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      Combined noninvasive metabolic and spindle imaging as potential tools for embryo and oocyte assessment

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          Abstract

          STUDY QUESTION

          Is the combined use of fluorescence lifetime imaging microscopy (FLIM)-based metabolic imaging and second harmonic generation (SHG) spindle imaging a feasible and safe approach for noninvasive embryo assessment?

          SUMMARY ANSWER

          Metabolic imaging can sensitively detect meaningful metabolic changes in embryos, SHG produces high-quality images of spindles and the methods do not significantly impair embryo viability.

          WHAT IS KNOWN ALREADY

          Proper metabolism is essential for embryo viability. Metabolic imaging is a well-tested method for measuring metabolism of cells and tissues, but it is unclear if it is sensitive enough and safe enough for use in embryo assessment.

          STUDY DESIGN, SIZE, DURATION

          This study consisted of time-course experiments and control versus treatment experiments. We monitored the metabolism of 25 mouse oocytes with a noninvasive metabolic imaging system while exposing them to oxamate (cytoplasmic lactate dehydrogenase inhibitor) and rotenone (mitochondrial oxidative phosphorylation inhibitor) in series. Mouse embryos ( n = 39) were measured every 2 h from the one-cell stage to blastocyst in order to characterize metabolic changes occurring during pre-implantation development. To assess the safety of FLIM illumination, n = 144 illuminated embryos were implanted into n = 12 mice, and n = 108 nonilluminated embryos were implanted into n = 9 mice.

          PARTICIPANTS/MATERIALS, SETTING, METHODS

          Experiments were performed in mouse embryos and oocytes. Samples were monitored with noninvasive, FLIM-based metabolic imaging of nicotinamide adenine dinucleotide (NADH) and flavin adenine dinucleotide (FAD) autofluorescence. Between NADH cytoplasm, NADH mitochondria and FAD mitochondria, a single metabolic measurement produces up to 12 quantitative parameters for characterizing the metabolic state of an embryo. For safety experiments, live birth rates and pup weights (mean ± SEM) were used as endpoints. For all test conditions, the level of significance was set at P < 0.05.

          MAIN RESULTS AND THE ROLE OF CHANCE

          Measured FLIM parameters were highly sensitive to metabolic changes due to both metabolic perturbations and embryo development. For oocytes, metabolic parameter values were compared before and after exposure to oxamate and rotenone. The metabolic measurements provided a basis for complete separation of the data sets. For embryos, metabolic parameter values were compared between the first division and morula stages, morula and blastocyst and first division and blastocyst. The metabolic measurements again completely separated the data sets. Exposure of embryos to excessive illumination dosages (24 measurements) had no significant effect on live birth rate (5.1 ± 0.94 pups/mouse for illuminated group; 5.7 ± 1.74 pups/mouse for control group) or pup weights (1.88 ± 0.10 g for illuminated group; 1.89 ± 0.11 g for control group).

          LIMITATIONS, REASONS FOR CAUTION

          The study was performed using a mouse model, so conclusions concerning sensitivity and safety may not generalize to human embryos. A limitation of the live birth data is also that although cages were routinely monitored, we could not preclude that some runt pups may have been eaten.

          WIDER IMPLICATIONS OF THE FINDINGS

          Promising proof-of-concept results demonstrate that FLIM with SHG provide detailed biological information that may be valuable for the assessment of embryo and oocyte quality. Live birth experiments support the method’s safety, arguing for further studies of the clinical utility of these techniques.

          STUDY FUNDING/COMPETING INTEREST(S)

          Supported by the Blavatnik Biomedical Accelerator Grant at Harvard University and by the Harvard Catalyst/The Harvard Clinical and Translational Science Center (National Institutes of Health Award UL1 TR001102), by NSF grants DMR-0820484 and PFI-TT-1827309 and by NIH grant R01HD092550-01. T.S. was supported by a National Science Foundation Postdoctoral Research Fellowship in Biology grant (1308878). S.F. and S.A. were supported by NSF MRSEC DMR-1420382. Becker and Hickl GmbH sponsored the research with the loaning of equipment for FLIM. T.S. and D.N. are cofounders and shareholders of LuminOva, Inc., and co-hold patents (US20150346100A1 and US20170039415A1) for metabolic imaging methods. D.S. is on the scientific advisory board for Cooper Surgical and has stock options with LuminOva, Inc.

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          Author and article information

          Journal
          Hum Reprod
          Hum. Reprod
          humrep
          Human Reproduction (Oxford, England)
          Oxford University Press
          0268-1161
          1460-2350
          December 2019
          08 December 2019
          01 December 2020
          : 34
          : 12
          : 2349-2361
          Affiliations
          [1 ] Department of Molecular and Cellular Biology and John A . Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138
          [2 ] Department of Physics, Brandeis University , Waltham, MA, 02453
          [3 ] Boston IVF, 130 Second Avenue , Waltham, MA 02451
          [4 ] Departament de Biologia Cellular , Fisiologia i Immunologia, Universitat Autonoma de Barcelona
          Author notes
          Correspondence address. 52 Oxford St, Cambridge, MA, USA, 02138. E-mail: tsanchez@ 123456fas.harvard.edu

          Denny Sakkas and Daniel J Needleman are the senior authors

          Article
          PMC6936724 PMC6936724 6936724 dez210
          10.1093/humrep/dez210
          6936724
          31812992
          9eba2169-1578-4a58-ac61-f3f0e126d56b
          © The Author(s) 2019. Published by Oxford University Press on behalf of the European Society of Human Reproduction and Embryology. All rights reserved. For permissions, please e-mail: journals.permissions@oup.com

          This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model ( https://academic.oup.com/journals/pages/open_access/funder_policies/chorus/standard_publication_model)

          History
          : 3 January 2019
          : 30 August 2019
          : 6 September 2019
          : 6 September 2019
          Page count
          Pages: 13
          Funding
          Funded by: Harvard University 10.13039/100007229
          Funded by: National Institutes of Health 10.13039/100000002
          Award ID: TR001102
          Funded by: National Science Foundation 10.13039/100000001
          Award ID: DMR-0820484
          Award ID: PFI-TT-1827309
          Award ID: MRSEC DMR-1420382
          Funded by: National Institutes of Health 10.13039/100000002
          Award ID: R01HD092550-01
          Funded by: National Science Foundation Postdoctoral Research Fellowship in Biology
          Award ID: 1308878
          Categories
          Original Article
          Embryology

          oocyte,noninvasive,metabolism,flavin adenine dinucleotide,mitochondria,nicotinamide adenine dinucleotide,fluorescence,embryo assessment,spindle

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