1,411
Views
2
CrossRef citations to date
0
Altmetric
Research Article

MicroRNAs miR-4535 and miR-1915-5p in Amniotic Fluid As Predictive Biomarkers for Chorioamnionitis

ORCID Icon, , , , , , , , , ORCID Icon, , , , , , , , , & ORCID Icon show all
Article: FSO686 | Received 01 Jan 2021, Accepted 28 Jan 2021, Published online: 15 Feb 2021

References

  • BlancWA. Pathology of the placenta, membranes, and umbilical cord in bacterial, fungal, and viral infections in man. Monogr. Pathol.22(22), 67–132 (1981).
  • BastekJA , WeberAL , McSheaMA , RyanME , ElovitzMA. Prenatal inflammation is associated with adverse neonatal outcomes. Am. J. Obstet. Gynecol.210(5), 450.e1–450.e10 (2014).
  • SoraishamAS , SinghalN , McMillanDD , SauveRS , LeeSK. A multicenter study on the clinical outcome of chorioamnionitis in preterm infants. Am. J. Obstet. Gynecol.200(4), 372.e1–372.e6 (2009).
  • AndrewsWW , GoldenbergRL , Faye-PetersenO , CliverS , GoepfertAR , HauthJC. The Alabama preterm birth study: polymorphonuclear and mononuclear cell placental infiltrations, other markers of inflammation, and outcomes in 23- to 32-week preterm newborn infants. Am. J. Obstet. Gynecol.195(3), 803–808 (2006).
  • AlshaikhB , YusufK , SauveR. Neurodevelopmental outcomes of very low birth weight infants with neonatal sepsis: systematic review and meta-analysis. J. Perinatol.33(7), 558–564 (2013).
  • GreenbergMB , AndersonBL , SchulkinJ , NortonME , AzizN. A first look at chorioamnionitis management practice variation among US obstetricians. Infect. Dis. Obstet. Gynecol. 20121–9http://www.ncbi.nlm.nih.gov/pubmed/628362 (2012).
  • CurtinWM , KatzmanPJ , FlorescueH , MetlayLA. Accuracy of signs of clinical chorioamnionitis in the term parturient. J. Perinatol.33(6), 422–428 (2013).
  • TokumasuH , HinotsuS , KitaF , KawakamiK. Predictive value of clinical chorioamnionitis in extremely premature infants. Pediatr. Int.55(1), 35–38 (2013).
  • BholaK , Al-KindiH , FadiaM , KentAL , CollignonP , DahlstromJE. Placental cultures in the era of peripartum antibiotic use. Aust. NZ J. Obstet. Gynaecol.48(2), 179–184 (2008).
  • CombsCA , GravettM , GariteTJet al.Amniotic fluid infection, inflammation, and colonization in preterm labor with intact membranes. Am. J. Obstet. Gynecol.210(2), 125.e1–125.e15 (2014).
  • YoonBH , RomeroR , KimMet al.Clinical implications of detection of Ureaplasma urealyticum in the amniotic cavity with the polymerase chain reaction. Am. J. Obstet. Gynecol.183(5), 1130–1137 (2000).
  • DiGiulioDB , RomeroR , AmoganHPet al.Microbial prevalence, diversity and abundance in amniotic fluid during preterm labor: a molecular and culture-based investigation. PLoS ONE3(8), e3056 (2008).
  • UrushiyamaD , SudaW , OhnishiEet al.Microbiome profile of the amniotic fluid as a predictive biomarker of perinatal outcome. Sci. Rep.7(1), 12171–12171 (2017).
  • YoonBH , RomeroR , LimJHet al.The clinical significance of detecting Ureaplasma urealyticum by the polymerase chain reaction in the amniotic fluid of patients with preterm labor. Am. J. Obstet. Gynecol.189(4), 919–924 (2003).
  • NambaF , HasegawaT , NakayamaMet al.Placental features of chorioamnionitis colonized with Ureaplasma species in preterm delivery. Pediatr. Res.67(2), 166–172 (2010).
  • GomezR , RomeroR , NienJKet al.A short cervix in women with preterm labor and intact membranes: a risk factor for microbial invasion of the amniotic cavity. Am. J. Obstet. Gynecol.192(3), 678–689 (2005).
  • KempMW , MiuraY , PayneMSet al.Repeated maternal intramuscular or intraamniotic erythromycin incompletely resolves intrauterine Ureaplasma parvum infection in a sheep model of pregnancy. Am. J. Obstet. Gynecol.211(2), 134.e131–139 (2014).
  • MarconiC , deAndrade Ramos BR , PeraçoliJC , DondersGGG , da SilvaMG. Amniotic fluid interleukin-1 beta and interleukin-6, but not interleukin-8 correlate with microbial invasion of the amniotic cavity in preterm labor. Am. J. Reprod. Immunol.65(6), 549–556 (2011).
  • ZuoG , DongJX , ZhaoFF , ChenY. Expression of matrix metalloproteinase-9 and its substrate level in patients with premature rupture of membranes. J. Obstet. Gynaecol.37(4), 441–445 (2017).
  • LuH , HuangW , ChenX , WangQ , ZhangQ , ChangM. Relationship between premature brain injury and multiple biomarkers in cord blood and amniotic fluid. J. Matern. Fetal. Neonatal. Med.31(21), 2898–2904 (2018).
  • Gomez-LopezN , RomeroR , GalazJet al.Cellular immune responses in amniotic fluid of women with preterm labor and intra-amniotic infection or intra-amniotic inflammation. Am. J. Reprod. Immunol.82(5), e13171 (2019).
  • BartelDP. MicroRNAs: genomics, biogenesis, mechanism, and function. Cell116(2), 281–297 (2004).
  • LewisBP , BurgeCB , BartelDP. Conserved seed pairing, often flanked by adenosines, indicates that thousands of human genes are microRNA targets. Cell120(1), 15–20 (2005).
  • MendellJT , OlsonEN. MicroRNAs in stress signaling and human disease. Cell148(6), 1172–1187 (2012).
  • HaM , KimVN. Regulation of microRNA biogenesis. Nat. Rev. Mol. Cell Biol.15(8), 509–524 (2014).
  • ZachariasF , MariannaT , IoannisTet al.The role of microRNAs identified in the amniotic fluid. MicroRNA9(1), 8–16 (2020).
  • KaracaE , AykutA , ErtürkBet al.MicroRNA expression profile in the prenatal amniotic fluid samples of pregnant women with Down syndrome. Balk. Med. J.35(2), 163–166 (2018).
  • BruscellaP , BottiniS , BaudessonC , PawlotskyJM , FerayC , TrabucchiM. Viruses and miRNAs: more friends than foes. Front. Microbiol.8, 824–824 (2017).
  • MaudetC , ManoM , EulalioA. MicroRNAs in the interaction between host and bacterial pathogens. FEBS Lett.588(22), 4140–4147 (2014).
  • ZhengY , CaiX , BradleyJE. MicroRNAs in parasites and parasite infection. RNA Biol.10(3), 371–379 (2013).
  • AguilarC , ManoM , EulalioA. MicroRNAs at the host–bacteria interface: host defense or bacterial offense. Trends Microbiol.27(3), 206–218 (2019).
  • QinC , YuC , LiL. China Kadoorie Biobank Collaborative. Regarding associations of egg consumption with cardiovascular disease in a cohort study of 0.5 million Chinese adults. Heart104(21), 1803–1803 (2018).
  • MohrAM , MottJL. Overview of microRNA biology. Semin. Liver Dis.35(1), 3–11 (2015).
  • KamityR , SharmaS , HannaN. MicroRNA-mediated control of inflammation and tolerance in pregnancy. Front. Immunol.10, 718 (2019).
  • LuoL , YeG , NadeemLet al.MicroRNA-378a-5p promotes trophoblast cell survival, migration and invasion by targeting Nodal. J. Cell Sci.125(Pt 13), 3124–3132 (2012).
  • FuG , YeG , NadeemLet al.MicroRNA-376c impairs transforming growth factor-beta and nodal signaling to promote trophoblast cell proliferation and invasion. Hypertension61(4), 864–872 (2013).
  • KumarP , LuoY , TudelaC , AlexanderJM , MendelsonCR. The c-Myc-regulated microRNA-17∼92 (miR-17∼92) and miR-106a∼363 clusters target hCYP19A1 and hGCM1 to inhibit human trophoblast differentiation. Mol. Cell. Biol.33(9), 1782–1796 (2013).
  • GanL , LiuZ , WeiMet al.miR-210 and miR-155 as potential diagnostic markers for pre-eclampsia pregnancies. Medicine (Baltimore)96(28), e7515 (2017).
  • ChiofaloB , LaganàAS , VaiarelliAet al.Do miRNAs play a role in fetal growth restriction? A fresh look to a busy corner. Biomed. Res. Int.2017, 6073167–6073167 (2017).
  • LaganàAS , VitaleSG , SapiaFet al.miRNA expression for early diagnosis of preeclampsia onset: hope or hype?J. Matern. Fetal Neonatal Med.31(6), 817–821 (2018).
  • HemmatzadehM , ShomaliN , YousefzadehY , MohammadiH , GhasemzadehA , YousefiM. MicroRNAs: small molecules with a large impact on pre-eclampsia. J. Cell. Physiol.235(4), 3235–3248 (2020).
  • SunT , LiW , LiT , LingS. MicroRNA profiling of amniotic fluid: evidence of synergy of microRNAs in fetal development. PLoS ONE11(5), e0153950 (2016).
  • KaracaE , AykutA , ErturkBet al.MicroRNA expression profile in the prenatal amniotic fluid samples of pregnant women with Down syndrome. Balkan Med. J.35(2), 163–166 (2018).
  • VizitiuAC , StambouliD , PavelAGet al.Mature miR-99a upregulation in the amniotic fluid samples from female fetus Down syndrome pregnancies: a pilot study. Medicina (Kaunas)55(11), 728 (2019).
  • XieJ , ZhouY , GaoW , LiZ , XuZ , ZhouL. The relationship between amniotic fluid miRNAs and congenital obstructive nephropathy. Am. J. Transl. Res.9(4), 1754–1763 (2017).
  • SonGH , KimY , LeeJJet al.MicroRNA-548 regulates high mobility group box 1 expression in patients with preterm birth and chorioamnionitis. Sci. Rep.9(1), 19746 (2019).
  • MontenegroD , RomeroR , PinelesBLet al.Differential expression of microRNAs with progression of gestation and inflammation in the human chorioamniotic membranes. Am. J. Obstet. Gynecol.197(3), 289.e281–286 (2007).
  • RomeroR , EspinozaJ , KusanovicJPet al.The preterm parturition syndrome. BJOG Int. J. Obstet. Gynaecol.113(Suppl. 3), 17–42 (2006).
  • RomeroR , DeySK , FisherSJ. Preterm labor: one syndrome, many causes. Science345(6198), 760–765 (2014).
  • PengCC , ChangJH , LinHY , ChengPJ , SuBH. Intrauterine inflammation, infection, or both (Triple I): a new concept for chorioamnionitis. Pediatr. Neonatol.59(3), 231–237 (2018).
  • JacobssonB , Mattsby-BaltzerI , HagbergH. Interleukin-6 and interleukin-8 in cervical and amniotic fluid: relationship to microbial invasion of the chorioamniotic membranes. BJOG Int. J. Obstet. Gynaecol.112(6), 719–724 (2005).
  • AngusSR , SegelSY , HsuCDet al.Amniotic fluid matrix metalloproteinase-8 indicates intra-amniotic infection. Am. J. Obstet. Gynecol.185(5), 1232–1238 (2001).
  • MaymonE , RomeroR , ChaiworapongsaTet al.Amniotic fluid matrix metalloproteinase-8 in preterm labor with intact membranes. Am. J. Obstet. Gynecol.185(5), 1149–1155 (2001).
  • HanYW , ShenT , ChungP , BuhimschiIA , BuhimschiCS. Uncultivated bacteria as etiologic agents of intra-amniotic inflammation leading to preterm birth. J. Clin. Microbiol.47(1), 38–47 (2009).
  • HindsonCM , ChevilletJR , BriggsHAet al.Absolute quantification by droplet digital PCR versus analog real-time PCR. Nat. Methods10(10), 1003–1005 (2013).
  • MaJ , LiN , GuarneraM , JiangF. Quantification of plasma miRNAs by digital PCR for cancer diagnosis. Biomark. Insights8, 127–136 (2013).
  • SteelJH , MalatosS , KenneaNet al.Bacteria and inflammatory cells in fetal membranes do not always cause preterm labor. Pediatr. Res.57(3), 404–411 (2005).
  • OnderdonkAB , HechtJL , McElrathTFet al.Colonization of second-trimester placenta parenchyma. Am. J. Obstet. Gynecol.199(1), 52.e1–52.e10 (2008).
  • OnderdonkAB , DelaneyML , DuBoisAM , AllredEN , LevitonA. Extremely Low Gestational Age Newborns Study Investigators. Detection of bacteria in placental tissues obtained from extremely low gestational age neonates. Am. J. Obstet. Gynecol.198(1), 110.e111–110.e1107 (2008).
  • TangQ , ZhangL , LiH , ShaoY. The fetal inflammation response syndrome and adverse neonatal outcomes: a meta-analysis. J. Matern. Fetal Neonatal Med.1–13 (2019).
  • OhJW , ParkCW , MoonKC , ParkJS , JunJK. The relationship among the progression of inflammation in umbilical cord, fetal inflammatory response, early-onset neonatal sepsis, and chorioamnionitis. PLoS ONE14(11), e0225328 (2019).
  • GotschF , RomeroR , KusanovicJPet al.The fetal inflammatory response syndrome. Clin. Obstet. Gynecol.50(3), 652–683 (2007).
  • FrancisF , BhatV , MondalNet al.Fetal inflammatory response syndrome (FIRS) and outcome of preterm neonates – a prospective analytical study. J. Matern. Fetal Neonatal Med.32(3), 488–492 (2019).
  • ChiesaC , PacificoL , NataleF , HoferN , OsbornJF , ReschB. Fetal and early neonatal interleukin-6 response. Cytokine76(1), 1–12 (2015).
  • AvitanT , DrukkerL , Pri-ChenHet al.Fetal urine production rate in preterm premature rupture of membranes is associated with adverse neonatal outcome: a pilot study. Gynecol. Obstet. Investig.83(1), 57–64 (2018).
  • HunterCA , JonesSA. IL-6 as a keystone cytokine in health and disease. Nat. Immunol.16(5), 448–457 (2015).
  • TanakaT , NarazakiM , MasudaK , KishimotoT. Regulation of IL-6 in immunity and diseases. Adv. Exp. Med. Biol.941, 79–88 (2016).
  • JiangM , XiangY , WangDet al.Dysregulated expression of miR-146a contributes to age-related dysfunction of macrophages. Aging Cell11(1), 29–40 (2012).
  • YuJH , LongL , LuoZX , LiLM , YouJR. Anti-inflammatory role of microRNA let-7c in LPS-treated alveolar macrophages by targeting STAT3. Asian Pac. J. Trop. Med.9(1), 72–75 (2016).
  • UchidaK , NakahiraK , MimuraKet al.Effects of Ureaplasma parvum lipoprotein multiple-banded antigen on pregnancy outcome in mice. J. Reprod. Immunol.100(2), 118–127 (2013).
  • ShimizuT , KidaY , KuwanoK. Ureaplasma parvum lipoproteins, including MB antigen, activate NF-{kappa}B through TLR1, TLR2 and TLR6. Microbiology (Reading)154(Pt 5), 1318–1325 (2008).
  • KnoxCL , DandoSJ , NitsosIet al.The severity of chorioamnionitis in pregnant sheep is associated with in vivo variation of the surface-exposed multiple-banded antigen/gene of Ureaplasma parvum. Biol. Reprod.83(3), 415–426 (2010).
  • SweeneyEL , KallapurSG , MeawadSet al.Ureaplasma species multiple banded antigen (MBA) variation is associated with the severity of inflammation in vivo and in vitro in human placentae. Front Cell. Infect. Microbiol.7, 123 (2017).
  • MahdavinezhadA , Mousavi-BaharSH , PoorolajalJet al.Evaluation of miR-141, miR-200c, miR-30b expression and clinicopathological features of bladder cancer. Int. J. Mol. Cell Med.4(1), 32–39 (2015).
  • NakazawaK , DashzevegN , YoshidaK. Tumor suppressor p53 induces miR-1915 processing to inhibit Bcl-2 in the apoptotic response to DNA damage. FEBS J.281(13), 2937–2944 (2014).
  • HerringtonCS , PoulsomR , CoatesPJ. Recent advances in pathology: the 2019 annual review issue of the Journal of Pathology. J. Pathol.247(5), 535–538 (2019).
  • ChoiJY , JoSA. KDM7A histone demethylase mediates TNF-α-induced ICAM1 protein upregulation by modulating lysosomal activity. Biochem. Biophys. Res. Commun.478(3), 1355–1362 (2016).
  • SongS , KoleS , PrechtP , PazinMJ , BernierM. Activation of heat shock factor 1 plays a role in pyrrolidine dithiocarbamate-mediated expression of the co-chaperone BAG3. Int. J. Biochem. Cell Biol.42(11), 1856–1863 (2010).
  • LemechaM , MorinoK , SeifuDet al.Improved glucose metabolism by Eragrostis tef potentially through beige adipocyte formation and attenuating adipose tissue inflammation. PLoS ONE13(8), e0201661 (2018).
  • Ó‘LéimeCS , HobanAE , CaraM , HuestonCMet al.The orphan nuclear receptor TLX regulates hippocampal transcriptome changes induced by IL-1β. Brain Behav. Immun.70, 268–279 (2018).
  • YasudaK , KitagawaY , KawakamiRet al.Satb1 regulates the effector program of encephalitogenic tissue Th17 cells in chronic inflammation. Nat. Commun.10(1), 549 (2019).
  • SilvaCR , Biselli-PericoJM , ZampieriBLet al.Differential expression of inflammation-related genes in children with Down syndrome. Mediators Inflamm.2016, 6985903 (2016).
  • LitwiniukM , KrejnerA , SpeyrerMS , GautoAR , GrzelaT. Hyaluronic acid in inflammation and tissue regeneration. Wounds28(3), 78–88 (2016).
  • ParkJW , ParkKH , LeeJE , KimYM , LeeSJ , CheonDH. Antibody microarray analysis of plasma proteins for the prediction of histologic chorioamnionitis in women with preterm premature rupture of membranes. Reprod. Sci.26(11), 1476–1484 (2019).
  • Martinez-PortillaRJ , Hawkins-VillarrealA , Alvarez-PoncePet al.Maternal serum interleukin-6: a non-invasive predictor of histological chorioamnionitis in women with preterm–prelabor rupture of membranes. Fetal Diagn. Ther.45(3), 168–175 (2019).
  • ElovitzMA , AntonL , BastekJ , BrownAG. Can microRNA profiling in maternal blood identify women at risk for preterm birth?Am. J. Obstet. Gynecol.212(6), 782.e1–782.e5 (2015).