Female-age-dependent changes in the lipid fingerprint of the mammalian oocytes
Language English Country Great Britain, England Media print
Document type Journal Article
Grant support
2021/41/B/NZ3/03507
National Science Centre of Poland
PubMed
39366679
PubMed Central
PMC11630086
DOI
10.1093/humrep/deae225
PII: 7811302
Knihovny.cz E-resources
- Keywords
- Gnpat, carotenoids, coherent anti-Stokes Raman spectroscopy, exosomes, lipid analysis, lipid droplets, oocyte,
- MeSH
- Adult MeSH
- Embryonic Development physiology MeSH
- Humans MeSH
- Lipid Droplets metabolism MeSH
- Lipid Metabolism MeSH
- Mice, Inbred C57BL * MeSH
- Mice MeSH
- Oocytes * metabolism MeSH
- Oxidative Stress MeSH
- Spectrum Analysis, Raman MeSH
- Aging metabolism MeSH
- Microscopy, Electron, Transmission MeSH
- Maternal Age MeSH
- Animals MeSH
- Check Tag
- Adult MeSH
- Humans MeSH
- Mice MeSH
- Female MeSH
- Animals MeSH
- Publication type
- Journal Article MeSH
STUDY QUESTION: Can oocyte functionality be assessed by observing changes in their intracytoplasmic lipid droplets (LDs) profiles? SUMMARY ANSWER: Lipid profile changes can reliably be detected in human oocytes; lipid changes are linked with maternal age and impaired developmental competence in a mouse model. WHAT IS KNOWN ALREADY: In all cellular components, lipid damage is the earliest manifestation of oxidative stress (OS), which leads to a cascade of negative consequences for organelles and DNA. Lipid damage is marked by the accumulation of LDs. We hypothesized that impaired oocyte functionality resulting from aging and associated OS could be assessed by changes in LDs profile, hereafter called lipid fingerprint (LF). STUDY DESIGN, SIZE, DURATION: To investigate if it is possible to detect differences in oocyte LF, we subjected human GV-stage oocytes to spectroscopic examinations. For this, a total of 48 oocytes derived from 26 young healthy women (under 33 years of age) with no history of infertility, enrolled in an oocyte donation program, were analyzed. Furthermore, 30 GV human oocytes from 12 women were analyzed by transmission electron microscopy (TEM). To evaluate the effect of oocytes' lipid profile changes on embryo development, a total of 52 C57BL/6 wild-type mice and 125 Gnpat+/- mice were also used. PARTICIPANTS/MATERIALS, SETTING, METHODS: Human oocytes were assessed by label-free cell imaging via coherent anti-Stokes Raman spectroscopy (CARS). Further confirmation of LF changes was conducted using spontaneous Raman followed by Fourier transform infrared (FTIR) spectroscopies and TEM. Additionally, to evaluate whether LF changes are associated with developmental competence, mouse oocytes and blastocysts were evaluated using TEM and the lipid dyes BODIPY and Nile Red. Mouse embryonic exosomes were evaluated using flow cytometry, FTIR and FT-Raman spectroscopies. MAIN RESULTS AND THE ROLE OF CHANCE: Here we demonstrated progressive changes in the LF of oocytes associated with the woman's age consisting of increased LDs size, area, and number. LF variations in oocytes were detectable also within individual donors. This finding makes LF assessment a promising tool to grade oocytes of the same patient, based on their quality. We next demonstrated age-associated changes in oocytes reflected by lipid peroxidation and composition changes; the accumulation of carotenoids; and alterations of structural properties of lipid bilayers. Finally, using a mouse model, we showed that LF changes in oocytes are negatively associated with the secretion of embryonic exosomes prior to implantation. Deficient exosome secretion disrupts communication between the embryo and the uterus and thus may explain recurrent implantation failures in advanced-age patients. LIMITATIONS, REASONS FOR CAUTION: Due to differences in lipid content between different species' oocytes, the developmental impact of lipid oxidation and consequent LF changes may differ across mammalian oocytes. WIDER IMPLICATIONS OF THE FINDINGS: Our findings open the possibility to develop an innovative tool for oocyte assessment and highlight likely functional connections between oocyte LDs and embryonic exosome secretion. By recognizing the role of oocyte LF in shaping the embryo's ability to implant, our original work points to future directions of research relevant to developmental biology and reproductive medicine. STUDY FUNDING/COMPETING INTEREST(S): This research was funded by National Science Centre of Poland, Grants: 2021/41/B/NZ3/03507 and 2019/35/B/NZ4/03547 (to G.E.P.); 2022/44/C/NZ4/00076 (to M.F.H.) and 2019/35/N/NZ3/03213 (to Ł.G.). M.F.H. is a National Agency for Academic Exchange (NAWA) fellow (GA ULM/2019/1/00097/U/00001). K.F. is a Diamond Grant fellow (Ministry of Education and Science GA 0175/DIA/2019/28). The open-access publication of this article was funded by the Priority Research Area BioS under the program "Excellence Initiative - Research University" at the Jagiellonian University in Krakow. The authors declare no competing interest. TRIAL REGISTRATION NUMBER: N/A.
Department of Biochemistry and Molecular Biology Medical University of Lublin Lublin Poland
Department of Histology and Embryology Faculty of Medicine Masaryk University Brno Czech Republic
Doctoral School of Exact and Natural Sciences Jagiellonian University in Krakow Kraków Poland
Faculty of Chemistry Jagiellonian University in Kraków Kraków Poland
Institute of Nuclear Physics Polish Academy of Sciences Kraków Poland
Jagiellonian Centre for Experimental Therapeutics Jagiellonian University in Krakow Kraków Poland
Malopolska Centre of Biotechnology Jagiellonian University in Kraków Kraków Poland
See more in PubMed
Abbas Y, Turco MY, Burton GJ, Moffett A.. Investigation of human trophoblast invasion in vitro. Hum Reprod Update 2020;26:501–513. PubMed PMC
Adamson GD, Norman RJ.. Why are multiple pregnancy rates and single embryo transfer rates so different globally, and what do we do about it? Fertil Steril 2020;114:680–689. PubMed
Akiyama T, Nagata M, Aoki F.. Inadequate histone deacetylation during oocyte meiosis causes aneuploidy and embryo death in mice. Proc Natl Acad Sci USA 2006;103:7339–7344. PubMed PMC
Antonarakis SE, Skotko BG, Rafii MS, Strydom A, Pape SE, Bianchi DW, Sherman SL, Reeves RH.. Down syndrome. Nat Rev Dis Primers 2020;6:9. PubMed PMC
Arena R, Bisogno S, Gąsior Ł, Rudnicka J, Bernhardt L, Haaf T, Zacchini F, Bochenek M, Fic K, Bik E. et al. Lipid droplets in mammalian eggs are utilized during embryonic diapause. Proc Natl Acad Sci USA 2021;118:2018362118. PubMed PMC
Ashwood-Smith MJ, Edwards RG.. Genetics and human conception: DNA repair by oocytes. Mol Hum Reprod 1996;2:46–51. PubMed
Barbosa AD, Savage DB, Siniossoglou S.. Lipid droplet-organelle interactions: emerging roles in lipid metabolism. Curr Opin Cell Biol 2015;35:91–97. PubMed
Beharier O, Tyurin VA, Goff JP, Guerrero-Santoro J, Kajiwara K, Chu T, Tyurina YY, St Croix CM, Wallace CT, Parry S. et al. PLA2G6 guards placental trophoblasts against ferroptotic injury. Proc Natl Acad Sci USA 2020;117:27319–27328. PubMed PMC
Bisogno S, Arena R, Fic K, Gąsior Ł, Ptak G.. Lipid droplet utilization by the mouse embryo. Bioscientifica Proceedings 2020;10:ISEDISED9. 10.1530/fbiosciprocs.10.009. DOI
Bisogno S, Gąsior Ł, Ptak GE.. Nile red and BODIPY staining of lipid droplets in mouse oocytes and embryos. Methods Mol Biol 2023;2566:205–212. PubMed
Bogliolo L, Ledda S, Innocenzi P, Ariu F, Bebbere D, Rosati I, Leoni GG, Piccinini M.. Raman microspectroscopy as a non-invasive tool to assess the vitrification-induced changes of ovine oocyte zona pellucida. Cryobiology 2012;64:267–272. PubMed
Bogliolo L, Murrone O, Emidio G, Di Piccinini M, Ariu F, Ledda S, Tatone C.. Raman spectroscopy-based approach to detect aging-related oxidative damage in the mouse oocyte. J Assist Reprod Genet 2013;30:877–882. PubMed PMC
Cruz ALS, Barreto E de A, Fazolini NPB, Viola JPB, Bozza PT.. Lipid droplets: platforms with multiple functions in cancer hallmarks. Cell Death Dis 2020;11:105. PubMed PMC
Davidson B, Murray AA, Elfick A, Spears N.. Raman micro-spectroscopy can be used to investigate the developmental stage of the mouse oocyte. PLoS One. 2013;8:e67972. PubMed PMC
Dean JM, Lodhi IJ.. Structural and functional roles of ether lipids. Protein Cell 2018;9:196–206. Protein Cell. PubMed PMC
Desrochers LM, Bordeleau F, Reinhart-King CA, Cerione RA, Antonyak MA.. Microvesicles provide a mechanism for intercellular communication by embryonic stem cells during embryo implantation. Nat Commun 2016;7:11958. PubMed PMC
Gabrielska J, Gruszecki WI.. Zeaxanthin (dihydroxy-beta-carotene) but not beta-carotene rigidifies lipid membranes: a 1H-NMR study of carotenoid-egg phosphatidylcholine liposomes. Biochim Biophys Acta 1996;1285:167–174. PubMed
Gaveglio VL, Pascual AC, Giusto NM, Pasquaré SJ.. Age-related changes in retinoic, docosahexaenoic and arachidonic acid modulation in nuclear lipid metabolism. Arch Biochem Biophys 2016;604:121–127. PubMed
Hwang S, Williams JF, Kneissig M, Lioudyno M, Rivera I, Helguera P, Busciglio J, Storchova Z, King MC, Torres EM.. Suppressing aneuploidy-associated phenotypes improves the fitness of trisomy 21 cells. Cell Rep 2019;29:2473–2488.e5. PubMed PMC
Ishigaki M, Kashiwagi S, Wakabayashi S, Hoshino Y.. In situ assessment of mitochondrial respiratory activity and lipid metabolism of mouse oocytes using resonance Raman spectroscopy. Analyst 2021;146:7265–7273. PubMed
Ishihara K, Amano K, Takaki E, Ebrahim AS, Shimohata A, Shibazaki N, Inoue I, Takaki M, Ueda Y, Sago H. et al. Increased lipid peroxidation in Down’s syndrome mouse models. J Neurochem 2009;110:1965–1976. PubMed
Iturbide A, Ruiz Tejada Segura ML, Noll C, Schorpp K, Rothenaigner I, Ruiz-Morales ER, Lubatti G, Agami A, Hadian K, Scialdone A. et al. Retinoic acid signaling is critical during the totipotency window in early mammalian development. Nat Struct Mol Biol 2021;28:521–532. PubMed PMC
Jimenez LE, Juárez AC, Roldán-Olarte M, Álvarez RMS.. Biochemical changes in the cytoplasm of bovine oocytes during the in vitro maturation process: a Raman microscopy study. Vet Res Commun 2022;46:549–562. PubMed
Kinugasa Y, Hirano Y, Sawai M, Ohno Y, Shindo T, Asakawa H, Chikashige Y, Shibata S, Kihara A, Haraguchi T. et al. The very-long-chain fatty acid elongase Elo2 rescues lethal defects associated with loss of the nuclear barrier function in fission yeast cells. J Cell Sci 2019;132:1–12. PubMed
Klaasen SJ, Truong MA, Jaarsveld RH, van Koprivec I, Štimac V, Vries SGd, Risteski P, Kodba S, Vukušić K, Luca KLd. et al. Nuclear chromosome locations dictate segregation error frequencies. Nature 2022;607:604–609. PubMed PMC
Lambert E, Williams DH, Lynch PB, Hanrahan TJ, McGeady TA, Austin FH, Boland MP, Roche JF.. The extent and timing of prenatal loss in gilts. Theriogenology 1991;36:655–665. PubMed
Lee SA, Belyaeva OV, Kedishvili NY.. Effect of lipid peroxidation products on the activity of human retinol dehydrogenase 12 (RDH12) and retinoid metabolism. Biochim Biophys Acta 2008;1782:421–425. PubMed PMC
Legoff L, Dali O, De La Mata Santaella E, Jaulin C, D'Cruz SC, Smagulova F.. Histone deacetylase inhibition leads to regulatory histone mark alterations and impairs meiosis in oocytes. Epigenetics Chromatin 2021;14:39. PubMed PMC
Liu L, Zhang K, Sandoval H, Yamamoto S, Jaiswal M, Sanz E, Li Z, Hui J, Graham BH, Quintana A. et al. Glial lipid droplets and ROS induced by mitochondrial defects promote neurodegeneration. Cell 2015;160:177–190. PubMed PMC
Maccarrone M, Bisogno T, Valensise H, Lazzarin N, Fezza F, Manna C, Marzo V, Di Finazzi-Agrò A.. Low fatty acid amide hydrolase and high anandamide levels are associated with failure to achieve an ongoing pregnancy after IVF and embryo transfer. Mol Hum Reprod 2002;8:188–195. PubMed
May-Panloup P, Boucret L, la Barca J D, Desquiret-Dumas V, Ferré-L’Hotellier1 V, Morinière C, Descamps P, Procaccio V, Reynier P.. Ovarian ageing: the role of mitochondria in oocytes and follicles. Hum Reprod Update 2016;22:725–743. PubMed
McCoy RC, Demko ZP, Ryan A, Banjevic M, Hill M, Sigurjonsson S, Rabinowitz M, Petrov DA.. evidence of selection against complex mitotic-origin aneuploidy during preimplantation development. PLoS Genet 2015;11:e1005601. PubMed PMC
Mihalas BP, Bromfield EG, Sutherland JM, Iuliis GN, De McLaughlin EA, John Aitken R, Nixon B.. Oxidative damage in naturally aged mouse oocytes is exacerbated by dysregulation of proteasomal activity. J Biol Chem 2018;293:18944–18964. PubMed PMC
Milki AA, Fisch JD, Behr B.. Two-blastocyst transfer has similar pregnancy rates and a decreased multiple gestation rate compared with three-blastocyst transfer. Fertil Steril 1999;72:225–228. PubMed
Minczuk M, Papworth MA, Miller JC, Murphy MP, Klug A.. Development of a single-chain, quasi-dimeric zinc-finger nuclease for the selective degradation of mutated human mitochondrial DNA. Nucleic Acids Res 2008;36:3926–3938. PubMed PMC
Mitchell LE, Scott Adzick N, Melchionne J, Pasquariello PS, Sutton LN, Whitehead AS.. Spina bifida. Lancet 2004;364:1885–1895. PubMed
Muller-Hocker J, Schafer S, Weis S, Munscher C, Strowitzki T.. Morphological-cytochemical and molecular genetic analyses of mitochondria in isolated human oocytes in the reproductive age. Mol Hum Reprod 1996;2:951–958. PubMed
Musson R, Gąsior Ł, Bisogno S, Ptak GE.. DNA damage in preimplantation embryos and gametes: specification, clinical relevance and repair strategies. Hum Reprod Update 2022;28:376–399. PubMed PMC
Nagaraaj P, Vijayakumar V.. Oxidation of amine α-carbon to amide: a review on direct methods to access the amide functionality. Org Chem Front 2019;6:2570–2599.
Nagashima H, Kashiwazaki N, Ashman RJ, Grupen CG, Nottle MB.. Cryopreservation of porcine embryos. Nature 1995;374:416. PubMed
Ohno S. So much “junk” DNA in our genome. Brookhaven Symp Biol 1972;23:366–370. PubMed
Olzmann JA, Carvalho P.. Dynamics and functions of lipid droplets. Nat Rev Mol Cell Biol 2018;20:137–155. PubMed PMC
Orenzo L, Otto DB, Oore YAM, Uin M, Houry JK, Avid JD, Rickson E.. Neural-tube defects. 1999;341:1509–1519. PubMed
Otsuka S, Bui KH, Schorb M, Julius Hossain M, Politi AZ, Koch B, Eltsov M, Beck M, Ellenberg J.. Nuclear pore assembly proceeds by an inside-out extrusion of the nuclear envelope. Elife 2016;5:1–25. PubMed PMC
Pandey AN, Yadav PK, Premkumar KV, Tiwari M, Pandey AK, Chaube SK.. Reactive oxygen species signalling in the deterioration of quality of mammalian oocytes cultured in vitro: protective effect of antioxidants. Cell Signal 2024;117:111103. PubMed
Pathare ADS, Loid M, Saare M, Gidlöf SB, Esteki MZ, Acharya G, Peters M, Salumets A.. Endometrial receptivity in women of advanced age: an underrated factor in infertility. Hum Reprod Update 2023;29:773–793. PubMed PMC
Ptak GE, Toschi P, Fidanza A, Czernik M, Zacchini F, Modlinski JA, Loi P.. Autophagy and apoptosis: parent-of-origin genome-dependent mechanisms of cellular self-destruction. Open Biol 2014;4:140027. PubMed PMC
Record M, Silvente-Poirot S, Poirot M, Wakelam MJO.. Extracellular vesicles: lipids as key components of their biogenesis and functions. J Lipid Res 2018;59:1316–1324. PubMed PMC
Rodemer C, Thai TP, Brugger B, Kaercher T, Werner H, Nave KA, Wieland F, Gorgas K, Just WW.. Inactivation of ether lipid biosynthesis causes male infertility, defects in eye development and optic nerve hypoplasia in mice. Hum Mol Genet 2003;12:1881–1895. PubMed
Schrier SL, Godin D, Gould RG, Swyryd B, Junga I, Seeger M.. Characterization of microvesicles produced by shearing of human erythrocyte membranes. Biochim Biophys Acta 1971;233:26–36. PubMed
Shvedunova M, Akhtar A.. Modulation of cellular processes by histone and non-histone protein acetylation. Nat Rev Mol Cell Biol 2022;23:329–349. PubMed
Smits MAJ, Schomakers BV, van WM, Wever EJM, Wüst RCI, Dijk F, Janssens GE, Goddijn M, Mastenbroek S, Houtkooper RH. et al. Human ovarian aging is characterized by oxidative damage and mitochondrial dysfunction. Hum Reprod 2023;38:2208–2220. PubMed PMC
Tang M, Popovic M, Stamatiadis P, Jeught M, Van Der Coster R, Van Deforce D, Sutter PD, Coucke P, Menten B, Stoop D. et al. Germline nuclear transfer in mice may rescue poor embryo development associated with advanced maternal age and early embryo arrest. Hum Reprod 2020;35:1562–1577. PubMed
Trebichalská Z, Jaůrek J, Tatícková M, Kyjovská D, Kloudová S, Otevrel P, Hampl A, Holubcová Z.. High-resolution 3D reconstruction of human oocytes using focused ion beam scanning electron microscopy. Front Cell Dev Biol 2021;9:755740. PubMed PMC
Udine ML, Evans F, Burns KM, Pearson GD, Kaltman JR.. Geographical variation in infant mortality due to congenital heart disease in the USA: a population-based cohort study. Lancet Child Adolesc Health 2021;5:483–490. PubMed
Wang F, Tang Y, Cai Y, Yang R, Wang Z, Wang X, Yang Q, Wang W, Tian J, An L.. Intrafollicular retinoic acid signaling is important for luteinizing hormone-induced oocyte meiotic resumption. Genes (Basel) 2023;14:946. PubMed PMC
Wang Y, Zhang X, Yao H, Chen X, Shang L, Li P, Cui X, Zeng J.. Peroxisome-generated succinate induces lipid accumulation and oxidative stress in the kidneys of diabetic mice and Molecular Biology Inc. J Biol Chem 2022;298:101660. PubMed PMC
Watanabe T, Thayil A, Jesacher A, Grieve K, Debarre D, Wilson T, Booth M, Srinivas S.. Characterisation of the dynamic behaviour of lipid droplets in the early mouse embryo using adaptive harmonic generation microscopy. BMC Cell Biol 2010;11:38. PubMed PMC
Williams MV, Seon HL, Pollack M, Blair IA.. Endogenous lipid hydroperoxide-mediated DNA-adduct formation in min mice. J Biol Chem 2006;281:10127–10133. PubMed
Witwer KW, Buzás EI, Bemis LT, Bora A, Lässer C, Lötvall J, Nolte-’t Hoen EN, Piper MG, Sivaraman S, Skog J. et al. Standardization of sample collection, isolation and analysis methods in extracellular vesicle research. J Extracell Vesicles 2013;2. PubMed PMC
Yanez LZ, Han J, Behr BB, Pera RAR, Camarillo DB.. Human oocyte developmental potential is predicted by mechanical properties within hours after fertilization. Nat Commun 2016;7:10809–10801–12. PubMed PMC
Zarkovic N, Cipak A, Jaganjac M, Borovic S, Zarkovic K.. Pathophysiological relevance of aldehydic protein modifications. J Proteomics 2013;92:239–247. PubMed