يعرض 1 - 20 نتائج من 535 نتيجة بحث عن '"Созревание"', وقت الاستعلام: 0.59s تنقيح النتائج
  1. 1
  2. 2
  3. 3
    Academic Journal

    المساهمون: This work was financially supported by the Russian Science Foundation (Grantee № 24-24-00533)., Работа выполнена при поддержке Российского научного фонда (грант № 24-24-00533).

    المصدر: Translational Medicine; Том 11, № 5 (2024); 407-418 ; Трансляционная медицина; Том 11, № 5 (2024); 407-418 ; 2410-5155 ; 2311-4495

    وصف الملف: application/pdf

    Relation: https://transmed.almazovcentre.ru/jour/article/view/993/588; Zegers-Hochschild F, Adamson GD, Dyer S, et al. The International Glossary on Infertility and Fertility Care, Fertil Steril. 2017;108:393–406. DOI:10.1016/j.fertnstert.2017.06.005.; Njagi P, Groot W, Arsenijevic J, et al. Financial costs of assisted reproductive technology for patients in low- and middle-income countries: a systematic review. Hum Reprod Open. 2023; 2: hoad007. DOI:10.1093/hropen/hoad007.; Адамян Л.В., Серов В.Н., Корсак В.С., editors. Клинические рекомендации: Вспомогательные репродуктивные технологии и инсеминация. 2019.; Gardner DK, Schoolcraft WB. Culture and transfer of human blastocysts. Curr Opin Obstet Gynecol 1999; 11:3:307–11. DOI:10.1097/00001703-199906000-00013.; Lemseffer Y, Terret ME, Campillo C, et al. Methods for Assessing Oocyte Quality: A Review of Literature. Biomedicines. 2022; 10:9:4–11. DOI:10.3390/biomedicines10092184.; Sciorio R, Miranian D, Smith GD. Non-invasive oocyte quality assessment. Biol Reprod. 2022; 106:2:274– 90. DOI:10.1093/biolre/ioac009.; Шурыгина О.В., Бачурин А.В., Бичевая Н.К. и др. Оценка ооцитов и эмбрионов в лаборатории ВРТ. Методические рекомендации РАРЧ. 2021.; Kokkali G, Coticchio G, Bronet F, et al. ESHRE PGT Consortium and SIG Embryology good practice recommendations for polar body and embryo biopsy for PGT. Hum Reprod Open. 2020; 3: hoaa020. DOI:10.1093/hropen/hoaa020.; Bromer JG, Seli E. Assessment of embryo viability in assisted reproductive technology: Shortcomings of current approaches and the emerging role of metabolomics. Curr Opin Obstet Gynecol. 2008; 20:3:234–41. DOI:10.1097/GCO.0b013e3282fe723d.; Brower PT, Schultz RM. Intercellular communication between granulosa cells and mouse oocytes: Existence and possible nutritional role during oocyte growth. Dev Biol. 1982; 90:1:144–53. DOI:10.1016/0012-1606(82)90219-6.; Uyar A, Torrealday S, Seli E. Cumulus and granulosa cell markers of oocyte and embryo quality. Fertil Steril. 2013; 99:4: 979–97. DOI:10.1016/j.fertnstert.2013.01.129.; Tanghe S, Van Soom A, Nauwynck H, et al. Minireview: Functions of the cumulus oophorus during oocyte maturation, ovulation, and fertilization. Mol Reprod Dev. 2002;61:3:414–24. DOI:10.1002/mrd.10102.; Feuerstein P, Cadoret V, Dalbies-Tran R, et al. Gene expression in human cumulus cells: One approach to oocyte competence. Hum Reprod. 2007;22:3069–77. DOI:10.1093/humrep/dem336.; Fritzsche H, Michelmann HW, Siebzehnrübl, et al. Interactions between oocyte and surrounding cumulus cells influence the results of assisted reproduction. J Fur Reproduktionsmedizin Und Endokrinol. 2006; 3:373–8.; Feuerstein P, Puard V, Chevalier C, et al. Genomic assessment of human cumulus cell marker genes as predictors of oocyte developmental competence: Impact of various experimental factors. PLoS One. 2012; 7: e40449. DOI:10.1371/journal.pone.0040449.; Ma Y, Jin J, Tong X, et al. ADAMTS1 and HSPG2 mRNA levels in cumulus cells are related to human oocyte quality and controlled ovarian hyperstimulation outcomes. J Assist Reprod Genet. 2020; 37:3: 657–67. DOI:10.1007/s10815-019-01659-8.; McKenzie LJ, Pangas SA, Carson SA, et al. Human cumulus granulosa cell gene expression: A predictor of fertilization and embryo selection in women undergoing IVF. Hum Reprod. 2004; 19:12:2869–74. DOI:10.1093/humrep/deh535.; Kotova AV, Lobov AA, Dombrovskaya JA, et al. Comparative analysis of dental pulp and periodontal stem cells: Differences in morphology, functionality, osteogenic differentiation and proteome. Biomedicines. 2021; 9:11:1– 26. DOI:10.3390/biomedicines9111606.; Ajith A, Portik-Dobos V, Nguyen-Lefebvre AT, et al. HLA-G dimer targets Granzyme B pathway to prolong human renal allograft survival. FASEB J. 2019; 33:4:5220– 36. DOI:10.1096/fj.201802017R.; Mamo S, Gal AB, Polgar Z, et al. Expression profiles of the pluripotency marker gene POU5F1 and validation of reference genes in rabbit oocytes and preimplantation stage embryos. BMC Mol Biol. 2008; 9:1–13. DOI:10.1186/1471-2199-9-67.; Assidi M, Dufort I, Ali A, et al. Identification of potential markers of oocyte competence expressed in bovine cumulus cells matured with follicle-stimulating hormone and/or phorbol myristate acetate in vitro. Biol Reprod. 2008; 79:2:209–22. DOI:10.1095/biolreprod.108.067686.; Rogers-Broadway KR, Karteris E. Amplification efficiency and thermal stability of qPCR instrumentation: Current landscape and future perspectives. Exp Ther Med. 2015; 10:4:1261–4. DOI:10.3892/etm.2015.2712.; Сафронова Н.А., Калинина Е.А., Донников А.Е. и др. Ассоциация экспрессии генов в кумулюсных клетках c эмбриологическими показателями в программах вспомогательных репродуктивных технологий. Акушерство и гинекология. 2016; 7: 60–66. DOI:10.18565/aig.2016.7.60-66.; Sirait B, Wiweko B, Jusuf AA, et al. Oocyte Competence Biomarkers Associated With Oocyte Maturation: A Review. Front Cell Dev Biol. 2021; 9:710292. DOI:10.3389/fcell.2021.710292.; Haug LM, Wilson RC, Gaustad AH, et al. Cumulus Cell and Oocyte Gene Expression in Prepubertal Gilts and Sows Identifies Cumulus Cells as a Prime Informative Parameter of Oocyte Quality. Biology (Basel). 2023; 12:12:1484. DOI:10.3390/biology12121484.; Choi Y, Wilson K, Hannon PR, et al. Coordinated regulation among progesterone, prostaglandins, and egflike factors in human ovulatory follicles. J Clin Endocrinol Metab. 2017; 102:6: 1971–82. DOI:10.1210/jc.2016-3153.; Wathlet S, Adriaenssens T, Segers I, et al. Cumulus cell gene expression predicts better cleavage-stage embryo or blastocyst development and pregnancy for ICSI patients. Hum Reprod. 2011; 26:5: 1035–51. DOI:10.1093/humrep/der036.; Faizal AM, Elias MH, Jin NM, et al. Unravelling the role of HAS2, GREM1, and PTGS2 gene expression in cumulus cells: implications for human oocyte development competency — a systematic review and integrated bioinformatic analysis. Front Endocrinol (Lausanne). 2024; 15: 1274376. DOI:10.3389/fendo.2024.1274376.; Sugimura S, Ritter LJ, Sutton-McDowall ML, et al. Amphiregulin co-operates with bone morphogenetic protein 15 to increase bovine oocyte developmental competence: Effects on gap junction-mediated metabolite supply. Mol Hum Reprod. 2014; 20:6: 499–513. DOI:10.1093/molehr/gau013.; https://transmed.almazovcentre.ru/jour/article/view/993

  4. 4
    Academic Journal

    المصدر: Siberian journal of oncology; Том 23, № 4 (2024); 96-107 ; Сибирский онкологический журнал; Том 23, № 4 (2024); 96-107 ; 2312-3168 ; 1814-4861

    وصف الملف: application/pdf

    Relation: https://www.siboncoj.ru/jour/article/view/3196/1255; Nierengarten M.B. Annual report to the nation on the status of cancer. Cancer. 2023; 129(1): 8. doi:10.1002/cncr.34586.; Burgers V.W.G., van der Graaf W.T.A., van der Meer D.J., Mc Cabe M.G., Rijneveld A.W., van den Bent M.J., Husson O. Adolescents and Young Adults Living With an Uncertain or Poor Cancer Prognosis: The “New” Lost Tribe. J Natl Compr Canc Netw. 2021; 19(3): 240–6. doi:10.6004/jnccn.2020.7696.; Close A.G., Dreyzin A., Miller K.D., Seynnaeve B.K.N., Rapkin L.B. Adolescent and young adult oncology-past, present, and future. CA Cancer J Clin. 2019; 69(6): 485–96. doi:10.3322/caac.21585.; Smith A.W., Seibel N.L., Lewis D.R., Albritton K.H., Blair D.F., Blanke C.D., Bleyer W.A., Freyer D.R., Geiger A.M., Hayes-Lattin B., Tricoli J.V., Wagner L.I., Zebrack B.J. Next steps for adolescent and young adult oncology workshop: An update on progress and recommendations for the future. Cancer. 2016; 122(7): 988–99. doi:10.1002/cncr.29870.; Beckjord E.B., Reynolds K.A., van Londen G.J., Burns R., Singh R., Arvey S.R., Nutt S.A., Rechis R. Population-level trends in posttreatment cancer survivors’ concerns and associated receipt of care: results from the 2006 and 2010 LIVESTRONG surveys. J Psychosoc Oncol. 2014; 32(2): 125–51. doi:10.1080/07347332.2013.874004.; van der Meer D.J., Karim-Kos H.E., van der Mark M., Aben K.K.H., Bijlsma R.M., Rijneveld A.W., van der Graaf W.T.A., Husson O. Incidence, Survival, and Mortality Trends of Cancers Diagnosed in Adolescents and Young Adults (15–39 Years): A Population-Based Study in The Netherlands 1990–2016. Cancers (Basel). 2020; 12(11). doi:10.3390/cancers12113421.; Janssen S.H.M., van der Graaf W.T.A., van der Meer D.J., MantenHorst E., Husson O. Adolescent and Young Adult (AYA) Cancer Survivorship Practices: An Overview. Cancers (Basel). 2021; 13(19). doi:10.3390/cancers13194847.; You L., Lv Z., Li C., Ye W., Zhou Y., Jin J., Han Q. Worldwide cancer statistics of adolescents and young adults in 2019: a systematic analysis of the Global Burden of Disease Study 2019. ESMO Open. 2021; 6(5). doi:10.1016/j.esmoop.2021.100255.; Geue K., Richter D., Schmidt R., Sender A., Siedentopf F., Brähler E., Stöbel-Richter Y. The desire for children and fertility issues among young German cancer survivors. J Adolesc Health. 2014; 54(5): 527–35. doi:10.1016/j.jadohealth.2013.10.005.; Jayasinghe Y.L., Wallace W.H.B., Anderson R.A. Ovarian function, fertility and reproductive lifespan in cancer patients. Expert Rev Endocrinol Metab. 2018; 13(3): 125–36. doi:10.1080/17446651.2018.1455498.; Xie J., Sun Q., Duan Y., Cheng Q., Luo X., Zhou Y., Liu X., Xiao P., Cheng A.S.K. Reproductive concerns among adolescent and young adult cancer survivors: A scoping review of current research situations. Cancer Med. 2022; 11(18): 3508–17. doi:10.1002/cam4.4708.; Gorman J.R., Su H.I., Roberts S.C., Dominick S.A., Malcarne V.L. Experiencing reproductive concerns as a female cancer survivor is associated with depression. Cancer. 2015; 121(6): 935–42. doi:10.1002/cncr.29133.; Dong Y., Yue Z., Zhuang H., Zhang C., Fang Y., Jiang G. The experiences of reproductive concerns in cancer survivors: A systematic review and meta-synthesis of qualitative studies. Cancer Med. 2023; 12(24): 22224–51. doi:10.1002/cam4.6531.; Carr A.L., Roberts, S., Bonnell L.N., Kolva E. Existential distress and meaning making among female breast cancer patients with cancerrelated fertility concerns. Palliative and Supportive Care. 2023; 21(2): 196–204. doi:10.1017/S1478951522001675.; Benedict C., Thom B., Friedman D.N., Diotallevi D., Pottenger E.M., Raghunathan N.J., Kelvin J.F. Young adult female cancer survivors’ unmet information needs and reproductive concerns contribute to decisional conflict regarding posttreatment fertility preservation. Cancer. 2016; 122(13): 2101–9. doi:10.1002/cncr.29917.; Bártolo A., Neves M., Carvalho B., Reis S., Valério E., Santos I.M., Monteiro S. Fertility under uncertainty: exploring differences in fertilityrelated concerns and psychosocial aspects between breast cancer survivors and non-cancer infertile women. Breast Cancer. 2020; 27(6): 1177–86. doi:10.1007/s12282-020-01124-w.; Kim S., Kim S.W., Han S.J., Lee S., Park H.T., Song J.Y., Kim T. Molecular Mechanism and Prevention Strategy of Chemotherapy- and Radiotherapy-Induced Ovarian Damage. Int J Mol Sci. 2021; 22(14). doi:10.3390/ijms22147484.; Canlorbe G., Chabbert-Buffet N., Uzan C. Fertility-Sparing Surgery for Ovarian Cancer. J Clin Med. 2021; 10(18). doi:10.3390/jcm10184235.; National Comprehensive Cancer Network. NCCN Clinical Practice Guidelines in Oncology (NCCN Guidelines) Ovarian Cancer Including Fallopian Tube Cancer and Primary Peritoneal Cancer Version 2.2019 NCCN Guidelines for Patients. National Comprehensive Cancer Network; Washington, DC, USA: 2019.; Ray-Coquard I., Morice P., Lorusso D., Prat J., Oaknin A., Pautier P., Colombo N.; ESMO Guidelines Committee. Non-epithelial ovarian cancer: ESMO Clinical Practice Guidelines for diagnosis, treatment and follow-up. Ann Oncol. 2018; 29(s4): 1–18. doi:10.1093/annonc/mdy001.; Bourdel N., Huchon C., Abdel Wahab C., Azaïs H., Bendifallah S., Bolze P.A., Brun J.L., Canlorbe G., Chauvet P., Chereau E., Courbiere B., De La Motte Rouge T., Devouassoux-Shisheboran M., Eymerit-Morin C., Fauvet R., Gauroy E., Gauthier T., Grynberg M., Koskas M., Larouzee E., Lecointre L., Levêque J., Margueritte F., D’argent Mathieu E., NyangohTimoh K., Ouldamer L., Raad J., Raimond E., Ramanah R., Rolland L., Rousset P., Rousset-Jablonski C., Thomassin-Naggara I., Uzan C., Zilliox M., Daraï E. Borderline ovarian tumors: French guidelines from the CNGOF. Part 2. Surgical management, follow-up, hormone replacement therapy, fertility management and preservation. J Gynecol Obstet Hum Reprod. 2021; 50(1). doi:10.1016/j.jogoh.2020.101966.; Lambertini M., Peccatori F.A., Demeestere I., Amant F., Wyns C., Stukenborg J.B., Paluch-Shimon S., Halaska M.J., Uzan C., Meissner J., von Wolff M., Anderson R.A., Jordan K.; ESMO Guidelines Committee. Fertility preservation and post-treatment pregnancies in post-pubertal cancer patients: ESMO Clinical Practice Guidelines†. Ann Oncol. 2020; 31(12): 1664–78. doi:10.1016/j.annonc.2020.09.006.; Practice Committee of the American Society for Reproductive Medicine. Electronic address: asrm@asrm.org. Fertility preservation in patients undergoing gonadotoxic therapy or gonadectomy: a committee opinion. Fertil Steril. 2019; 112(6): 1022–33. doi:10.1016/j.fertnstert.2019.09.013.; Martinez F.; International Society for Fertility Preservation–ESHRE–ASRM Expert Working Group. Update on fertility preservation from the Barcelona International Society for Fertility Preservation-ESHRE-ASRM 2015 expert meeting: indications, results and future perspectives. Fertil Steril. 2017; 108(3): 407–15. doi:10.1016/j.fertnstert.2017.05.024.; Зиновьева О.В., Лавринович О.Е., Карицкий А.П., Котив Х.Б. Правовые аспекты сохранения фертильности онкологических больных. СПб., 2022. 56 с.; Di Tucci C., Galati G., Mattei G., Chinè A., Fracassi A., Muzii L. Fertility after Cancer: Risks and Successes. Cancers (Basel). 2022; 14(10): 2500. doi:10.3390/cancers14102500.; ESHRE Guideline Group on Female Fertility Preservation; Anderson R.A., Amant F., Braat D., D’Angelo A., Chuva de Sousa Lopes S.M., Demeestere I., Dwek S., Frith L., Lambertini M., Maslin C., Moura-Ramos M., Nogueira D., Rodriguez-Wallberg K., Vermeulen N. ESHRE guideline: female fertility preservation. Hum Reprod Open. 2020. doi:10.1093/hropen/hoaa052.; Walls M.L., Douglas K., Ryan J.P., Tan J., Hart R. In-vitro maturation and cryopreservation of oocytes at the time of oophorectomy. Gynecol Oncol Rep. 2015; 13: 79–81. doi:10.1016/j.gore.2015.07.007.; Segers I., Bardhi E., Mateizel I., Van Moer E., Schots R., Verheyen G., Tournaye H., De Vos M. Live births following fertility preservation using in-vitro maturation of ovarian tissue oocytes. Hum Reprod. 2020; 35(9): 2026–36. doi:10.1093/humrep/deaa175.; Kedem A., Yerushalmi G.M., Brengauz M., Raanani H., Orvieto R., Hourvitz A., Meirow D. Outcome of immature oocytes collection of 119 cancer patients during ovarian tissue harvesting for fertility preservation. J Assist Reprod Genet. 2018; 35(5): 851–6. doi:10.1007/s10815-018-1153-1.; Park C.W., Lee S.H., Yang K.M., Lee I.H., Lim K.T., Lee K.H., Kim T.J. Cryopreservation of in vitro matured oocytes after ex vivo oocyte retrieval from gynecologic cancer patients undergoing radical surgery. Clin Exp Reprod Med. 2016; 43(2): 119–25. doi:10.5653/cerm.2016.43.2.119.; De Roo C., Tilleman K. In Vitro Maturation of Oocytes Retrieved from Ovarian Tissue: Outcomes from Current Approaches and Future Perspectives. J Clin Med. 2021; 10(20). doi:10.3390/jcm10204680.; von Wolff M., Sänger N., Liebenthron J. Is Ovarian Tissue Cryopreservation and Transplantation Still Experimental? It Is a Matter of Female Age and Type of Cancer. J Clin Oncol. 2018; 36(33). doi:10.1200/JCO.18.00425.; Буняева Е.С., Кириллова А.О., Назаренко Т.А., Джанашвили Л.Г., Гаджимагомедова К.К., Хабас Г.Н., Бирюкова А.М., Гависова А.А. Показания и эффективность технологии получения незрелых ооцит-кумулюсных комплексов из ткани яичника с последующим их дозреванием in vitro. Акушерство и гинекология. 2022; (6): 75–82. doi:10.18565/aig.2022.6.75-82.; Zenzes M.T., Bielecki R., Casper R.F., Leibo S.P. Effects of chilling to 0 degrees C on the morphology of meiotic spindles in human metaphase II oocytes. Fertil Steril. 2001; 75(4): 769–77. doi:10.1016/s0015-0282- (00)01800-8.; Wang W.H., Meng L., Hackett R.J., Odenbourg R., Keefe D.L. Limited recovery of meiotic spindles in living human oocytes after coolingrewarming observed using polarized light microscopy. Hum Reprod. 2001; 16(11): 2374–8. doi:10.1093/humrep/16.11.2374.; Prasath E.B., Chan M.L., Wong W.H., Lim C.J., Tharmalingam M.D., Hendricks M., Loh S.F., Chia Y.N. First pregnancy and live birth resulting from cryopreserved embryos obtained from in vitro matured oocytes after oophorectomy in an ovarian cancer patient. Hum Reprod. 2014; 29(2): 276–8. doi:10.1093/humrep/det420.; Bourg M., Moreau J., Carles M., Cadoret F., Lesourd F., Tournier A., Léandri R.D., Gatimel N. Is in vitro maturation of oocytes retrieved ex vivo from ovarian tissue an effective fertility preservation technique in the presence of organic ovarian cysts? Eur J Obstet Gynecol Reprod Biol. 2023; 281: 87–91. doi:10.1016/j.ejogrb.2022.12.025.; Massarotti C., Kohlhepp F., Liperis G., Ammar O.F., Mincheva M.N., Ali Z.E., Amorim C.A., Anderson R., Fraire-Zamora J.J. #ESHREjc report: Is OTO-IVM the future fertility preservation alternative for urgent cancer patients? Hum Reprod. 2021; 36(9): 2631–3. doi:10.1093/humrep/deab180.; https://www.siboncoj.ru/jour/article/view/3196

  5. 5
  6. 6
  7. 7
    Academic Journal

    المساهمون: Not specified, Отсутствует

    المصدر: Pediatric pharmacology; Том 21, № 1 (2024); 41-49 ; Педиатрическая фармакология; Том 21, № 1 (2024); 41-49 ; 2500-3089 ; 1727-5776

    وصف الملف: application/pdf

    Relation: https://www.pedpharma.ru/jour/article/view/2415/1567; Адамян Л.В., Сибирская Е.В., Колтунов И.Е. и др. Опухоли и опухолевидные образования придатков матки в практике детского гинеколога // Детская хирургия им. Ю.Ф. Исакова. — 2016. — Т. 20. — № 6. — С. 320–323. — https://doi.org/10.18821/1560-9510-2016-20-6-320-323; Коколина В.Ф. Гинекология детского возраста. — М.: ИД Медпрактика-М; 2003. — 268 с.; Hanafy AK, Mujtaba B, Yedururi S, et al. Imaging in pediat ric ovarian tumors. Abdom Radiol (NY). 2020;45(2):520–536. https://doi.org/10.1007/s00261-019-02316-5; Рищук С.В., Мирский В.Е., Кахиани Е.И. и др. Основы детской и подростковой гинекологии и андрологии: учебное пособие для врачей. — СПб.: Изд-во СЗГМУ им. И.И. Мечникова; 2017. — 224 с.; Javadi S, Ganeshan DM, Jensen CT, et al. Comprehensive review of imaging features of sex cord-stromal tumors of the ovary. Abdom Radiol (NY). 2021;46(4):1519–1529. https://doi.org/10.1007/s00261-021-02998-w; Кюрдзиди С.О., Уварова Е.В., Хащенко Е.П., Кумыкова З.Х. Современные принципы диагностики и лечения доброкачественных новообразований яичников у несовершеннолетних // Вопросы гинекологии, акушерства и перинатологии. — 2021. — Т. 20. — № 3. — С. 100–116. — https://doi.org/10.20953/1726-1678-2021-3-100-116; Урманчеева А.Ф., Кутушева Г.Ф., Ульрих Е.А. Опухоли яичника (клиника, диагностика и лечение). — СПб.: Изд-во Н-Л; 2012. — С. 5–19.; Баисова Б.И., Бижанова Д.А., Богинская Л.Н. и др. Гинекология: учебник / под ред. Г.М. Савельевой, В.Г Бреусенко. — 4-е изд., перераб. и доп. — М.: ГЭОТАР-Медиа; 2012. — 432 с.; Сибирская Е.В., Шарков С.М., Шостенко А.В., Медведева А.О. Злокачественные новообразования яичников у детей и подростков. Обзор литературы // Детская хирургия. — 2018. — Т. 22. — № 5. — С. 258–262. — doi: http//doi.org/10.18821/1560-95102018-22-5-258-262; Schultz KA, Schneider DT, Pashankar F, et al. Management of ovarian and testicular sex cord-stromal tumors in children and adolescents. J Pediatr Hematol Oncol. 2012;34(Suppl 2):S55–S63. doi: http//doi.org/10.1097/MPH.0b013e31824e3867; Thebaud E, Orbach D, Faure-Conter C, et al. Specificities of sex-cord stromal tumors in children and adolescents. Bull Cancer. 2015;102(6):550–558. doi: http//doi.org/10.1016/j.bulcan.2015.04.012; van Heerden J, Tjalma WA. The multidisciplinary approach to ovarian tumours in children and adolescents. Eur J Obstet Gynecol Reprod Biol. 2019;243:103–110. doi: http//doi.org/10.1016/j.ejogrb.2019.10.032; Адамян Л.В., Колтунов И.Е., Сибирская Е.В. и др. Особенности дифференциальной диагностики опухолей яичников у девочек // Детская хирургия. — 2018. — Т. 22. — № 4. — С. 205– 208. — doi: http//doi.org/10.18821/1560-9510-2018-22-4-205-208; Сибирская Е.В., Адамян Л.В., Яцык С.П., Гераськина С.Г. Боли в животе у девочек, связанные с гинекологической патологией: ошибки диагностики и лечения // Педиатрическая фармакология. — 2014. — Т. 11. — № 4. — С. 23–28. — https://doi.org/10.15690/pf.v11i4.1059; Адамян Л.В., Сухих Г.Т. Новые технологии в диагностике и лечении гинекологических заболеваний. — М.: МЕДИ Экспо; 2010. — С. 107–108.; Адамян Л.В., Богданова Е.А., Глыбина Т.М., Сибирская Е.В. Гинекологическая патология детей и подростков как причина абдоминального синдрома //Проблемы репродукции. — 2011. — Т. 17. — № 1. — С. 28–34.; Гинекология: национальное руководство / под ред. Г.М. Савельевой, Г.Т. Сухих, В.Н. Серова и др. — 2-е изд., перераб. и доп. — М.: ГЭОТАР-Медиа; 2022. — 1008 с.; Conlon N, Schultheis AM, Piscuoglio S, et al. A survey of DICER1 hotspot mutations in ovarian and testicular sex cord-stromal tumors. Mod Pathol. 2015;28(12):1603–1612. https://doi.org/10.1038/modpathol.2015.115; Beggs AD, Latchford AR, Vasen HF, et al. Peutz-Jeghers syndrome: A systematic review and recommendations for management. Gut. 2010;59(7):975–986. https://doi.org/10.1136/gut.2009.198499; El Abiad JM, Robbins SM, Cohen B, et al. Natural history of Ollier disease and Maffucci syndrome: Patient survey and review of clinical literature. Am J Med Genet Part A. 2020;182(5):1093–1103. https://doi.org/10.1002/ajmg.a.61530; Адамян Л.В., Сибирская Е.В., Короткова С.А. и др. Гормонпродуцирующая гранулезоклеточная опухоль ювенильного типа в детском возрасте (клинический случай) // Проблемы репродукции. — 2021. — Т. 27. — № 5. — С. 48–53. — https://doi.org/10.17116/repro20212705148; Умарова М.Н., Умарзода С.Г., Ахмедова З.Б. Злокачественные опухоли яичников детского и подросткового возрастов: особенности диагностики, клинического течения и лечения // Вестник Академии медицинских наук Таджикистана. — 2020. — Т. 10. — № 4. — С. 402–411. — https://doi.org/10.31712/2221-73552020-10-4-402-411; Kota S, Pani J, Kota S, et al. Ovarian granulosa cell tumor: An uncommon presentation with primary amenorrhea and virilization in a pubertal girl. Indian J Endocrinol Metab. 2012;16(5):836–839. https://doi.org/10.4103/2230-8210.100658; Bús D, Buzogány M, Nagy G, Vajda G. Rare virilizing granulosa cell tumor in an adolescent. Mol Clin Oncol. 2017;6(1):88–90. https://doi.org/10.3892/mco.2016.1084; Gui T, Cao D, Shen K, et al. A clinicopathological analysis of 40 cases of ovarian Sertoli-Leydig cell tumors. Gynecol Oncol. 2012;127(2):384–389. https://doi.org/10.1016/j.ygyno.2012.07.114; Durmuş Y, Kılıç Ç, Çakır C, et al. Sertoli-Leydig cell tumor of the ovary: Analysis of a single institution database and review of the literature. J Obstet Gynaecol Res. 2019;45(7):1311–1318. https://doi.org/10.1111/jog.13977; Hossain F, Karim MN, Rahman SM, et al. Preoperative detection of ovarian cancer by color Doppler ultrasonography and CA 125. Bangladesh Med Res Counc Bull. 2010;36(2):68–73. https://doi.org/10.3329/bmrcb.v36i2.6991; Адамян Л.В., Дьяконова Е.Ю., Сибирская Е.В. и др. Хирургическая тактика при перекруте придатков матки у детей // Репродуктивное здоровье детей и подростков. — 2014. — № 4. — С. 35–41.; Andreotti RF, Timmerman D, Strachowski LM, et al. O-RADS US Risk Stratification and Management System: A Consensus Guideline from the ACR Ovarian-Adnexal Reporting and Data System Committee. Radiology. 2020;294(1):168–185. https://doi.org/10.1148/radiol.2019191150; Неэпителиальные опухоли яичников: клинические рекомендации. — 2022.; Диагностика и лечение доброкачественных новообразований яичников с позиции профилактики рака: клинические рекомендации. — 2018.; Рак яичников, рак маточной трубы, первичный рак брюшины: клинические рекомендации. — 2022.; Liu J, Xu Y, Wang J. Ultrasonography, computed tomography and magnetic resonance imaging for diagnosis of ovarian carcinoma. Eur J Radiol. 2007;62(3):328–334. https://doi.org/10.1016/j.ejrad.2007.02.040; Van Nimwegen LWE, Mavinkurve-Groothuis AMC, de Krijger RR, et al. MR imaging in discriminating between benign and malignant paediatric ovarian masses: a systematic review. Eur Radiol. 2020;30(2):1166–1181. https://doi.org/10.1007/s00330019-06420-4; Levin G, Zigron R, Haj-Yahya R, et al. Granulosa cell tumor of ovary: A systematic review of recent evidence. Eur J Obstet Gynecol Reprod Biol. 2018;225:57–61. https://doi.org/10.1016/j.ejogrb.2018.04.002; Akakpo PK, Derkyi-Kwarteng L, Quayson SE, et al. Ovarian Tumors in Children and Adolescents: A 10-Yr Histopathologic Review in KorleBu Teaching Hospital, Ghana. Int J Gynecol Pathol. 2016;35(4):333– 336. https://doi.org/10.1097/PGP.0000000000000257; Oue T, Uehara S, Sasaki T, et al. Treatment and ovarian preservation in children with ovarian tumors. J Pediatr Surg. 2015;50(12):2116– 2118. https://doi.org/10.1016/j.jpedsurg.2015.08.036; Pectasides D, Pectasides E, Kassanos D. Germ cell tumors of the ovary. Cancer Treat Rev. 2008;34(5):427–441. https://doi.org/10.1016/j.ctrv.2008.02.002; Ali A, Sayed H, Salem M, et al. Clinicopathological pattern and outcome of pediatric malignant ovarian germ cell tumors: South Egypt Cancer Institute experience. J Pediatr Surg. 2018;53(4):837–840. doi: https://doi.org/10.1016/j.jpedsurg.2017.08.022; Zhang R, Sun YC, Zhang GY, et al. Treatment of malignant ovarian germ cell tumors and preservation of fertility. J Eur J Gynaecol Oncol. 2012;33(5):489–492.; Kavanagh JJ, Pecorelli S, Benedet J, et al. Cancer of the ovary. In: Staging classifications and clinical practice guidelines for gynaecological cancers. Benedet J, Pecorelli S, Ngan HY, Hacker NF, eds. Elsevier; 2006. pp. 95–121.; Chaopotong P, Therasakvichya S, Leelapatanadit C, et al. Ovarian Cancer in Children and Adolescents: Treatment and Reproductive Outcomes. Asian Pac J Cancer Prev. 2015;16(11):4787–4790. https://doi.org/10.7314/apjcp.2015.16.11.4787; Burns K, Hoefgen H, Strine A, Dasqupta R. Fertility preservation options in pediatric and adolescent patients with cancer. Cancer. 2018;124(9):1867–1876. https://doi.org/10.1002/cncr.31255; Resetkova N, Hayashi M, Kolp LA, Christianson MS. Fertility preservation for prepubertal girls: Update and current challenges. Curr Obstet Gynecol Rep. 2013;2(4):218–225. https://doi.org/10.1007/s13669-013-0060-9; https://www.pedpharma.ru/jour/article/view/2415

  8. 8
    Academic Journal
  9. 9
  10. 10
    Academic Journal
  11. 11
    Academic Journal
  12. 12
    Academic Journal

    المساهمون: The research has been funded from the grant of the Russian Science Foundation, No. 22-26-00273 (https://rscf.ru/project/22-26-00273).

    المصدر: Vavilov Journal of Genetics and Breeding; Том 27, № 8 (2023); 980-987 ; Вавиловский журнал генетики и селекции; Том 27, № 8 (2023); 980-987 ; 2500-3259

    وصف الملف: application/pdf

    Relation: https://vavilov.elpub.ru/jour/article/view/4009/1785; Allen D.K., Ohlrogge J.B., Shachar-Hill Y. The role of light in soybean seed filling metabolism. Plant J. 2009;58(2):220-234. DOI 10.1111/j.1365-313X.2008.03771.x; Allorent G., Osorio S., Ly Vu J., Falconet D., Jouhet J., Kuntz M., Fernie A.R., Lerbs-Mache S., Macherel D., Courtois F., Finazzi G. Adjustments of embryonic photosynthetic activity modulate seed fitness in Arabidopsis thaliana. New Phytol. 2015;205(2):707-719. DOI 10.1111/nph.13044; Aschan G., Pfanz H. Non-foliar photosynthesis – A strategy of additional carbon acquisition. Flora. 2003;198(2):81-97. DOI 10.1078/0367-2530-00080; Atwell B.J., Kriedemann P.E., Turnbull C.G.N. (Eds.). Light use and leaf gas exchange. In: Plants in Action: Adaptation in Nature, Performance in Cultivation. Melbourne: Macmillan Education Australia, 1999;23-44; Besedin A.G. Prima is a new cultivar of vegetable pea. Ovoshchi Rossii = Vegetable Crops of Russia. 2015;3(28):96-97 (in Russian); Borisjuk L., Rolletschek H. The oxygen status of the developing seed. New Phytol. 2009;182(1):17-30. DOI 10.1111/j.1469-8137.2008.02752.x; Borisjuk L., Rolletschek H., Walenta S., Panitz R., Wobus U., Weber H. Energy status and its control on embryogenesis of legumes: ATP distribution within Vicia faba embryos is developmentally regulated and correlated with photosynthetic capacity. Plant J. 2003;36(3): 318-329. DOI 10.1046/j.1365-313X.2003.01879.x; Borisjuk L., Nguyen T.H., Neuberger T., Rutten T., Tschiersch H., Claus B., Feussner I., Webb A.G., Jakob P., Weber H., Wobus U., Rolletschek H. Gradients of lipid storage, photosynthesis and plastid differentiation in developing soybean seeds. New Phytol. 2005; 167(3):761-776. DOI 10.1111/j.1469-8137.2005.01474.x; Brazel A.J., Ó’Maoiléidigh D.S. Photosynthetic activity of reproductive organs. J. Exp. Bot. 2019;70(6):1737-1754. DOI 10.1093/jxb/erz033; Brodersen C.R., Vogelmann T.C. Do changes in light direction affect absorption profiles in leaves? Funct. Plant Biol. 2010;37(5):403. DOI 10.1071/FP09262; Bulda O.V., Rassadina V.V., Alekseichuk H.N., Laman N.A. Spectrophotometric measurement of carotenes, xanthophylls, and chlorophylls in extracts from plant seeds. Russ. J. Plant Physiol. 2008; 55(4):544-551. DOI 10.1134/S1021443708040171; Cho Y.B., Stutz S.S., Jones S.I., Wang Y., Pelech E.A., Ort D.R. Impact of pod and seed photosynthesis on seed filling and canopy carbon gain in soybean. Plant Physiol. 2023;193(2):966-979. DOI 10.1093/plphys/kiad324; Flahault M.C. Sur la présence de la matiére verte dans les organes actuellement soustraits a lʼinfluence de la lumiére. Bull. Soc. Bot. Fr. 1879;26:249-259; Golovatskaya I.F., Karnachuk R.A. Role of green light in physiol ogical activity of plants. Russ. J. Plant Physiol. 2015;62(6):727-740. DOI 10.1134/S1021443715060084; Grulichova M., Sedlakova V., Trojan V., Hanacek P., Vyhnanek T. Correlation of photosynthetic pigments content with indicators of seed quality in the seeds of carrot, celery, dill, parsley, and parsnip. J. Seed Sci. 2022;44(3):e202244031. DOI 10.1590/2317-1545v44260767; Henry R.J., Furtado A., Rangan P. Pathways of photosynthesis in nonleaf tissues. Biology (Basel). 2020;9(12):438. DOI 10.3390/biology 9120438; Hofmeister W. Neue Beiträge zur Kenntniss der Embryobildung der Phanerogamen. I. Dikotyledonen mit ursprünglich einzelligem, nur durch Zellteilung waschsen-dem Endosperm. Abhandl. Königl. Sächs. Ges. Wiss. 1859;6:535-672; Hu L., Zhang Y., Xia H., Fan S., Song J., Lv X., Kong L. Photosynthetic characteristics of non-foliar organs in main C3 cereals. Physiol. Plant. 2019;166(1):226-239. DOI 10.1111/ppl.12838; Hu Y., Zhang Y., Yu W., Hänninen H., Song L., Du X., Zhang R., Wu J. Novel insights into the influence of seed sarcotesta photosynthesis on accumulation of seed dry matter and oil content in Torreya grandis cv. “Merrillii”. Front. Plant Sci. 2018;8:2179. DOI 10.3389/fpls.2017.02179; Ingram G., North H., Lepiniec L. Seeds as perfect factories for developing sustainable agriculture. Plant Reprod. 2018;31(3):201-202. DOI 10.1007/s00497-018-0340-7; Kume A. Importance of the green color, absorption gradient, and spectral absorption of chloroplasts for the radiative energy balance of leaves. J. Plant Res. 2017;130(3):501-514. DOI 10.1007/s10265-017-0910-z; Liu J., van Iersel M.W. Photosynthetic physiology of blue, green, and red light: light intensity effects and underlying mechanisms. Front. Plant Sci. 2021;12:619987. DOI 10.3389/fpls.2021.619987; Lv X., Gao S., Li N., Lv Y., Chen Z., Cao B., Xu K. Comprehensive insights into the influence of supplemental green light on the photosynthesis of ginger (Zingiber officinale Roscoe). Protoplasma. 2022;259(6):1477-1491. DOI 10.1007/s00709-022-01748-z; Mattana E., Ulian T., Pritchard H.W. Seeds as natural capital. Trends Plant Sci. 2022;27(2):139-146. DOI 10.1016/j.tplants.2021.08.008; MINI-PAM-II: Manual for Standalone Use, 3rd ed. Effeltrich (Germany): Heinrich Walz GmbH, 2018; Monteverde N.A., Lyubimenko V.N. On the green pigment of the inner coat of Cucurbitaceae seeds and its relation to chlorophyll. Izvestiya Sankt-Peterburgskogo Botanicheskogo Sada = Proceeding of the St. Petersburg Botanical Garden. 1909;9:2-3 (in Russian) Neuhaus H.E., Emes M.J. Nonphotosynthetic metabolism in plastids. Annu. Rev. Plant Physiol. Plant Mol. Biol. 2000;51:111-140. DOI 10.1146/annurev.arplant.51.1.111; Nishio J.N. Why are higher plants green? Evolution of the higher plant photosynthetic pigment complement. Plant Cell Environ. 2000; 23(6):539-548. DOI 10.1046/j.1365-3040.2000.00563.x; Puthur J.T., Shackira A.M., Saradhi P.P., Bartels D. Chloroembryos: A unique photosynthesis system. J. Plant Physiol. 2013;170(13): 1131-1138. DOI 10.1016/j.jplph.2013.04.011; Ruuska S.A., Schwender J., Ohlrogge J.B. The capacity of green oilseeds to utilize photosynthesis to drive biosynthetic processes. Plant Physiol. 2004;136:2700-2709. DOI 10.1104/pp.104.047977.green; Sela A., Piskurewicz U., Megies C., Mène-Saffrané L., Finazzi G., Lopez-Molina L. Embryonic photosynthesis affects post-germination plant growth. Plant Physiol. 2020;182(4):2166-2181. DOI 10.1104/PP.20.00043; Shackira A.M., Sarath N.G., Aswathi K.P.R., Pardha-Saradhi P., Puthur J.T. Green seed photosynthesis: What is it? What do we know about it? Where to go? Plant Physiol. Rep. 2022;27(4):573-579. DOI 10.1007/s40502-022-00695-4; Simkin A.J., López-Calcagno P.E., Raines C.A. Feeding the world: improving photosynthetic efficiency for sustainable crop production. J. Exp. Bot. 2019;70(4):1119-1140. DOI 10.1093/jxb/ery445; Simkin A.J., Faralli M., Ramamoorthy S., Lawson T. Photosynthesis in non-foliar tissues: implications for yield. Plant J. 2020;101(4): 1001-1015. DOI 10.1111/tpj.14633; Smith H.L., McAusland L., Murchie E.H. Don’t ignore the green light: exploring diverse roles in plant processes. J. Exp. Bot. 2017;68(9): 2099-2110. DOI 10.1093/jxb/erx098; Smolikova G.N., Medvedev S.S. Seed carotenoids: Synthesis, diversity, and functions. Russ. J. Plant Physiol. 2015;62(1):1-13. DOI 10.1134/S1021443715010136; Smolikova G.N., Medvedev S.S. Photosynthesis in the seeds of chloroembryophytes. Russ. J. Plant Physiol. 2016;63(1):1-12. DOI 10.1134/S1021443715060163; Smolikova G.N., Laman N.A., Boriskevich O.V. Role of chlorophylls and carotenoids in seed tolerance to abiotic stressors. Russ. J. Plant Physiol. 2011;58(6):965-973. DOI 10.1134/S1021443711060161; Smolikova G., Dolgikh E., Vikhnina M., Frolov A., Medvedev S. Genetic and hormonal regulation of chlorophyll degradation during maturation of seeds with green embryos. Int. J. Mol. Sci. 2017; 18(9):1993. DOI 10.3390/ijms18091993; Smolikova G., Kreslavski V., Shiroglazova O., Bilova T., Sharova E., Frolov A., Medvedev S. Photochemical activity changes accompanying the embryogenesis of pea (Pisum sativum) with yellow and green cotyledons. Funct. Plant Biol. 2018;45(2):228-235. DOI 10.1071/FP16379; Smolikova G., Shiroglazova O., Vinogradova G., Leppyanen I., Dinastiya E., Yakovleva O., Dolgikh E., Titova G., Frolov A., Medvedev S. Comparative analysis of the plastid conversion, photochemical activity and chlorophyll degradation in developing embryos of green-seeded and yellow-seeded pea (Pisum sativum) cultivars. Funct. Plant Biol. 2020;47(5):409-424. DOI 10.1071/FP19270; Sreenivasulu N., Wobus U. Seed-development programs: a systems biology-based comparison between dicots and monocots. Annu. Rev. Plant Biol. 2013;64(1):189-217. DOI 10.1146/annurev-arplant-050312-120215; Terashima I., Fujita T., Inoue T., Chow W.S., Oguchi R. Green light drives leaf photosynthesis more efficiently than red light in strong white light: revisiting the enigmatic question of why leaves are green. Plant Cell Physiol. 2009;50(4):684-697. DOI 10.1093/pcp/pcp034; Tikhonov K.G., Khristin M.S., Klimov V.V., Sundireva M.A., Kreslavski V.D., Sidorov R.A., Tsidendambayev V.D., Savchenko T.V. Structural and functional characteristics of photosynthetic apparatus of chlorophyll-containing grape vine tissue. Russ. J. Plant Physiol. 2017;64(1):73-82. DOI 10.1134/S102144371606011X; Tschiersch H., Borisjuk L., Rutten T., Rolletschek H. Gradients of seed photosynthesis and its role for oxygen balancing. BioSystems. 2011;103(2):302-308. DOI 10.1016/j.biosystems.2010.08.007; Walter J., Kromdijk J. Here comes the sun: How optimization of photosynthetic light reactions can boost crop yields. J. Integr. Plant Biol. 2021;64(2):564-591. DOI 10.1111/jipb.13206; Wang C., Yang J., Chen W., Zhao X., Wang Z. Contribution of the leaf and silique photosynthesis to the seeds yield and quality of oilseed rape (Brassica napus L.) in reproductive stage. Sci. Rep. 2023; 13(1):4721. DOI 10.1038/s41598-023-31872-6; Ward K., Scarth R., Daun J.K., Thorsteinson C.T. Characterization of chlorophyll pigments in ripening canola seed (Brassica napus). J. Am. Oil Chem. Soc. 1994;71(12):1327-1331. DOI 10.1007/BF02541349; Weber H., Borisjuk L., Wobus U. Molecular physiology of legume seed development. Annu. Rev. Plant Biol. 2005;56:253-279. DOI 10.1146/annurev.arplant.56.032604.144201; Wu X.L., Liu Z.H., Hu Z.H., Huang R.Z. BnWRI1 coordinates fatty acid biosynthesis and photosynthesis pathways during oil accumulation in rapeseed. J. Integr. Plant Biol. 2014;56(6):582-593. DOI 10.1111/jipb.12158; Yakovlev M.S., Zhukova G.Ya. Angiosperms with Green and Colorless Embryos (Chloro- and Leucoembryophytes). Leningrad: Nauka Publ., 1973 (in Russian); Yakovlev M.S., Zhukova G.Y. Chlorophyll in embryos of angiosperm seeds, a review. Bot. Notiser. 1980;133:323-336; Yanykin D., Sundyreva M., Khorobrykh A., Semenova G., Savchenko T. Functional characterization of the corticular photosynthetic apparatus in grapevine. Biochim. Biophys. Acta Bioenerg. 2020; 1861(11):148260. DOI 10.1016/j.bbabio.2020.148260; https://vavilov.elpub.ru/jour/article/view/4009

  13. 13
    Academic Journal
  14. 14
    Academic Journal
  15. 15
    Academic Journal

    المصدر: Odesa National University Herald. Biology; Vol. 15 No. 6 (2010); 31-35 ; Вестник Одесского национального университета. Биология; Том 15 № 6 (2010); 31-35 ; Вісник Одеського національного університету. Біологія; Том 15 № 6 (2010); 31-35 ; 2415-3125 ; 2077-1746

    وصف الملف: application/pdf

  16. 16
    Academic Journal

    المساهمون: This work was supported by the Ministry of Science and Higher Education of the Russian Federation (Project No. 0445-2021-0005 and 121052600350-9).

    المصدر: Vavilov Journal of Genetics and Breeding; Том 26, № 3 (2022); 234-239 ; Вавиловский журнал генетики и селекции; Том 26, № 3 (2022); 234-239 ; 2500-3259 ; 2500-0462 ; 10.18699/VJGB-22-27

    وصف الملف: application/pdf

    Relation: https://vavilov.elpub.ru/jour/article/view/3357/1609; Abeydeera L.R., Wang W.H., Cantley T.C., Rieke A., Day B.N. Coculture with follicular shell pieces can enhance the developmental competence of pig oocytes after in vitro fertilization: relevance to intracellular glutathione. Biol. Reprod. 1998;58(1):213-218. DOI 10.1095/biolreprod58.1.213.; Boytseva E.N., Bychkova N.V., Kuzmina T.I. Effects of highly dispersed silica nanoparticles on the apoptosis of Bos taurus spermatozoa. Tsitologiya = Cytology. 2017;5(59):375-380. (in Russian); Bradley J., Pope I., Wang Y., Langbein W., Borri P., Swann K. Dynamic label-free imaging of lipid droplets and their link to fatty acid and pyruvate oxidation in mouse eggs. J. Cell Sci. 2019;132(13):jcs228999. DOI 10.1242/jcs.228999.; Canipari R. Oocyte-granulosa cell interactions. Hum. Reprod. Update. 2000;6(3):279-289. DOI 10.1093/humupd/6.3.279.; Egerszegi I., Alm H., Rátky J., Heleil B., Brüssow K.P., Torner H. Meiotic progression, mitochondrial features and fertilisation characteristics of porcine oocytes with different G6PDH activities. Reprod. Fertil. Dev. 2010;22(5):830-838. DOI 10.1071/RD09140.; Fowler K.E., Mandawala A.A., Griffin D.K., Walling G.E., Harvey S.C. The production of pig preimplantation embryos in vitro: current progress and future prospects. Reprod. Biol. 2018;18(3):203-211. DOI 10.1016/j.repbio.2018.07.001.; Janowski D., Salilew-Wondim D., Torner H., Tesfaye D., Ghanem N., Tomek W., El-Sayed A., Schellander K., Holker M. Incidence of apoptosis and transcript abundance in bovine follicular cells is associated with the quality of the enclosed oocyte. Theriogenology. 2012;78(3):656-669. DOI 10.1016/j.theriogenology.2012.03.012.; Kuzmina T.I., Alm H., Тorner H. Methods of Porcine Embryos Production in vitro. St. Petersburg; Puskin, 2008. (in Russian); Kuzmina T.I., Chistyakova I.V., Tatarskaya D.N. The influence of highly dispersed silica nanoparticles on the functional activity of mitochondria and chromatin state in native and devitrified Bos taurus oocytes. Sel’skokhozyaystvennaya Biologiya = Agricultural Вiology. 2020;55(4):784-793. DOI 10.15389/agrobiology.2020.4.784eng.; Kuzmina T.I., Novichkova D.A., Chistyakova I.V., Epishko O.A. Effects of highly dispersed silica nanoparticles on the chromatin in somatic cells of porcine follicles. Veterinariya = Veterinary Medicine Journal. 2017;2:43-45. (in Russian); Lee J.S., Mendez R., Heng H.H., Yang Z.Q., Zhang K. Pharmacological ER stress promotes hepatic lipogenesis and lipid droplet formation. Am. J. Transl. Res. 2012;4(1):102-113.; Martinez E.A., Martinez C.A., Cambra J.M., Maside C., Lucas X., Vazquez J.L., Vazquez J.M., Roca J., Rodriguez-Martinez H., Gil M.A., Parrilla I., Cuello C. Achievements and future perspectives of embryo transfer technology in pigs. Reprod. Domest. Anim. 2019;54(4):4-13. DOI 10.1111/rda.13465.; Novichkova D.A., Kuzmina T.I. Effect of highly dispersed silica nanoparticles on the functioning of lipidome in Sus scrofa domesticus oocytes. Meditsina Ekstremal’nykh Situatsiy = Medicine of Extreme Situations. 2019;S1:30-34. (in Russian); Okamoto A., Ikeda M., Kaneko A., Kishida C., Shimada M., Yamashita Y. The novel pig in vitro maturation system to improve developmental competence of oocytes derived from atretic nonvascularized follicle. Biol. Reprod. 2016;95(4):7. DOI 10.1095/biolreprod.116.138982.; Okazaki T., Nishibori M., Yamashita Y., Shimada М. LH reduces proliferative activity of cumulus cells and accelerates GVBD of porcine oocytes. Mol. Cell. Endocrinol. 2003;209:43-50. DOI 10.1016/j.mce.2003.08.002.; Remião M.H., Segatto N.V., Pohlmann A., Guterres S.S., Seixas F.K., Collares T. The potential of nanotechnology in medically assisted reproduction. Front. Pharmacol. 2018;8:994. DOI 10.3389/fphar.2017.00994.; Romar R., Canovas S., Matas C., Gadea J., Coy P. Pig in vitro fertilization: where are we and where do we go? Theriogenology. 2019;137:113-121. DOI 10.1016/j.theriogenology.2019.05.045.; Roy P.K., Qamar A.Y., Fang X., Kim G., Bang S., Zoysa M., Shin S.T., Cho J. Chitosan nanoparticles enhance developmental competence of in vitro-matured porcine oocytes. Reprod. Domest. Anim. 2020;56(2):342-350. DOI 10.1111/rda.13871.; Savchenko D.S. Studyng of antioxidatic properties of nanocomposite of highly dispersive silicon dioxide with silver nanoparticles. Meditsina i Obrazovanie v Sibiri = Medicine and Education in Siberia. 2013;6:23-30. (in Russian); Soriano-Úbeda C., García-Vazquez F.A., Romero-Aguirregomezcorta J., Matas C. Improving porcine in vitro fertilization output by simulating the oviductal environment. Sci. Rep. 2017;7:43616. DOI 10.1038/srep43616.; Wei J.H., Yuan X.Y., Zhang J.M., Wei J.Q. Caspase activity and oxidative stress of granulosa cells are associated with the viability and developmental potential of vitrified immature oocytes. Eur. J. Obstet. Gynecol. Reprod. Biol. 2016;198:22-26. DOI 10.1016/j.ejogrb.2015.12.010.; Zhang X., Zhang K. Endoplasmic reticulum stress-associated lipid droplet formation and type II diabetes. Biochem. Res. Int. 2012;2012:247275. DOI 10.1155/2012/247275.; Zyuzyn A.B., Shcherbak О.V., Osypchuk O.S., Kovtun S.I., Dzitsyuk V.V. Using of nanomaterials in embryogenetic system for receiving pig’s embryos in vitro. Faktory Eksperimentalnoi Evolutsii Organizmov = Factors in Experimental Evolution of Organisms. 2015;17:164-168. (in Ukrainian); https://vavilov.elpub.ru/jour/article/view/3357

  17. 17
    Academic Journal

    المساهمون: Not specified, Не указан

    المصدر: Current Pediatrics; Том 21, № 5 (2022); 383-390 ; Вопросы современной педиатрии; Том 21, № 5 (2022); 383-390 ; 1682-5535 ; 1682-5527

    وصف الملف: application/pdf

    Relation: https://vsp.spr-journal.ru/jour/article/view/3034/1228; Has C, Bauer JW, Bodemer C, et al. Consensus reclassification of inherited epidermolysis bullosa and other disorders with skin fragility. Br J Dermatol. 2020;183(4):614–627. doi: https://doi.org/10.1111/bjd.18921; Кубанов А.А., Альбанова В.И., Карамова А.Э. и др. Распространенность врожденного буллезного эпидермолиза у населения Российской Федерации // Вестник дерматологии и венерологии. — 2015. — Т. 91. — № 3. — С. 21–30.; Буллезный эпидермолиз: руководство для врачей / под ред. Н.Н. Мурашкина, Л.С. Намазовой-Барановой. — М.: ПедиатрЪ; 2019. — 444 с.; Bardhan A, Bruckner-Tuderman L, Chapple ILC, et al. Epidermolysis bullosa. Nat Rev Dis Primers. 2020;6(1):78. doi: https://doi.org/10.1038/s41572-020-0210-0; Lai-Cheong JE, McGrath JA. Kindler syndrome. Dermatol Clin. 2010;28(1):119–124. doi: https://doi.org/10.1016/j.det.2009.10.013; Maier K, He Y, Esser PR, et al. Single amino acid deletion in kindlin-1 results in partial degradation which can be rescued by chaperone treatment. J Invest Dermatol. 2016;136(5):920–929. doi: https://doi.org/10.1016/j.jid.2015.12.039; Simon D. Puberty in chronically diseased patients. Horm Res. 2002;57(Suppl 2):53–56. doi: https://doi.org/10.1159/000058102; Loh CC, Kim J, Su JC, et al. Development, reliability, and validity of a novel Epidermolysis Bullosa Disease Activity and Scarring Index (EBDASI). J Am Acad Dermatol. 2014;70(1):89–97.e1–13. doi: https://doi.org/10.1016/j.jaad.2013.09.041; Jain SV, Harris AG, Su JC, et al. The Epidermolysis Bullosa Disease Activity and Scarring Index (EBDASI): grading disease severity and assessing responsiveness to clinical change in epidermolysis bullosa. J Eur Acad Dermatol Venereol. 2017;31(4):692–698. doi: https://doi.org/10.1111/jdv.13953; de Onis M, Onyango AW, Borghi E, et al. Development of a WHO growth reference for school-aged children and adolescents. Bull World Health Organ. 2007;85(9):660–667. doi: https://doi.org/10.2471/blt.07.043497; Sotos JF, Tokar NJ. Appraisal of testicular volumes: volumes matching ultrasound values referenced to stages of genital development. Int J Pediatr Endocrinol. 2017;2017:7. doi: https://doi.org/10.1186/s13633-017-0053-y; Marshall WA, Tanner JM. Variations in the pattern of pubertal changes in boys. Arch Dis Child. 1970;45(239):13–23. doi: https://doi.org/10.1136/adc.45.239.13; Wolf RM, Long D. Pubertal Development. Pediatr Rev. 2016; 37(7):292–300. doi: https://doi.org/10.1542/pir.2015-0065; Martinez AE, Allgrove J, Brain C. Growth and pubertal delay in patients with epidermolysis bullosa. Dermatol Clin. 2010;28(2): 357–359, xii. doi: https://doi.org/10.1016/j.det.2010.01.007; https://vsp.spr-journal.ru/jour/article/view/3034

  18. 18
    Academic Journal

    المصدر: Vegetable crops of Russia; № 4 (2022); 80-85 ; Овощи России; № 4 (2022); 80-85 ; 2618-7132 ; 2072-9146

    وصف الملف: application/pdf

    Relation: https://www.vegetables.su/jour/article/view/2011/1388; Байрамбетов Ш.Б. Методические указания по применению регуляторов роста растений на овощных, бахчевых культурах и картофеле. Рекомендации РАСХН. Астрахань. 2009. 78 с.; Быковский Ю.А., Варивода Е.А., Малуева С.В., Никулина Т.М. Селекция бахчевых культур для юго-востока России. Картофель и овощи. 2017;(6):375.; Колебошина Т.Г., Фомин С.Д., Рябчикова Н.Б., Вербитская О.Г. Сравнительная оценка различных видов удобрений и способов их применения при выращивании бахчевых культур в условиях Волгоградского Заволжья. Известия Нижневолжского агроуниверситетского комплекса: наука и высшее профессиональное образование. 2020;(3):107-116. DOI:10.32786/2071-9485-2020-03-10; Ермаков А.И., Арасимович В.В., Ярош Н.П. Методы биохимического исследования растений. Л.: Колос. 1972. 456 с.; Боева Т.В., Байрамбеков Ш.Б., Гуляева Г.В., Соколов С.Д., Соколова Г.Ф., Валеева З.Б., Гарьянова Е.Д., Соколов А.С., Бочарников А.Н. Возделывание бахчевых культур в условиях Нижнего Поволжья. Рекомендации. М.; Российская академия с.-х. наук; ГНУ ВНИИОБ. – Астрахань: Издатель: Сорокин Роман Васильевич. 2013. 64 с.; Колебошина Т.Г., Быковский Ю.А. Особенности агротехнологии бахчевых культур в зоне рискованного земледелия РФ. Труды Кубанского государственного аграрного университета. 2016;60(3):123-129.; Колебошина Т.Г., Егорова Г.С., Рябчикова Н.Б., Вербицкая Л.Н. Сроки сева арбуза, дыни, тыквы в зависимости от их биологических особенностей. Известия Нижневолжского агроуниверситетского комплекса: наука и высшее профессиональное образование. 2017;48(4):129-135.; Колебошина Т.Г., Емельянова Л.В., Никулина Т.М., Генетические коллекции бахчевых культур как основной ресурс развития отрасли. Известия Нижневолжского агроуниверситетского комплекса: наука и высшее образование. 2016;(2):78-83.; Литвинов С.С. Методика полевого опыта в овощеводстве - М: Россельхозакадеми. 2011. 648 с.; Белик В.Ф., Бондаренко Г.А. Методические указания по агротехническим и физиологическим исследованиям с овощными и бахчевыми культурами. Москва ВНИИО. 1979. С.3-110.; Белик В.Ф. Методика опытного дела в овощеводстве и бахчеводстве. М. ВО «Агропромиздат». 1992.; https://www.vegetables.su/jour/article/view/2011

  19. 19
    Academic Journal

    المصدر: Education and science in the modern context; 242-244 ; Образование и наука в современных реалиях; 242-244

    وصف الملف: text/html

    Relation: info:eu-repo/semantics/altIdentifier/isbn/978-5-6048183-8-1; https://interactive-plus.ru/e-articles/828/Action828-557374.pdf; Актуальные проблемы развития ребенка в дошкольном и дополнительном образовании / под ред. А.А.Майера. – СПб.: Детство-пресс, 2013. – 192 с.; Воспитание детей в старшей группе детского сада. Пособие для воспитателей / В.В. Гербова, Р.А. Иванкова, Р.Г. Казакова [и др.]. – М.: Просвещение, 1994. – 288 с.; Брунер Дж. Развитие игровой деятельности и ее особенности. – СПб., 2004. – 210 с.; Выготский Л.С. Игра и ее роль в психическом развитии ребенка // Вопросы психологии. – 1996. – №6.; Галькерин И.Я. К анализу теории Ж. Пиаже о развитии детского мышления / И.Я. Галькерин, Д.Б. Эльконин, А.В. Запорожец. – М., 1967. – 110 с.; Запорожец А.В. Психология. – М., 2001. – 245 с.; https://interactive-plus.ru/files/Books/633a657062472.jpg?req=557374; https://interactive-plus.ru/article/557374/discussion_platform

  20. 20
    Academic Journal