蛋白质乳酸化修饰在胎盘缺氧及妊娠并发症中的研究进展
Research Progress on Protein Lactylation Modification in Placental Hypoxia and Pregnancy Complications
通讯作者: 孙晓彤,E-mail:13919101217@163.com
本文编辑: 秦娟
收稿日期: 2025-07-2
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Corresponding authors: SUN Xiao-tong, E-mail:13919101217@163.com
Received: 2025-07-2
乳酸累积介导的蛋白质乳酸化修饰是一种新的表观遗传修饰,是乳酰基与蛋白质赖氨酸残基共价偶联,从而调控基因表达的蛋白质修饰方式。由于妊娠早期的胎盘存在生理性缺氧,使得胎盘细胞产生了一系列缺氧反应机制,在这些缺氧反应机制中已发现不同程度的蛋白质乳酸化修饰的参与,蛋白质乳酸化修饰介导细胞能量流向、滋养细胞功能表达、免疫功能和炎症反应等。当胎盘出现病理性缺氧时会导致胎盘功能障碍、异常滋养细胞增殖和侵袭功能受损,并在此基础上发生子痫前期(preeclampsia,PE)、妊娠期糖尿病(gestational diabetes mellitus,GDM)和复发性流产(recurrent spontaneous abortion,RSA)等妊娠并发症,PE和GDM患者中高表达的蛋白乳酸化水平会导致胎盘功能障碍,降低滋养细胞迁移和侵袭能力,参与疾病的发生发展;蛋白质乳酸化修饰通过调控滋养细胞凋亡和母胎界面免疫参与RSA发病。综述蛋白质乳酸化修饰在胎盘缺氧及妊娠并发症中的研究进展,为胎盘源性胎儿缺氧相关妊娠并发症的预防和治疗提供新思路。
关键词:
Protein lactylation modification mediated by lactate accumulation is a new type of epigenetic modification. It is a protein modification method in which lactyl groups are covalently coupled to lysine residues of proteins to regulate gene expression. Due to the physiological hypoxia in the placenta during early pregnancy, placental cells have developed a series of hypoxia-response mechanisms. Different degrees of protein lactylation modification have been found to be involved in these mechanisms. Protein lactylation modification mediates cellular energy flow, trophoblast cell function expression, immune function, and inflammatory responses. When pathological hypoxia occurs in the placenta, it can lead to placental dysfunction, abnormal trophoblast cell proliferation, and impaired invasion function. On this basis, pregnancy complications such as preeclampsia (PE), gestational diabetes mellitus (GDM), and recurrent spontaneous abortion (RSA) may occur. High levels of protein lactylation in patients with PE and GDM can cause placental dysfunction, reduce the migration and invasion ability of trophoblast cells, and participate in the occurrence and development of the diseases. Protein lactylation modification participates in the pathogenesis of RSA by regulating trophoblast cell apoptosis and the immune function at the maternal-fetal interface. This review summarizes the research progress of protein lactylation modification in placental hypoxia and pregnancy complications, aiming to provide new ideas for the prevention and treatment of placental-derived pregnancy complications related to fetal hypoxia.
Keywords:
本文引用格式
王军, 孙晓彤, 蒲瑞阳, 张磊磊.
WANG Jun, SUN Xiao-tong, PU Rui-yang, ZHANG Lei-lei.
乳酸化修饰(lactylation)是近年新发现的一种以乳酸和赖氨酸残基为底物的蛋白质翻译后修饰方式,该修饰可以直接刺激染色质基因的转录,影响细胞的生物学过程[1]。妊娠早期胎盘生理性缺氧在正常妊娠过程中有重要作用,与囊胚着床、滋养细胞功能、蜕膜发育、螺旋动脉重塑、免疫耐受和血管生成等诸多过程有关。胎盘细胞为感知氧浓度并应对缺氧改变,形成相应的缺氧适应机制(代谢改变和自噬等)[2]。研究发现,从植入前胚胎到正常母胎界面、生殖系统疾病中的乳酸和蛋白质乳酸化水平都显著升高[3-
1 胎盘缺氧及蛋白质乳酸化修饰概述
母胎界面的血氧浓度在整个妊娠过程中会发生动态变化,妊娠的前三个月胎盘微环境呈缺氧状态,该缺氧期与胎盘发育及胚泡着床、滋养细胞侵袭和螺旋动脉重塑等关键阶段重叠[2,6]。2019年有学者首次揭示组蛋白乳酸化修饰过程,作为一种表观遗传修饰,乳酸经酰基辅酶A合成酶活化后通过组蛋白乙酰转移酶(如p300)转运至赖氨酸残基,在组蛋白上形成赖氨酸乳酸化(lysine lactylation,Kla)修饰,并认为组蛋白乳酸化表达水平与缺氧引起的乳酸水平有关[1],研究发现妊娠期的囊胚、胎盘、滋养细胞、蜕膜细胞在早期低氧状态下通过糖酵解产生大量的乳酸[7]。通常来说,一般细胞都具备多种应对低氧分压状态的适应机制,包括诱导缺氧诱导因子(hypoxia inducible factor,HIF)表达 、调控代谢途径及适应自噬等[2],胎盘细胞也不例外。乳酸的累积对蛋白质乳酸化修饰有积极作用,在上述细胞缺氧适应机制中(如HIF、糖酵解、自噬等)已发现大量的蛋白质乳酸化修饰,并介导了正常妊娠过程,而当胎盘出现病理性缺氧缺血时会导致异常滋养细胞增殖和胎盘功能障碍,乳酸化在此过程的作用也逐渐被发现,并参与相关妊娠并发症的发生发展。
2 蛋白质乳酸化修饰与胎盘生理性缺氧
2.1 乳酸化修饰参与诱导HIF表达,调节细胞能量流向
子宫内膜蜕膜化过程中缺氧环境导致乳酸的堆积,乳酸增加会促进组蛋白乳酸化修饰,并促进HIF1α表达,进而形成乳酸化-HIF1α糖酵解反馈回路,该反馈通路促进了子宫内膜蜕膜化和胚胎着床[8]。在缺氧条件下,HIF转录因子使葡萄糖转运蛋白(glucose transporter,GLUT)(如GLUT1和GLUT3)和糖酵解酶的转录上调[9],而乳酸化修饰是糖酵解开关的表观遗传学标志,糖酵解产物丙酮酸在无氧条件和有氧条件下分别生成乳酸和乙酰辅酶A,乳酸和乙酰辅酶A代表了细胞内主要的能量流向,其分别演化的组蛋白乳酸化和乙酰化是竞争赖氨酸的表观遗传修饰组[10]。乳酸和乙酰辅酶A的比例代表了占主导地位的能量利用过程,即能量流向糖酵解和氧化磷酸化的比例,在一定程度上乳酸化和乙酰化修饰水平反映了乳酸和乙酰辅酶A在调控能量导向相关组蛋白的能力。体外实验证明,抑制滋养细胞的有氧糖酵解会降低滋养细胞的迁移和侵袭能力[11],这可能与代谢改变后的乳酸和乳酸化修饰有关。妊娠早期的蛋白质乳酸化修饰有利于细胞在缺氧条件下的能量利用,并最终利于子宫内膜蜕膜化、胚胎着床和滋养层侵袭[4-5]。
2.2 乳酸化修饰参与自噬和凋亡,促进自噬体形成和溶酶体生物发生
转录因子EB(transcription factor EB,TFEB)是连接自噬和溶酶体基因表达的核心调节因子,TFEB的表达会影响自噬体的形成和溶酶体的生物发生[12]。在营养不良的环境下,雷帕霉素信号下游因子TFEB介导的滋养层合胞体化反应明显减弱[13]。TFEB控制胎盘合体滋养细胞的形成和激素的产生,该过程与TFEB核易位有关,其调控的自噬相关蛋白能调节滋养细胞融合相关蛋白的水平,帮助细胞完成合体化,例如在小鼠模型中,自噬功能异常会导致滋养细胞融合减少,而正常的自噬能促进细胞融合及合体后分泌的形成,保障激素的正常分泌[13-14]。研究表明,乳酸联合TFEB的乳酸化质量控制机制与快速增殖细胞中的高自噬相关,乳酸诱导的TFEB在赖氨酸91(K91)位点的乳酸化可保护TFEB免受E3泛素连接酶介导的泛素化和蛋白酶体降解的影响,正向调节溶酶体活性和自噬通量[15]。而胎盘滋养细胞同为高度增殖细胞,可能通过乳酸化方式修饰TFEB使其在细胞质中降解减少,并促进其核移位,以维持正常自噬体的形成和溶酶体的生物发生,这可能是后续的研究方向。此外,乳酸通过在磷脂酰肌醇3激酶催化亚基3型或液泡蛋白分选34(phosphatidylinositol 3-kinase catalytic subunit type 3/vacuolar protein sorting-associated protein 34,PIK3C3/VPS34)K356和K781位点的乳酸化修饰促进VPS34与PIK3C3复合物Ⅰ和Ⅱ亚基的相互作用,以增强VPS34激酶活性并促进自噬和内溶酶体运输,PIK3C3/VPS34乳酸化是自噬体形成和成熟以及内溶酶体降解所必需的[16-17]。2022年Yang等[18]证实乳酸诱导子宫内膜H3K18乳酸化以维持氧化还原稳态和凋亡平衡,有助于子宫内膜重塑以确保胚胎植入。
2.3 乳酸化修饰参与巨噬细胞极化,影响免疫功能及炎症反应
利用缺氧及细菌感染构建的细胞模型证实,促炎性的M1型巨噬细胞通过代谢重编程向有氧糖酵解转变,导致乳酸产生,乳酸及其介导的组蛋白Kla(H3K18la)的增加使M1型巨噬细胞特异性增加,并加速M1表型的分化过程,且组蛋白Kla在M1型巨噬细胞极化后期诱导表达M2样基因,即上调损伤修复稳态基因的表达[1]。这种组蛋白乳酸化介导的M1到M2的基因表达或表型转化可能与不同妊娠时期蜕膜巨噬细胞表型转变相契合。在围着床期,趋化因子促进巨噬细胞募集并极化成M1型巨噬细胞[19]。在妊娠6~8周,子宫内膜以分化的组织驻留型蜕膜巨噬细胞为主,但M1型巨噬细胞仍约有20%,当滋养层附着在子宫内膜上并侵入子宫基质时,蜕膜巨噬细胞开始转化为混合的M1/M2谱,并持续到妊娠中期,这种混合极化模式的巨噬细胞参与子宫脉管系统的广泛重塑和维持促炎/抗炎平衡。在妊娠晚期当胎盘发育完成后,蜕膜巨噬细胞逐渐转向M2表型,这有助于母体对半同种异体胎儿的免疫耐受,并保护胎儿生长直至分娩[20-21]。由此乳酸化修饰可能通过调控母体胎盘微环境的巨噬细胞类型或功能影响免疫功能和炎症发生。乳酸化修饰也可通过细胞代谢的相关酶影响微环境中代谢产物的乳酸水平,通过乳酸影响内皮细胞功能及免疫细胞功能,从而介导炎症反应发生[7,22]。研究认为乳酸化修饰调控巨噬细胞类型,影响免疫和炎症,早期M1型巨噬细胞表现为有氧糖酵解,并为乳酸生成和蛋白质乳酸化提供先决条件,以便乳酸化修饰在炎症刺激后介导组织修复性巨噬细胞转变,当乳酸减少时,巨噬细胞的组蛋白乳酸化减少,无法有效上调修复基因[23]。随着乳酸的积累,乳酸化修饰可能与蜕膜巨噬细胞M1到M2表型转化有关,但乳酸化修饰在蜕膜巨噬细胞中的具体极化机制和具体调控基因尚不清楚,有待进一步探索。
2.4 乳酸化修饰参与调控胚胎阶段特异性基因表达
妊娠早期胎盘生理性缺氧阶段与胎盘特异性基因表达阶段存在明显时空重叠和功能偶合。乳酸化修饰参与胚胎正常发育,在体细胞重编程过程中,乳酸促进多能性基因的组蛋白乳酸化并提高重编程效率,乳酸化修饰能促进胚胎成纤维细胞重编程为诱导性多能干细胞,并激活多能性基因的表达[24]。乳酸刺激H3K18la在种系和卵裂胚基因上的丰度,补充乳酸盐可增强种系和胚胎分裂相关基因的组蛋白乳酸化以促进转录延伸,从而诱导参与胚胎分裂的基因的整体上调[25],H3K18la也可作为启动子激活与组织特异性增强相关的组蛋白标记基因,影响胚胎形成和发育[26]。因此,蛋白质Kla在胚胎形成和发育阶段发挥了重要作用,特别是在早期妊娠胎盘缺氧阶段。
3 蛋白质乳酸化修饰与胎盘病理性缺氧相关妊娠并发症
研究表明,当胎盘出现病理性缺氧缺血时会出现异常滋养细胞增殖和胎盘功能障碍,可导致PE、胎儿生长受限、GDM和RSA等[27
3.1 蛋白质乳酸化修饰与PE
研究发现与健康妊娠者相比,PE患者胎盘存在明显缺氧,且PE与正常妊娠胎盘中蛋白质乳酸化水平存在显著差异,这些差异表达的乳酸化蛋白主要与线粒体和柠檬酸循环相关的能量代谢有关,现已鉴定了多个乳酸化修饰位点,这些位点在PE和健康妊娠的胎盘组织间也呈现差异的Kla修饰,同时在PE胎盘中发现了更多的蛋白质和位点发生乳酸化修饰上调,提示了胎盘中蛋白质乳酸化修饰差异引起的组织缺氧适应失败可能是导致缺氧后胎盘功能障碍和PE发展的一种机制[31-32]。蛋白质乳酸化修饰通过调节糖酵解影响滋养细胞增殖,参与PE发病;研究发现人类白细胞抗原F与滋养层增殖有关,其可以诱导丙酮酸激酶M2型(pyruvate kinase M2,PKM2)的蛋白表达并抑制PKM2 K305残基的乳酸化,并在PE患者的绒毛外滋养层和绒毛状细胞滋养层中的表达降低,导致PKM2介导的糖酵解水平下调;同时PE患者胎盘中PKM2 K305的乳酸化相对上调进一步导致酶活性降低,二者共同导致滋养层增殖能力下调并参与PE的发病[27]。研究表明,Grhl2/SLC31A1轴上组蛋白的乳酸化修饰会加剧滋养层功能障碍,并介导PE的发生[33]。此外,PE患者的胎盘常暴露于缺血缺氧中,滋养细胞在缺氧情况下通过乳酸生成介导的组蛋白乳酸化上调了纤维化相关基因FN1和SERPINE1的表达,降低了滋养细胞的迁移和侵袭能力,揭示了缺氧通过促进乳酸生成诱导组蛋白乳酸化,参与调控滋养细胞功能表达[32]。另有研究表明,PE患者子宫螺旋动脉重塑异常导致胎盘缺氧,可增强糖酵解,使乳酸积累,进而通过在GADD45A启动子处诱导H3K18la来增强GADD45A基因表达并促进滋养细胞衰老,提示调节乳酸代谢和组蛋白修饰可以缓解PE的胎盘功能障碍和衰老[34]。
3.2 蛋白质乳酸化修饰与GDM
研究发现,1型糖尿病患者的胎盘在妊娠早期处于增强的氧化应激环境中,同时糖尿病暴露导致了绒毛外滋养层浸润蜕膜后的螺旋动脉功能受损,使绒毛间隙氧分压升高延迟或降低;以及完全重塑的螺旋动脉较少、螺旋动脉重塑不充分等导致管腔变窄;且葡萄糖和胰岛素水平会直接影响糖尿病环境下的胎盘变化[35]。这预示着母体糖尿病环境下的胎盘可能存在类似PE的缺氧和蛋白质乳酸化修饰。最近有研究也发现,GDM患者的血液和胎盘组织中乳酸和组蛋白乳酸化水平显著增加,组蛋白H3K18la使7个下游目的基因显著表达,其中CACNA2D1被证实是GDM中发生差异组蛋白乳酸化修饰的关键基因,并利用HTR-8/SVneo细胞建立GDM细胞模型证实CACNA2D1能增强滋养细胞的活力和促进细胞增殖[36]。该研究表明GDM患者组蛋白乳酸化可能影响滋养细胞生长和功能,且其7个下游目的基因与葡萄糖代谢和胰岛素调节相关。因此,蛋白质乳酸化修饰可能参与了GDM发病,但其蛋白质乳酸化表达水平是否会导致疾病加重或在此基础上增加 PE、早产及死胎发生风险尚不清楚,有待进一步研究。
3.3 蛋白质乳酸化修饰与RSA
在妊娠早期,母胎界面处的细胞和分子处于免疫平衡状态,当平衡状态被打破并转变为促炎状态时,母体和胎儿往往是相互排斥的,最终导致胎儿流产,在RSA母胎界面存在核苷酸结合结构域富含亮氨酸重复序列和含热蛋白结构域受体3(nucleotide-binding domain leucine-rich repeat and pyrin domain-containing receptor 3,NLRP3)炎性小体介导的异常炎症,在某些刺激下,胎源滋养层细胞可能会通过NLRP3炎性小体增加炎症因子的表达和释放,降低自体细胞活性并激活母源性巨噬细胞,最终导致胚胎植入失败和RSA的发生[37]。最近一项对系统性红斑狼疮(systemic lupus erythematosus,SLE)孕妇的研究发现,中性粒细胞胞外诱捕网(neutrophil extracellular trap,NET)促进了滋养细胞的糖酵解和滋养细胞中NLRP3 K166位点的乳酸化,过度激活的糖酵解和乳酸化修饰促进了滋养细胞凋亡,突变NLRP3 K166位点赖氨酸使其不能发生乳酸化修饰则减少异常凋亡引起的胎盘损伤[38]。与健康孕妇相比,SLE女性患者发生胎盘功能恶化和不良妊娠结局的风险更高,例如流产、PE、早产和胎儿生长受限[38]。另有研究鉴定了4个与RSA相关的乳酸化相关基因,其中乳酸化修饰正向调节S100A11基因的表达,经乳酸介导的代谢重编程通过S100A11基因调节免疫和滋养层功能,从而促进RSA发病[39]。由此认为,蛋白质乳酸化可能通过影响母胎界面免疫或滋养细胞功能参与RSA的发生。此外,蛋白质乳酸化可能与不明原因的RSA有关,蛋白质乳酸化在妊娠后会显著增加,以重塑子宫内膜对胚胎的容受性并促进胚胎成功着床,若胚胎着床失败将导致流产的发生 [40-41]。
4 结语与展望
综上所述,蛋白乳酸化修饰既参与调控胎盘生理性缺氧下的正常妊娠过程,又与病理性缺氧相关妊娠并发症的发生发展密切相关,蛋白质乳酸化修饰涉及目的基因数量庞大、作用途径复杂,目前PE、GDM和RSA的发病机制尚未完全明确,蛋白质乳酸化修饰对胎盘功能和滋养细胞功能的作用可能是潜在的发病机制。未来仍需更多研究阐明蛋白质乳酸化修饰在胎盘细胞应对缺氧的具体信号通路和分子机制,以及PE、RSA等妊娠并发症中调控基因表达的蛋白质乳酸化通路和差异表达水平,利用妊娠期疾病动物模型研究乳酸代谢干预措施的治疗潜力,这对妊娠并发症的预测、早期干预和治疗都有着十分重要的意义。
参考文献
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[J].The mammalian blastocyst exhibits a high capacity for aerobic glycolysis, a metabolic characteristic of tumours. It has been considered that aerobic glycolysis is a means to ensure a high carbon flux to fulfil biosynthetic demands. Here, alternative explanations for this pattern of metabolism are considered. Lactate creates a microenvironment of low pH around the embryo to assist the disaggregation of uterine tissues to facilitate trophoblast invasion. Further it is proposed that lactate acts as a signalling molecule (especially at the reduced oxygen tension present at implantation) to elicit bioactive VEGF recruitment from uterine cells, to promote angiogenesis. Finally it is suggested that the region of high lactate/low pH created by the blastocyst modulates the activity of the local immune response, helping to create immune tolerance. Consequently, the mammalian blastocyst offers a model to study the role of microenvironments, and how metabolites and pH are used in signalling. © 2015 The Author. Bioessays published by WILEY Periodicals, Inc.
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[J].Macrophages initiate inflammation to eliminate invading microbes. Following clearance of inflammatory stimuli, macrophages down-regulate inflammatory genes and express repair genes to protect host tissues from damage. Here, we find that the adaptor B-cell adapter for PI3K (BCAP) facilitates this transition of inflammatory macrophages to reparative macrophages. Absence of BCAP in macrophages limits the ability of mice to repair intestinal tissues following inflammatory damage. Following Toll-like receptor stimulation, macrophages undergo aerobic glycolysis that results in lactate production, a process compromised in BCAP-deficient macrophages. This lactate is incorporated into histone tails and is involved in reparative macrophage transition. We find defective lactate production by BCAP-deficient macrophages results in reduced histone lactylation and expression of tissue repair genes, thus blunting their reparative transition.
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[J].Somatic cell reprogramming provides insight into basic principles of cell fate determination, which remain poorly understood. Here we show that the transcription factor Glis1 induces multi-level epigenetic and metabolic remodelling in stem cells that facilitates the induction of pluripotency. We find that Glis1 enables reprogramming of senescent cells into pluripotent cells and improves genome stability. During early phases of reprogramming, Glis1 directly binds to and opens chromatin at glycolytic genes, whereas it closes chromatin at somatic genes to upregulate glycolysis. Subsequently, higher glycolytic flux enhances cellular acetyl-CoA and lactate levels, thereby enhancing acetylation (H3K27Ac) and lactylation (H3K18la) at so-called 'second-wave' and pluripotency gene loci, opening them up to facilitate cellular reprogramming. Our work highlights Glis1 as a powerful reprogramming factor, and reveals an epigenome-metabolome-epigenome signalling cascade that involves the glycolysis-driven coordination of histone acetylation and lactylation in the context of cell fate determination.
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[J].Lactate was recently found to mediate histone lysine lactylation and facilitate polarization of M1 macrophages, indicating its role in metabolic regulation of gene expression. During somatic cell reprogramming, lactate promotes histone lactylation of pluripotency genes and improves reprogramming efficiency. However, the function of lactate in cell fate control in embryonic stem cells (ESCs) remains elusive. In this study, we revealed that lactate supplementation activated germline genes in mouse ESCs. Lactate also induced global upregulation of cleavage embryo genes, such as members of the Zscan4 gene family. Further exploration demonstrated that lactate stimulated H3K18 lactylation accumulation on germline and cleavage embryo genes, which in turn promoted transcriptional elongation. Our findings indicated that lactate supplementation expanded the transcriptional network in mouse ESCs.
H3K18 lactylation marks tissue-specific active enhancers
[J].Histone lactylation has been recently described as a novel histone post-translational modification linking cellular metabolism to epigenetic regulation.Given the expected relevance of this modification and current limited knowledge of its function, we generate genome-wide datasets of H3K18la distribution in various in vitro and in vivo samples, including mouse embryonic stem cells, macrophages, adipocytes, and mouse and human skeletal muscle. We compare them to profiles of well-established histone modifications and gene expression patterns. Supervised and unsupervised bioinformatics analysis shows that global H3K18la distribution resembles H3K27ac, although we also find notable differences. H3K18la marks active CpG island-containing promoters of highly expressed genes across most tissues assessed, including many housekeeping genes, and positively correlates with H3K27ac and H3K4me3 as well as with gene expression. In addition, H3K18la is enriched at active enhancers that lie in proximity to genes that are functionally important for the respective tissue.Overall, our data suggests that H3K18la is not only a marker for active promoters, but also a mark of tissue specific active enhancers.© 2022. The Author(s).
HLA-F regulates the proliferation of trophoblast via PKM2-dependent glycolysis in the pathogenesis of preeclampsia
[J].The regulatory molecule Human Leukocyte Antigen F (HLA-F) has been implicated in trophoblast proliferation during pregnancy, and reduced levels of this antigen have been identified in trophoblast cells of patients with preeclampsia. This study aimed to analyze the effect and mechanism of HLA-F on the proliferation of trophoblast and the underlying mechanism of reduced HLA-F involved in preeclampsia.q-PCR, Western blot (WB), and Immunohistochemistry (IHC) were used to detect the expression of HLA-F and Pyruvate Kinase Muscle isoform 2 (PKM2) in placenta tissues. Jar cells were transfected with overexpression lentivirus, specific siRNA, and shRNA to regulate corresponding genes. Immunofluorescence was used to analyze the expression and distribution of HLA-F and PKM2. Extracellular and intracellular lactate, pyruvate, and enzymatic activity of PKM2 were measured using the corresponding assay kits. Cell proliferation was measured by CCK8, MTT, colony formation assay, and Mini patient-derived xenograft (Mini-PDX). Chromatin Immunoprecipitation and deep sequencing (ChIP-seq) and 4-dimensional label-free quantitative proteomics (4D-LFQP-LA) were used to analyze the HLA-F-binding DNA sequences and the differential lactylation proteins in HLA-F-overexpression Jar and its control.The expression of HLA-F is reduced in extravillous trophoblast and villous cytotrophoblast from patients with preeclampsia. Over-expression of HLA-F promoted proliferation while under-expression inhibited it. Further experiments demonstrated that over-expression of HLA-F promoted expression of the PKM2 protein and its enzymatic activity, resulting in enhanced glycolysis in Jar cells. Specifically, we determined that HLA-F regulated the expression of PKM2 by binding the promoter of PKM, and promoted PKM2 enzyme activity by down-regulating the lactylation of residue K305. Moreover, silencing PKM2 with siRNA reduced HLA-F-mediated glycolysis and proliferation in HLA-F-overexpressing Jar cells. Finally, we corroborated these results using a MiniPDX model, with which we confirmed that the PKM2 agonist TEPP-46 promoted the proliferation of ShHLA-F Jar cells.The reduced expression of HLA-F in placental trophoblast cells resulted in the downregulation of both PKM2 transcription and protein expression. Concurrently, the relative upregulation of lactylation at PKM2 K305 contributed to a decline in enzyme activity, further exacerbating glycolysis dysfunction. Collectively, these alterations led to a suppression of trophoblast proliferation capacity and involvement in the pathogenesis of preeclampsia.© 2025. The Author(s).
LDHA deficiency inhibits trophoblast proliferation via the PI3K/AKT/FOXO1/CyclinD1 signaling pathway in unexplained recurrent spontaneous abortion
[J].\n Dysregulated trophoblast proliferation, invasion, and apoptosis may cause several pregnancy‐associated complications, such as unexplained recurrent spontaneous abortion (URSA). Recent studies have shown that metabolic abnormalities, including glycolysis inhibition, may dysregulate trophoblast function, leading to URSA. However, the underlying mechanisms remain unclear. Herein, we found that lactate dehydrogenase A (LDHA), a key enzyme in glycolysis, was significantly reduced in the placental villus of URSA patients. The human trophoblast cell line HTR‐8/SVneo was used to investigate the possible LDHA‐mediated regulation of trophoblast function.\n LDHA\n knockdown in HTR‐8/SVneo cells induced G0/G1 phase arrest and increased apoptosis, whereas\n LDHA\n overexpression reversed these effects. Next, RNA sequencing combined with Kyoto Encyclopedia of Genes and Genomes analysis demonstrated that the PI3K/AKT signaling pathway is potentially affected by downstream genes of LDHA. Especially, we found that\n LDHA\n knockdown decreased the phosphorylation levels of PI3K, AKT, and FOXO1, resulting in a significant downregulation of CyclinD1. In addition, treatment with an AKT inhibitor or FOXO1 inhibitor also verified that the PI3K/AKT/FOXO1 signaling pathway influenced the gene expression of CyclinD1 in trophoblast. Moreover, p‐AKT expression correlated positively with LDHA expression in syncytiotrophoblasts and extravillous trophoblasts in first‐trimester villus. Collectively, this study revealed a new regulatory pathway for LDHA/PI3K/AKT/FOXO1/CyclinD1 in the trophoblast cell cycle and proliferation.\n
IL-27 deficiency inhibits proliferation and invasion of trophoblasts via the SFRP2/Wnt/β-catenin pathway in fetal growth restriction
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Placental Transcriptome Profiling in Subtypes of Diabetic Pregnancies Is Strongly Confounded by Fetal Sex
[J].The placenta is a temporary organ with a unique structure and function to ensure healthy fetal development. Placental dysfunction is involved in pre-eclampsia (PE), fetal growth restriction, preterm birth, and gestational diabetes mellitus (GDM). A diabetic state affects maternal and fetal health and may lead to functional alterations of placental metabolism, inflammation, hypoxia, and weight, amplifying the fetal stress. The placental molecular adaptations to the diabetic environment and the adaptive spatio–temporal consequences to elevated glucose or insulin are largely unknown (2). We aimed to identify gene expression signatures related to the diabetic placental pathology of placentas from women with diabetes mellitus. Human placenta samples (n = 77) consisting of healthy controls, women with either gestational diabetes mellitus (GDM), type 1 or type 2 diabetes, and women with GDM, type 1 or type 2 diabetes and superimposed PE were collected. Interestingly, gene expression differences quantified by total RNA sequencing were mainly driven by fetal sex rather than clinical diagnosis. Association of the principal components with a full set of clinical patient data identified fetal sex as the single main explanatory variable. Accordingly, placentas complicated by type 1 and type 2 diabetes showed only few differentially expressed genes, while possible effects of GDM and diabetic pregnancy complicated by PE were not identifiable in this cohort. We conclude that fetal sex has a prominent effect on the placental transcriptome, dominating and confounding gene expression signatures resulting from diabetes mellitus in settings of well-controlled diabetic disease. Our results support the notion of placenta as a sexual dimorphic organ.
The overview of lactylation in the placenta of preeclampsia
[J].Preeclampsia is a major challenge for obstetricians due to its severe impacts on maternal and fetal health. Lysine lactylation (Kla) derived from lactate is a novel type of post-translational modification which has been confirmed to affect the malignant progression of diseases as an epigenetic modifier. However, the systemic lactylome profiling of preeclampsia is still unclear.Immunohistochemistry and protein immunoassay were performed on placenta tissues from preeclamptic patients and control pregnancies to compare lactylation levels between the groups. Then liquid chromatography-tandem mass spectrometry (LC-MS/MS) was utilized for quantitative lactylomic analysis and proteomic assessment for proteins with differentially lactated modification. Bioinformatics analyses were applied to reveal the conserved motif sequences and enrichment pathways.Significant differences in protein lactylation levels were evident in the placenta between preeclamptic and control groups, with modifications observed in both histone and non-histone proteins. Lactylome analysis showed significant downregulation of 59 Kla proteins and 69 Kla sites in preeclamptic placentas, whereas 44 proteins and 60 sites were upregulated. These differentially lactylated proteins were primarily mitochondrial and associated with the citrate cycle (TCA cycle). Enriched metabolic pathways linked to lactylation included those important for vascular muscle contraction, platelet activation, and several signaling pathways like PI3K-Akt, PPAR, and cholesterol metabolism.Preeclamptic placentas exhibit distinct lactylation profiles compared to normal pregnancies, primarily affecting mitochondrial and TCA cycle-related energy metabolism. These changes contribute to the pathophysiology of preeclampsia by involving metabolic pathways critical for angiogenesis and endothelial function.Copyright © 2025. Published by Elsevier Ltd.
Hypoxia regulates fibrosis-related genes via histone lactylation in the placentas of patients with preeclampsia
[J].Histone lactylation, a novel epigenetic modification induced by hypoxia and lactate, plays an important role in regulating gene expression. However, the role of histone lactylation in the pathogenesis of preeclampsia remains unknown.Placentas from preeclamptic patients and control pregnant women were collected for protein immunoassay to detect the expression level of histone lactylation, and two trophoblast cell lines were used to simulate the effect of histone lactylation on genes.We found that lactate and histone lactylation levels were increased in preeclamptic placentas. In vitro, hypoxia was demonstrated to induce histone lactylation by promoting the production of lactate in human-trophoblast-derived cell line (HTR-8/SVneo) and human first-trimester extravillous trophoblast cell line (TEV-1) cells. In addition, 152 genes were found to be upregulated by both hypoxia exposure and sodium l-lactate treatment in HTR-8/SVneo cells. These genes were mainly enriched in the pathways including the response to hypoxia, cell migration and focal adhesion. Among the 152 genes, nine were upregulated in preeclamptic placentas. Most noteworthy, two upregulated fibrosis-related genes, FN1 and SERPINE1, were promoted by hypoxia through histone lactylation mediated by the production of lactate.The present study demonstrated the elevated levels of histone lactylation in preeclamptic placentas and identified fibrosis-related genes that were promoted by histone lactylation induced by hypoxia in trophoblast cells, which provides novel insights into the mechanism of placental dysfunction in preeclampsia.Copyright © 2022 Wolters Kluwer Health, Inc. All rights reserved.
Blocking lactate regulation of the Grhl2/SLC31A1 axis inhibits trophoblast cuproptosis and preeclampsia development
[J].
Lactate promotes premature aging of preeclampsia placentas through histone lactylation-regulated GADD45A
[J].Premature placental aging has been linked to preeclampsia (PE), with lactate identified as a promoter of cellular senescence in various cell types. In this study, we explored the role and underlying mechanisms of lactate in driving premature placental aging associated with PE.To evaluate senescence markers in placental samples or trophoblast cells, we conducted SA-β-Gal staining, western blotting, reverse transcription-quantitative polymerase chain reaction (RT-qPCR), and immunofluorescence assays. SiRNA transfection was used to reduce GADD45A expression in HTR-8/SVneo cells exposed to lactate. Additionally, chromatin immunoprecipitation-qPCR (ChIP-qPCR) was used to analyze histone lactylation at the GADD45A promoter region.SA-β-Gal staining indicated a significant increase in senescent cell proportions in placentas from PE patients compared to controls. Treatment with lactate enhanced senescence in trophoblast cells, leading to an increase in P16 expression. RNA sequencing analysis showed that genes differentially expressed in lactate-treated cells were involved in pathways linked to cellular senescence. Additionally, lactate augmented GADD45A expression and increased histone lactylation at its promoter region, while knocking down GADD45A in trophoblast cells mitigated the senescence induced by lactate.Lactate promotes trophoblast senescence through epigenetic upregulation of GADD45A expression, offering fresh perspectives on the molecular mechanisms and potential treatment targets for PE.Copyright © 2025 Elsevier Ltd. All rights reserved.
Diabesity-associated oxidative and inflammatory stress signalling in the early human placenta
[J].Early pregnancy is characterized by a series of complex and tightly regulated events to ultimately establish implantation and early placental development. One of the key events is the opening of the decidual spiral arteries into the intervillous space. It leads to a rise in oxygen tension in the intervillous space and the placenta and will induce transcriptional and translational changes of oxygen-sensitive molecules including antioxidants. Diabetes and/or obesity ('diabesity') are associated with changes in the maternal environment, which can affect any of the distinct developmental processes ensuing modifications of onset or magnitude of oxygen tension changes. This may overwhelm the anti-oxidative defence systems developing in parallel to the physiological rise in oxygen tension. The resulting exacerbated oxidative stress, as it was demonstrated in the first trimester placentas of type 1 diabetes mellitus (T1DM) patients, may impair developmental processes. In addition, many components of the diabesity environment can have distinct molecular effects on a range of molecules, but these need to be identified. Insulin is an important contributor to early placental phenotype, because it is involved in regulation of cytotrophoblast-syncytiotrophoblast fusion and placental surface expansion. Its circulating levels are increased in T1DM, because of pharmacologic treatment, and obesity, because of beta-cell compensation of insulin resistance. This constitutes the (patho)physiological link between diabesity and placental growth changes. Microarray studies have identified several molecular and cellular candidate processes altered by insulin in obese pregnancies, including cell cycle regulation and fatty acid and cholesterol metabolism. Research on early diabesity exposure and the placenta is still in its infant stage. To stimulate further studies we have identified some important and pending questions.Copyright © 2018 Elsevier Ltd. All rights reserved.
ChIP-seq and RNA-seq Reveal the Involvement of Histone Lactylation Modification in Gestational Diabetes Mellitus
[J].Lactylation is a novel post-translational modification of proteins. Although the histone lactylation modification has been reported to be involved in glucose metabolism, its role and molecular pathways in gestational diabetes mellitus (GDM) are still unclear. This study aims to elucidate the histone lactylation modification landscapes of GDM patients and explore lactylation-modification-related genes involved in GDM. We employed a combination of RNA-seq analysis and chromatin immunoprecipitation sequencing (ChIP-seq) analysis to identify upregulated differentially expressed genes (DEGs) with hyperhistone lactylation modification in GDM. We demonstrated that the levels of lactate and histone lactylation were significantly elevated in GDM patients. DEGs were involved in diabetes-related pathways, such as the PI3K-Akt signaling pathway, Jak-STAT signaling pathway, and mTOR signaling pathway. ChIP-seq analysis indicated that histone lactylation modification in the promoter regions of the GDM group was significantly changed. By integrating the results of RNA-seq and ChIP-seq analysis, we found that CACNA2D1 is a key gene for histone lactylation modification and is involved in the progression of GDM by promoting cell vitality and proliferation. In conclusion, we identified the key gene CACNA2D1, which upregulated and exhibited hypermodification of histone lactylation in GDM. These findings establish a theoretical groundwork for the targeted therapy of GDM.
The role of maternal-foetal interface inflammation mediated by NLRP3 inflammasome in the pathogenesis of recurrent spontaneous abortion
[J].Approximately half of the recurrent spontaneous abortions (RSAs) that remain unidentified to date may be closely related to inflammation. Our previous study found excessive NLRP3 inflammasomes in RSA patients. Here, we investigated further the role of inflammasomes in the maternal-foetal interface of RSA patients.Villous and decidual tissues were collected during uterine curettage. The trophoblast cell line TEV-1 was cultured with lipopolysaccharide (LPS) or low molecular weight heparin (LMWH), and then the macrophage cell line RAW264.7 was treated with trophoblast media. The expression and localisation of inflammasomes in tissues and cells were detected, and the migration and proliferation of cells were analysed.A significantly increased expression of inflammasomes was observed in RSA tissues compared with those in the normal group, and it was more obvious in villous tissues than in decidual tissues. In TEV-1 cells, after LPS stimulation, the expression of inflammasomes was increased, but the cell activity was decreased, whereas in RAW264.7, both expression of inflammasomes and cell activity were increased in the LPS group. In addition, LMWH could inhibit the action of LPS in above cells.In patients experiencing RSA, abnormal inflammatory response might be mediated by NLRP3 inflammasomes on the maternal-foetal interface, which may reduce trophoblast activity and promote macrophage activity, leading to early embryo implantation failure. LMWH is expected to treat RSA patients by blocking this process.Copyright © 2020 Elsevier Ltd. All rights reserved.
Neutrophil extracellular traps induce trophoblasts pyroptosis via enhancing NLRP3 lactylation in SLE pregnancies
[J].
Discovery of protein lactylation-associated biomarkers and their potential pathogenic mechanisms in recurrent spontaneous abortion
[J].
蛋白质翻译后修饰在不明原因复发性流产中的作用
[J].
组蛋白乳酸化在胚胎发育和子宫内膜容受性中的作用及其研究进展
[J].
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