Advances in embryo culture platforms: novel approaches to improve preimplantation embryo development through modifications of the microenvironment

Hum Reprod Update. 2011 Jul-Aug;17(4):541-57. doi: 10.1093/humupd/dmr006. Epub 2011 Mar 31.

Abstract

Background: The majority of research aimed at improving embryo development in vitro has focused on manipulation of the chemical environment, examining details such as energy substrate composition and impact of various growth factors or other supplements. In comparison, relatively little work has been done examining the physical requirements of preimplantation embryos and the role culture platforms or devices can play in influencing embryo development.

Methods: Electronic searches were performed using keywords centered on embryo culture techniques using PUBMED through June 2010 and references were searched for additional research articles.

Results: Various approaches to in vitro embryo culture that involve manipulations of the physical culture environment are emerging. Novel culture platforms being developed examine issues such as media volume and embryo spacing. Furthermore, methods to permit dynamic embryo culture with fluid flow and embryo movement are now available, and novel culture surfaces are being tested.

Conclusions: Although several factors remain to be studied to optimize efficiency, manipulations of the embryo culture microenvironment through novel culture devices may offer a means to improve embryo development in vitro. Reduced volume systems that reduce embryo spacing, such as the well-of-the-well approach, appear beneficial, although more work is needed to verify the source of their true benefit in human embryos. Emerging microfluidic technology appears to be a promising approach. However, along with the work on specialized culture surfaces, more information is required to determine the impact on human embryo development.

Publication types

  • Review

MeSH terms

  • Animals
  • Ectogenesis*
  • Embryo Culture Techniques* / instrumentation
  • Humans
  • Microfluidics / methods
  • Surface Properties