Mi Ziyue, Gong Li, Kong Yujie, Zhao Peizhe, Yin Yonghua, Xu Haixia, Tian Li, Liu Zhong
Clinical Transfusion Research Center, Institute of Blood Transfusion, Chinese Academy of Medical Sciences and Peking Union Medical College, Chengdu, SC, China.
Key Laboratory of Transfusion Adverse Reactions, Institute of Blood Transfusion, Chinese Academy of Medical Sciences, Chengdu, SC, China.
Platelets. 2022 Nov 17;33(8):1260-1269. doi: 10.1080/09537104.2022.2108541. Epub 2022 Aug 14.
Patients have a high risk of suffering adverse reactions after receiving platelet products stored for 5 days. Bioactive exosomes in platelet products can be accumulated during storage, which is associated with adverse reactions. MicroRNAs are one of the critical cargoes in exosomes, which participate in cell differentiation, metabolism, and immunomodulation. This study intends to elucidate and analyze the differential expression of exosomal microRNAs in apheresis platelet concentrates during storage and predict the potential functions of target genes. Apheresis platelet concentrates were used to isolate exosomes by ultracentrifugation. Exosomes were phenotyped by western blot, transmission electron microscopy, and nano flow cytometry. The differential expression of the exosomal microRNAs was obtained by a microarray test using four bags of apheresis platelets stored for 5 days compared with 1 day. The differentially expressed microRNAs between the two time points were identified, and their target genes were analyzed by miRWalk and miRDB. Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) analyses were performed to predict the target genes' functions. Fifteen bags of apheresis platelet concentrates stored for 1 day and 5 days were used to verify the microarray results by quantitative reverse transcription-polymerase chain reactions (qRT-PCR). There were 134 microRNAs in total expressed differently in the two groups (day 1 and day 5), with 57 microRNAs up-regulated and 77 down-regulated (|fold change| > 2.0 and < .05). Thirteen up-regulated microRNAs (hsa-miR-22-3p, hsa-miR-223-3p, hsa-miR-21-5p, hsa-miR-23a-3p, hsa-miR-320b, hsa-let-7a-5p, hsa-miR-25-3p, hsa-miR-126-3p, hsa-miR-320c, hsa-miR-342-3p, hsa-miR-320d, hsa-miR-328-3p, and hsa-miR-320e) detected in all samples were selected to validate the results. The qRT-PCR results showed that five (hsa-miR-22-3p, hsa-miR-223-3p, hsa-miR-21-5p, hsa-miR-23a-3p, and hsa-miR-320b) of them were increased more than 10-fold ( < .001); four (hsa-let-7a-5p, hsa-miR-25-3p, hsa-miR-126-3p, hsa-miR-320c) more than five-fold ( < .001); two (hsa-miR-342-3p and hsa-miR-320d) more than two-fold ( < .05); and two (hsa-miR-328-3p and hsa-miR-320e) more than two-fold ( > .05). Specifically, hsa-miR-22-3p increased 14.6-fold; hsa-miR-223-3p increased 13.0-fold; and hsa-miR-21-5p increased 12.0-fold. Based on bioinformatics functional analysis, target genes of top nine microRNAs (hsa-miR-22-3p, hsa-miR-223-3p, hsa-miR-21-5p, hsa-miR-23a-3p, hsa-miR-320b, hsa-let-7a-5p, hsa-miR-25-3p, hsa-miR-126-3p, and hsa-miR-320c) were annotated with positive regulation of cell proliferation and nervous system development, and mainly enriched in regulating pluripotency of stem cells signaling pathway, prolactin signaling pathway, and FoxO signaling pathway, etc. The prolactin, FoxO, ErbB, and TNF signaling pathway were relevant to immunomodulation. In particular, hsa-miR-22-3p expression was the most different during storage, with a fold change of 14.6, which might be a key mediator.
患者在接受储存5天的血小板制品后发生不良反应的风险较高。血小板制品中的生物活性外泌体在储存过程中会积累,这与不良反应有关。微小RNA是外泌体中的关键成分之一,参与细胞分化、代谢和免疫调节。本研究旨在阐明和分析单采血小板浓缩物在储存期间外泌体微小RNA的差异表达,并预测靶基因的潜在功能。采用超速离心法从单采血小板浓缩物中分离外泌体。通过蛋白质免疫印迹法、透射电子显微镜和纳米流式细胞术对外泌体进行表型鉴定。利用微阵列试验检测4袋储存5天的单采血小板与储存1天的单采血小板相比,外泌体微小RNA的差异表达。鉴定两个时间点之间差异表达的微小RNA,并通过miRWalk和miRDB分析其靶基因。进行基因本体论(GO)和京都基因与基因组百科全书(KEGG)分析以预测靶基因的功能。使用15袋储存1天和5天的单采血小板浓缩物,通过定量逆转录-聚合酶链反应(qRT-PCR)验证微阵列结果。两组(第1天和第5天)共有134种微小RNA表达不同,其中57种微小RNA上调,77种微小RNA下调(|倍数变化|>2.0且P<0.05)。选择在所有样本中检测到的13种上调的微小RNA(hsa-miR-22-3p、hsa-miR-223-3p、hsa-miR-21-5p、hsa-miR-23a-3p、hsa-miR-320b、hsa-let-7a-5p、hsa-miR-25-3p、hsa-miR-126-3p、hsa-miR-320c、hsa-miR-342-3p、hsa-miR-320d、hsa-miR-328-3p和hsa-miR-320e)来验证结果。qRT-PCR结果显示,其中5种(hsa-miR-22-3p、hsa-miR-223-3p、hsa-miR-21-5p、hsa-miR-23a-3p和hsa-miR-320b)增加了10倍以上(P<0.001);4种(hsa-let-7a-5p、hsa-miR-25-3p、hsa-miR-126-3p、hsa-miR-320c)增加了5倍以上(P<0.001);2种(hsa-miR-342-3p和hsa-miR-320d)增加了2倍以上(P<0.05);2种(hsa-miR-328-3p和hsa-miR-320e)增加了2倍以上(P>0.05)。具体而言,hsa-miR-22-3p增加了14.6倍;hsa-miR-223-3p增加了13.0倍;hsa-miR-21-5p增加了12.0倍。基于生物信息学功能分析,前9种微小RNA(hsa-miR-22-3p、hsa-miR-223-3p、hsa-miR-21-5p、hsa-miR-23a-3p、hsa-miR-320b、hsa-let-7a-5p、hsa-miR-25-3p、hsa-miR-126-3p和hsa-miR-320c)的靶基因被注释为细胞增殖的正调控和神经系统发育,主要富集在调节干细胞多能性信号通路、催乳素信号通路和FoxO信号通路等。催乳素、FoxO、表皮生长因子受体(ErbB)和肿瘤坏死因子(TNF)信号通路与免疫调节有关。特别是,hsa-miR-22-3p在储存期间的表达差异最大,倍数变化为14.6,可能是一个关键介质。