[胚泡计数变化 "跳值 "在胚胎人工授精评估中的应用]。

J W Yang, W Han, W W Liu, J X Liu, G N Huang, X D Zhang
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引用次数: 0

摘要

目的探索结合人工智能(AI)的延时技术(TLT)提取的胚泡数量变化 "跳值 "与体外受精(IVF)胚胎形态特征之间的相关性,并检验其在临床应用中的可行性。研究方法本研究是一项诊断性实验(胚胎移植患者的人工智能再评估),共回顾性分析了2020年12月至2021年12月期间在重庆医科大学附属妇女儿童医院接受体外受精的1 226名患者的6 545枚胚胎,其中2 869枚胚胎尝试通过TLT培养至囊胚期。胚胎动态图(EDM)是由TLT记录软件Embryo Viewer根据胚胎发育动力学绘制的。自主研发的人工智能胚胎评估软件在胚胎发育过程中实时识别和记录裂殖数量,并与 EDM 进行对比,分析裂殖球数量变化形成的跳值与胚胎结果之间的相关性。通过斯皮尔曼回归(Spearman)和阶梯式逻辑回归(step-up logistic regression)对跳越值、胚胎形态评分、植入率和活产率之间的相关性进行了分析。选择接收者操作特征曲线(ROC)来报告跳越值与形态学的关系。最后,利用 ROC 分析法对胚胎植入率和活产率进行预测。结果从胚泡计数(受精后 72 小时)中提取的总跳值与异常裂解、囊胚形成率、第 3 (D3) 天细胞评分、大小不均和破碎呈负相关(β 值分别为 -0.POR=0.97,95%CI:0.93-0.99,P=0.034;OR=0.96,95%CI:0.93-0.98,P=0.044)。跳值顺序选择和传统形态学标准的植入预测能力相似[曲线下面积(AUC):0.679 vs 0.620]。活产率与女性年龄呈负相关(OR=0.91,95%CI:0.88-0.93;POR=0.77,95%CI:0.59-0.99;P=0.045),与跳值顺序选择呈负相关(OR=0.98,95%CI:0.96-0.99;P=0.038)。99;P=0.038),而与取卵数和胚胎移植的子宫内膜厚度呈正相关(OR=1.08,95%CI:1.05-1.11,POR=1.09,95%CI:1.06-0.12,PConclusions:跳值及其排序形式是对胚胎发育的系统量化,与胚胎发育质量和临床结果相关。它可以作为胚胎培养和选择的附加参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Application of the blastomere count variations "skip value" in the embryo AI assessment].

Objective: To explore the correlation between blastomere count variations "skip value" which extracted from by time-lapse technology (TLT) combined with artificial intelligence (AI) and morphological features of in vitro fertilization (IVF) embryo, and to test its feasibility in clinical applications. Methods: This study was a diagnostic experiment (AI reassessment of embryo transferred patients), a total of 6 545 embryos from 1 226 patients who underwent IVF at the Women and Children's Hospital of Chongqing Medical University from December 2020 to December 2021 were retrospectively analyzed, of which 2 869 embryos were attempted to cultured to blastocyst stage by TLT. The embryo dynamic map (EDM) was drawn by Embryo Viewer, a TLT recording software, based on embryo developmental kinetics. The self-developed AI embryo evaluation software identified and recorded the number of cleavages in real time during embryonic development, and compared with the EDM, the correlation between the skip value formed by the change of cleavage sphere counts and the outcomes of the embryos was analyzed. The correlation among skip value, morphological score of embryo, implantation rate and live birth rate were performed by Spearman and step-up logistic regression. The receiver operating characteristic (ROC) curve was selected for reporting there relationship of skip value and morphology. Finally, predicting power of skip value for implantation and live birth rate were performed by ROC analysis. Results: The total skip values extracted from the blastomere count of embryos (72 hours post-fertilization) were negatively correlated with abnormal cleavage, blastocyst formation rate, day 3 (D3)-cell score, uneven size and fragmentation (the β values were -0.268, -0.116, -0.213, -0.159 and -0.222, respectively; all P<0.001); positively correlated with D3-cell number (β=0.034; P<0.001); negatively correlated with blastocyst formation rate and implantation rate (OR=0.97, 95%CI: 0.93-0.99, P=0.034; OR=0.96, 95%CI: 0.93-0.98, P=0.044). The power of predicting implantation were similar between the order selection of skip values and traditional morphology criteria [area under curve (AUC): 0.679 vs 0.620]. Live birth rate were negatively correlated with female age (OR=0.91, 95%CI: 0.88-0.93; P<0.001), D3 general score (OR=0.77, 95%CI: 0.59-0.99; P=0.045) and order selection of skip values (OR=0.98, 95%CI: 0.96-0.99; P=0.038), while positively correlated with retrieved oocyte number and endometrial thickness in embryo transferred (OR=1.08, 95%CI:1.05-1.11, P<0.001; OR=1.09, 95%CI:1.06-0.12, P<0.001, respectively) from multivariate regression analysis, and the power of predicting live birth was 0.666 for AUC. Conclusions: The skip value and its order form is a systematic quantification of embryo development, correlated with embryo developmental quality and clinical outcome. It could be an addition parameter for embryo culture and selection.

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