damage, mitotic arrest or senescence), or is present in form of cytosolic micronuclei, CGAS is activated leading to a state of sterile inflammation. Acts as a regulator of cellular senescence by binding to cytosolic chromatin fragments that are present in senescent cells, leading to trigger type-I interferon production via STING1 and promote cellular senescence. Also involved in the inflammatory response to genome instability and double-stranded DNA breaks: acts by localizing to micronuclei arising from genome instability. Micronuclei, which are frequently found in cancer cells, consist of chromatin surrounded by their own nuclear membrane: following breakdown of the micronuclear envelope, a process associated with chromothripsis, CGAS binds self-DNA exposed to the cytosol, leading to 2',3'-cGAMP synthesis and subsequent activation of STING1 and type-I interferon production. Activated in response to prolonged mitotic arrest, promoting mitotic cell death. In a healthy cell, CGAS is however kept inactive even in cellular events that directly expose it to self-DNA, such as mitosis, when cGAS associates with chromatin directly after nuclear envelope breakdown or remains in the form of postmitotic persistent nuclear cGAS pools bound to chromatin. Nuclear CGAS is inactivated by chromatin via direct interaction with nucleosomes, which block CGAS from DNA binding and thus prevent CGAS-induced autoimmunity. Also acts as a suppressor of DNA repair in response to DNA damage: inhibits homologous recombination repair by interacting with PARP1, the CGAS-PARP1 interaction leading to impede the formation of the PARP1-TIMELESS complex. In addition to DNA, also sense translation stress: in response to translation stress, translocates to the cytosol and associates with collided ribosomes, promoting its activation and triggering type-I interferon production. In contrast to other mammals, human CGAS displays species-specific mechanisms of DNA recognition and produces less 2',3'-cGAMP, allowing a more fine-tuned response to pathogens.
Tissue Specificity Expressed in the monocytic cell line THP1.
KEGG Pathway
Cytosolic D.-sensing pathway (hsa04623 )
Shigellosis (hsa05131 )
Human cytomegalovirus infection (hsa05163 )
Herpes simplex virus 1 infection (hsa05168 )
Human immunodeficiency virus 1 infection (hsa05170 )
Coro.virus disease - COVID-19 (hsa05171 )
Reactome Pathway
STING mediated induction of host immune responses (R-HSA-1834941 )
BioCyc Pathway
MetaCyc:ENSG00000164430-MONOMER

Molecular Interaction Atlas (MIA) of This DOT

18 Disease(s) Related to This DOT
Disease Name Disease ID Evidence Level Mode of Inheritance REF
Malaria DISQ9Y50 Definitive Biomarker [1]
Advanced cancer DISAT1Z9 Strong Biomarker [2]
Aicardi-Goutieres syndrome DIS1NH4X Strong Biomarker [3]
Autoimmune disease DISORMTM Strong Altered Expression [4]
Blindness DISTIM10 Strong Biomarker [5]
Dengue DISKH221 Strong Biomarker [6]
Herpes simplex infection DISL1SAV Strong Biomarker [7]
Lupus DISOKJWA Strong Biomarker [3]
Neoplasm DISZKGEW Strong Biomarker [8]
Systemic lupus erythematosus DISI1SZ7 Strong Biomarker [9]
Tuberculosis DIS2YIMD Strong Genetic Variation [10]
Bacterial infection DIS5QJ9S moderate Biomarker [11]
leukaemia DISS7D1V moderate Biomarker [12]
Leukemia DISNAKFL moderate Biomarker [12]
Pulmonary disease DIS6060I moderate Genetic Variation [13]
Kaposi sarcoma DISC1H1Z Limited Biomarker [14]
Myocardial infarction DIS655KI Limited Biomarker [15]
Psychotic disorder DIS4UQOT Limited Biomarker [16]
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⏷ Show the Full List of 18 Disease(s)
Molecular Interaction Atlas (MIA) Jump to Detail Molecular Interaction Atlas of This DOT
5 Drug(s) Affected the Gene/Protein Processing of This DOT
Drug Name Drug ID Highest Status Interaction REF
Cisplatin DMRHGI9 Approved Cisplatin increases the expression of Cyclic GMP-AMP synthase (CGAS). [17]
Estradiol DMUNTE3 Approved Estradiol increases the expression of Cyclic GMP-AMP synthase (CGAS). [18]
SNDX-275 DMH7W9X Phase 3 SNDX-275 increases the expression of Cyclic GMP-AMP synthase (CGAS). [19]
(+)-JQ1 DM1CZSJ Phase 1 (+)-JQ1 decreases the expression of Cyclic GMP-AMP synthase (CGAS). [21]
Bisphenol A DM2ZLD7 Investigative Bisphenol A decreases the expression of Cyclic GMP-AMP synthase (CGAS). [22]
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1 Drug(s) Affected the Post-Translational Modifications of This DOT
Drug Name Drug ID Highest Status Interaction REF
Benzo(a)pyrene DMN7J43 Phase 1 Benzo(a)pyrene decreases the methylation of Cyclic GMP-AMP synthase (CGAS). [20]
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References

1 cGAS-mediated control of blood-stage malaria promotes Plasmodium-specific germinal center responses.JCI Insight. 2018 Jan 25;3(2):e94142. doi: 10.1172/jci.insight.94142. eCollection 2018 Jan 25.
2 Cellular senescence and senescence-associated secretory phenotype via the cGAS-STING signaling pathway in cancer.Cancer Sci. 2020 Feb;111(2):304-311. doi: 10.1111/cas.14266. Epub 2019 Dec 27.
3 Expression of Cyclic GMP-AMP Synthase in Patients With Systemic Lupus Erythematosus.Arthritis Rheumatol. 2017 Apr;69(4):800-807. doi: 10.1002/art.40002. Epub 2017 Mar 7.
4 Acetylation Blocks cGAS Activity and Inhibits Self-DNA-Induced Autoimmunity.Cell. 2019 Mar 7;176(6):1447-1460.e14. doi: 10.1016/j.cell.2019.01.016. Epub 2019 Feb 21.
5 cGAS drives noncanonical-inflammasome activation in age-related macular degeneration.Nat Med. 2018 Jan;24(1):50-61. doi: 10.1038/nm.4450. Epub 2017 Nov 27.
6 Dengue virus NS2B protein targets cGAS for degradation and prevents mitochondrial DNA sensing during infection.Nat Microbiol. 2017 Mar 27;2:17037. doi: 10.1038/nmicrobiol.2017.37.
7 Interactome and Proteome Dynamics Uncover Immune Modulatory Associations of the Pathogen Sensing Factor cGAS.Cell Syst. 2018 Dec 26;7(6):627-642.e6. doi: 10.1016/j.cels.2018.10.010. Epub 2018 Nov 21.
8 STAT3 inhibition enhances CDN-induced STING signaling and antitumor immunity.Cancer Lett. 2019 May 28;450:110-122. doi: 10.1016/j.canlet.2019.02.029. Epub 2019 Feb 18.
9 Association of Abnormal Elevations in IFIT3 With Overactive Cyclic GMP-AMP Synthase/Stimulator of Interferon Genes Signaling in Human Systemic Lupus Erythematosus Monocytes.Arthritis Rheumatol. 2018 Dec;70(12):2036-2045. doi: 10.1002/art.40576. Epub 2018 Oct 14.
10 A SNP upstream of the cyclic GMP-AMP synthase (cGAS) gene protects from relapse and extra-pulmonary TB and relates to BCG vaccination status in an Indian cohort.Genes Immun. 2020 Jan;21(1):13-26. doi: 10.1038/s41435-019-0080-1. Epub 2019 May 23.
11 Enzymatic Preparation of 2'-5',3'-5'-Cyclic Dinucleotides, Their Binding Properties to Stimulator of Interferon Genes Adaptor Protein, and Structure/Activity Correlations.J Med Chem. 2019 Dec 12;62(23):10676-10690. doi: 10.1021/acs.jmedchem.9b01062. Epub 2019 Nov 27.
12 DDX41 Recognizes RNA/DNA Retroviral Reverse Transcripts and Is Critical for In Vivo Control of Murine Leukemia Virus Infection.mBio. 2018 Jun 5;9(3):e00923-18. doi: 10.1128/mBio.00923-18.
13 STING-associated lung disease in mice relies on T cells but not type I interferon.J Allergy Clin Immunol. 2019 Jul;144(1):254-266.e8. doi: 10.1016/j.jaci.2019.01.044. Epub 2019 Feb 14.
14 KSHV strategies for host dsDNA sensing machinery.Virol Sin. 2016 Dec;31(6):466-471. doi: 10.1007/s12250-016-3877-3. Epub 2016 Dec 5.
15 Cytosolic DNA Sensing Promotes Macrophage Transformation and Governs Myocardial Ischemic Injury.Circulation. 2018 Jun 12;137(24):2613-2634. doi: 10.1161/CIRCULATIONAHA.117.031046. Epub 2018 Feb 1.
16 Serotonin transporter gene (HTTLPR) is not in linkage disequilibrium with prepubertal and early adolescent bipolarity.Biol Psychiatry. 1999 May 1;45(9):1230-3. doi: 10.1016/s0006-3223(98)00362-x.
17 Low doses of cisplatin induce gene alterations, cell cycle arrest, and apoptosis in human promyelocytic leukemia cells. Biomark Insights. 2016 Aug 24;11:113-21.
18 17-Estradiol Activates HSF1 via MAPK Signaling in ER-Positive Breast Cancer Cells. Cancers (Basel). 2019 Oct 11;11(10):1533. doi: 10.3390/cancers11101533.
19 A transcriptome-based classifier to identify developmental toxicants by stem cell testing: design, validation and optimization for histone deacetylase inhibitors. Arch Toxicol. 2015 Sep;89(9):1599-618.
20 Air pollution and DNA methylation alterations in lung cancer: A systematic and comparative study. Oncotarget. 2017 Jan 3;8(1):1369-1391. doi: 10.18632/oncotarget.13622.
21 Inhibition of BRD4 attenuates tumor cell self-renewal and suppresses stem cell signaling in MYC driven medulloblastoma. Oncotarget. 2014 May 15;5(9):2355-71.
22 Bisphenol A induces DSB-ATM-p53 signaling leading to cell cycle arrest, senescence, autophagy, stress response, and estrogen release in human fetal lung fibroblasts. Arch Toxicol. 2018 Apr;92(4):1453-1469.