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Fetal Cell Senescence Signals Initiation of Parturition

Fetal Cell Senescence Signals Initiation of Parturition
胎儿细胞衰老标志着分娩的开始
批准号:
9901548
负责人:
RAMKUMAR MENON
金额:
$13.32万
依托单位国家:
美国
项目类别:
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-05-20 至 2022-03-31

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中文摘要
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 DESCRIPTION (provided by applicant): Fetal cell senescence at term is a natural physiologic response to oxidative stress (OS) that occurs as a result of increased metabolic demands by the maturing fetus. Various risk factors for preterm labor are associated with OS-induced senescence. Our pilot data suggest that fetal cell senescence causes the alarmin HMGB1 (a non-histone protein) to translocate from the nucleus to the cytosol. There it is modified by acetylation and released via exocytosis ("free" HMGB1) or encapsulated in exosomes, (30-100 nm particles) formed and extruded by multivesicular endosome fusion with the plasma membrane. Secreted HMGB1 functions as a proinflammatory cytokine in feto-maternal tissues. In the fetal membranes, it augments fetal cell senescence and an associated 'sterile' inflammatory reaction through TLR2-mediated p38 MAPK activation. In myocytes, HMGB1 activates p38 MAPK, resulting in upregulation of progesterone receptor (PR) isoform A and increased COX-2 expression and myocyte inflammation. A positive OS feedback loop is also established by HMGB1, accelerating amniocyte aging. Our core hypothesis posits that HMGB1 secreted from senescing fetal membranes, either by diffusion or transported via exosomes, causes myometrial activation through p38 MAPK, which in turn increases the ratio of PR-A to PR-B, leading to functional progesterone withdrawal and triggering the onset of labor. This hypothesis will be tested in 2 specific aims. Specific Aim 1 will determine how OS stimulates fetal membrane cell-derived HMGB1 secretion, as free protein or packaged and exported in exosomes, during human pregnancy and parturition. Specific Aim 2 will determine how free- or exosome-HMGB1 produced by fetal membrane cells in response to OS induces functional progesterone withdrawal and myometrial contractility. Primary and transformed human amnion, chorionic trophoblast, and myometrial cells, as well as fetal membrane and myometrial organ cultures, will be exposed to OS-inducing agents. Using molecular and cellular biological approaches we will quantitate OS-induced fetal cell senescence, HMGB1 release, exosome packaging, direction of exosome-HMGB1 secretion, signaling via p38 MAPK, PR isoform switching, and myometrial activation. Additionally, we will quantify the concentrations of exosome-HMGB1 in our banked feto-maternal biologic fluids (amniotic fluid, peripheral and maternal uterine venous plasma, and fetal cord plasma) from term and preterm births (PTB) to correlate their distribution with defined pregnancy outcomes. This study will evaluate a new feto-maternal signaling mechanism that triggers parturition in response to fetal OS. Identification of novel pathways and biomolecules should provide new targets to screen, diagnose, and reduce the risk of PTB.
期刊论文(18)
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会议论文
Isolation and characterization of human amniotic fluid-derived exosomes.
人羊水来源的外泌体的分离和表征。
DOI: 10.1016/bs.mie.2020.07.006
发表时间: 2020
期刊: Methods in enzymology
影响因子: --
作者: [Sheller-Miller,Samantha, Menon,Ramkumar]
通讯作者: Menon,Ramkumar
The Role of Fetal Membranes during Gestation, at Term, and Preterm Labor.
胎膜在妊娠、足月和早产期间的作用。
DOI: 10.54844/prm.2022.0296
发表时间: 2023
期刊: Placenta and reproductive medicine
影响因子: --
作者: [Truong,Nina, Menon,Ramkumar, Richardson,Lauren]
通讯作者: Richardson,Lauren
DOI: 10.1111/aji.13353
发表时间: 2021-03
期刊: American journal of reproductive immunology (New York, N.Y. : 1989)
影响因子: --
作者: [Menon R, Shahin H]
通讯作者: Shahin H
DOI: 10.2174/1381612824666180125164429
发表时间: 2018
期刊: Current pharmaceutical design
影响因子: 3.1
作者: [C. Salomon;Zarin Nuzhat;C. Dixon;R. Menon]
通讯作者: C. Salomon;Zarin Nuzhat;C. Dixon;R. Menon
8
    Engineering Fetal Cell Exosomes to contain HMGB1: Its trafficking and role as an inflammatory activator in uterine cells
    Static state of epithelial mesenchymal transition in fetal membrane cells: a novel inflammatory pathway to parturition
    Fetal Cell Senescence Signals Initiation of Parturition
    Fetal Cell Senescence Signals Initiation of Parturition
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