Use of time-lapse monitoring in medically assisted reproduction treatments: a mini-review

Zygote. 2021 Apr;29(2):93-101. doi: 10.1017/S0967199420000623. Epub 2020 Nov 24.

Abstract

During human in vitro culture, a morphological microscope analysis is normally performed to select the best embryo to transfer, with the hope of obtaining a successful pregnancy. The morphological evaluation may combine number and size of blastomeres, fragmentation, multinucleation, blastocyst expansion, inner-cell mass and trophectoderm appearance. However, standard microscopy evaluation involves the removal of the embryos from the incubator, exposing them to changes in pH, temperature, and oxygen level. Additionally, morphological assessments might include high inter-observer variability. Recently, continuous embryo culture using time-lapse monitoring (TLM) has allowed embryologists to analyse the dynamic and morphokinetic events of embryo development and, based on that, the embryologist is able to scrutinize the complete sequence of embryonic evolution, from fertilization to the blastocyst formation. Therefore, TLM allows an uninterrupted culture condition, reducing the need to remove embryos from the incubator. The monitoring system is normally composed of a standard incubator with an integrated microscope coupled to a digital camera, which is able to collect images at regular times, and subsequently processed into video. These data can be annotated and analyzed using an integrated software, therefore this allows embryologists to facilitate the process of embryo selection for transfer. The main aim of this paper is to discuss the potential benefits and uses of the TLM in the embryology laboratory.

Keywords: Embryo culture; Embryo viability; Medically assisted reproduction; Morphokinetic evaluation; Time-lapse monitoring.

Publication types

  • Review

MeSH terms

  • Blastocyst*
  • Blastomeres
  • Embryo Culture Techniques
  • Embryonic Development*
  • Female
  • Fertilization in Vitro
  • Humans
  • Pregnancy
  • Reproduction
  • Time-Lapse Imaging