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Lonicerin targets EZH2 to alleviate ulcerative colitis by autophagy-mediated NLRP3 inflammasome inactivation
Authors:Qi Lv  Yao Xing  Jian Liu  Dong Dong  Yue Liu  Hongzhi Qiao  Yinan Zhang  Lihong Hu
Institution:Jiangsu Key Laboratory for Functional Substance of Chinese Medicine, Stake Key Laboratory Cultivation Base for TCM Quality and Efficacy, School of Pharmacy, Nanjing University of Chinese Medicine, Nanjing 210023, China
Abstract:Aberrant activation of NLRP3 inflammasome in colonic macrophages strongly associates with the occurrence and progression of ulcerative colitis. Although targeting NLRP3 inflammasome has been considered to be a potential therapy, the underlying mechanism through which pathway the intestinal inflammation is modulated remains controversial. By focusing on the flavonoid lonicerin, one of the most abundant constituents existed in a long historical anti-inflammatory and anti-infectious herb Lonicera japonica Thunb., here we report its therapeutic effect on intestinal inflammation by binding directly to enhancer of zeste homolog 2 (EZH2) histone methyltransferase. EZH2-mediated modification of H3K27me3 promotes the expression of autophagy-related protein 5, which in turn leads to enhanced autophagy and accelerates autolysosome-mediated NLRP3 degradation. Mutations of EZH2 residues (His129 and Arg685) indicated by the dynamic simulation study have found to greatly diminish the protective effect of lonicerin. More importantly, in vivo studies verify that lonicerin dose-dependently disrupts the NLRP3–ASC–pro-caspase-1 complex assembly and alleviates colitis, which is compromised by administration of EZH2 overexpression plasmid. Thus, these findings together put forth the stage for further considering lonicerin as an anti-inflammatory epigenetic agent and suggesting EZH2/ATG5/NLRP3 axis may serve as a novel strategy to prevent ulcerative colitis as well as other inflammatory diseases.
Keywords:Lonicerin  Colitis  NLRP3 inflammasome  Autophagy  EZH2  3-MC"}  {"#name":"keyword"  "$":{"id":"kwrd00015"}  "$$":[{"#name":"text"  "_":"3-methylcholanthrene  5-ASA"}  {"#name":"keyword"  "$":{"id":"kwrd00025"}  "$$":[{"#name":"text"  "_":"5-aminosalicylic acid  AIM2"}  {"#name":"keyword"  "$":{"id":"kwrd00035"}  "$$":[{"#name":"text"  "_":"absent in melanoma 2  ATG5"}  {"#name":"keyword"  "$":{"id":"kwrd00045"}  "$$":[{"#name":"text"  "_":"autophagy-related protein 5  ATG7"}  {"#name":"keyword"  "$":{"id":"kwrd00055"}  "$$":[{"#name":"text"  "_":"autophagy-related protein 7  ATP"}  {"#name":"keyword"  "$":{"id":"kwrd0065"}  "$$":[{"#name":"text"  "_":"adenosine triphosphate  BMDMs"}  {"#name":"keyword"  "$":{"id":"kwrd0075"}  "$$":[{"#name":"text"  "_":"bone marrow-derived macrophages  CETSA"}  {"#name":"keyword"  "$":{"id":"kwrd0085"}  "$$":[{"#name":"text"  "_":"cellular thermal shift assay  ChIP"}  {"#name":"keyword"  "$":{"id":"kwrd0095"}  "$$":[{"#name":"text"  "_":"chromatin immunoprecipitation  CHX"}  {"#name":"keyword"  "$":{"id":"kwrd0105"}  "$$":[{"#name":"text"  "_":"cycloheximide  DAI"}  {"#name":"keyword"  "$":{"id":"kwrd0115"}  "$$":[{"#name":"text"  "_":"disease activity index  DAMPs"}  {"#name":"keyword"  "$":{"id":"kwrd0125"}  "$$":[{"#name":"text"  "_":"damage-associated molecular patterns  DMSO"}  {"#name":"keyword"  "$":{"id":"kwrd0135"}  "$$":[{"#name":"text"  "_":"dimethyl sulfoxide  DSS"}  {"#name":"keyword"  "$":{"id":"kwrd0145"}  "$$":[{"#name":"text"  "_":"dextran sulfate sodium  DTT"}  {"#name":"keyword"  "$":{"id":"kwrd0155"}  "$$":[{"#name":"text"  "_":"dithiothreitol  ECL"}  {"#name":"keyword"  "$":{"id":"kwrd0165"}  "$$":[{"#name":"text"  "_":"enhanced chemiluminescent  EDTA"}  {"#name":"keyword"  "$":{"id":"kwrd0175"}  "$$":[{"#name":"text"  "_":"ethylenediaminetetraacetic acid  ELISA"}  {"#name":"keyword"  "$":{"id":"kwrd0185"}  "$$":[{"#name":"text"  "_":"enzyme-linked immunosorbent assay  EZH2"}  {"#name":"keyword"  "$":{"id":"kwrd0195"}  "$$":[{"#name":"text"  "_":"enhancer of zeste homolog 2  FBS"}  {"#name":"keyword"  "$":{"id":"kwrd0205"}  "$$":[{"#name":"text"  "_":"fetal bovine serum  H&E"}  {"#name":"keyword"  "$":{"id":"kwrd0215"}  "$$":[{"#name":"text"  "_":"hematoxylin and eosin  LPS"}  {"#name":"keyword"  "$":{"id":"kwrd0225"}  "$$":[{"#name":"text"  "_":"lipopolysaccharide  M-CSF"}  {"#name":"keyword"  "$":{"id":"kwrd0235"}  "$$":[{"#name":"text"  "_":"macrophage colony stimulating factor  MDP"}  {"#name":"keyword"  "$":{"id":"kwrd0245"}  "$$":[{"#name":"text"  "_":"muramyldipeptide  MPO"}  {"#name":"keyword"  "$":{"id":"kwrd0255"}  "$$":[{"#name":"text"  "_":"myeloperoxidase  MSU"}  {"#name":"keyword"  "$":{"id":"kwrd0265"}  "$$":[{"#name":"text"  "_":"monosodium urate crystals  NLRP3"}  {"#name":"keyword"  "$":{"id":"kwrd0275"}  "$$":[{"#name":"text"  "_":"nucleotide-binding domain-like receptors family pyrin domain containing 3  PAMPs"}  {"#name":"keyword"  "$":{"id":"kwrd0285"}  "$$":[{"#name":"text"  "_":"pathogen-associated molecular patterns  PRC2"}  {"#name":"keyword"  "$":{"id":"kwrd0295"}  "$$":[{"#name":"text"  "_":"polycomb repressive complex 2  PMA"}  {"#name":"keyword"  "$":{"id":"kwrd0305"}  "$$":[{"#name":"text"  "_":"phorbol myristate acetate  PMSF"}  {"#name":"keyword"  "$":{"id":"kwrd0315"}  "$$":[{"#name":"text"  "_":"phenylmethanesulfonyl fluoride  RMSD"}  {"#name":"keyword"  "$":{"id":"kwrd0325"}  "$$":[{"#name":"text"  "_":"root mean-square deviation  RMSF"}  {"#name":"keyword"  "$":{"id":"kwrd0335"}  "$$":[{"#name":"text"  "_":"root mean-square fluctuation  SIP"}  {"#name":"keyword"  "$":{"id":"kwrd0345"}  "$$":[{"#name":"text"  "_":"solvent-induced protein precipitation  TEM"}  {"#name":"keyword"  "$":{"id":"kwrd0355"}  "$$":[{"#name":"text"  "_":"transmission electron microscopy  UC"}  {"#name":"keyword"  "$":{"id":"kwrd0365"}  "$$":[{"#name":"text"  "_":"ulcerative colitis
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