Возможности ультразвуковой диагностики в предикции спонтанных преждевременных родов (обзор литературы)
https://doi.org/10.24835/1607-0771-353
Аннотация
Преждевременные роды (ПР) являются основной причиной неонатальной и младенческой заболеваемости и смертности. В настоящем обзоре обобщены современные достижения ультразвуковой диагностики в предикции спонтанных ПР. Особое внимание уделено методологии трансвагинальной цервикометрии, а также другим ультразвуковым маркерам, таким как “сладж”, маточно-цервикальный угол, железистая зона шейки матки, оценка оболочек, эластография и маркеры фетального ответа. Также подчеркивается необходимость разработки стандартизированных протоколов и выполнения валидационных исследований для повышения воспроизводимости и эффективности применения используемых ультразвуковых маркеров предикции спонтанных ПР.
К настоящему времени доказано, что выполнение ультразвуковой цервикометрии с 15-й по 24-ю неделю гестации эффективно прогнозирует экстремально ранние ПР вследствие истмико-цервикальной недостаточности (ИЦН), однако стандарт исследования часто не соблюдается в рутинной практике.
Спорным остается использование параметров эластографии, маточно-цервикального угла и железистого индекса в качестве предикторов ПР вследствие ИЦН, оценки плодных оболочек, наличия “сладжа” и оценки органов плода в качестве предикторов ПР инфекционного генеза. Хотя указанные признаки имеют определенный потенциал для выделения группы риска ПР, их прогностическая ценность не превышает прогностическую ценность трансвагинальной цервикометрии, что определяет необходимость разработки моделей на основе многофакторного анализа.
Заключение. Учитывая полиэтиологичность синдрома ПР требуются дальнейшие исследования для выявления самостоятельных высокоинформативных ультразвуковых предикторов с учетом вероятной этиологии ПР и их сочетаний с иными клиническими и лабораторными признаками в многофакторных моделях прогнозирования. Это позволит своевременно и дифференцированно проводить профилактику спонтанных ПР у пациенток высокого риска, а в случае необходимости – организовать их маршрутизацию в специализированные центры, где может быть оказана высокотехнологичная помощь недоношенным новорожденным с низкой массой тела.
Ключевые слова
Об авторах
Н. В. КривоносоваРоссия
Кривоносова Наталья Владимировна – канд. мед. наук, доцент кафедры акушерства, гинекологии и перинатологии №2 ФГБОУ ВО “Кубанский государственный медицинский университет” Минздрава России, Краснодар
https://orcid.org/0000-0002-8222-5670
E-mail: natalja.krivonosova@yandex.ru
Т. Б. Макухина
Россия
Макухина Татьяна Борисовна – доктор мед. наук, доцент, профессор кафедры акушерства, гинекологии и перинатологии № 2 ФГБОУ ВО “Кубанский государственный медицинский университет” Минздрава России, Краснодар
https://orcid.org/0000-0003-0536-4500
E-mail: Soltatiana@mail.ru
О. М. Кривоносова
Россия
Кривоносова Ольга Михайловна – студентка 1-го курса магистратуры кафедры биотехнологии (профиль “медицинская биотехнология”) ФГАОУ ВО Первый Московский государственный медицинский университет имени И.М. Сеченова Минздрава России (Сеченовский Университет), Москва
https://orcid.org/0009-0008-8672-219X
E-mail: olkrivonosova@mail.ru
Список литературы
1. Romero R., Jung E., Chaiworapongsa T. et al. Toward a new taxonomy of obstetrical disease: improved performance of maternal blood biomarkers for the great obstetrical syndromes when classified according to placental pathology. Am. J. Obstet. Gynecol. 2022; 227 (4): 615.e1–615.e25. https://doi.org/10.1016/j.ajog.2022.04.015
2. Клинические рекомендации “Преждевременные роды”. Год 2024 https://cr.minzdrav.gov.ru/preview-cr/331_2 (дата обращения 27.09.2024)
3. Perin J., Mulick A., Yeung D. et al. Global, regional, and national causes of under-5 mortality in 2000-19: an updated systematic analysis with implications for the Sustainable Development Goals. Lancet Child. Adolesc. Health. 2022; 6 (2): 106–115. https://doi.org/10.1016/S2352-4642(21)00311-4. Epub 2021 Nov 17. Erratum in: Lancet Child. Adolesc. Health. 2022; 6 (1): e4. https://doi.org/10.1016/S2352-4642(21)00382-5. PMID: 34800370; PMCID: PMC8786667
4. Khandre V., Potdar J., Keerti A. Preterm Birth: An Overview. Cureus. 2022; 14 (12): e33006. https://doi.org/10.7759/cureus.33006
5. Vidal M.S. Jr, Lintao R.C.V., Severino M.E.L. et al. Spontaneous preterm birth: Involvement of multiple feto-maternal tissues and organ systems, differing mechanisms, and pathways. Front. Endocrinol. (Lausanne). 2022; 13: 1015622. https://doi.org/10.3389/fendo.2022.1015622
6. Romero R. Spontaneous preterm labor can be predicted and prevented. Ultrasound Obstet. Gynecol. 2021; 57 (1): 19–21. https://doi.org/10.1002/uog.23565
7. Грудницкая Е.Н., Небышинец Л.М. Особенности исходов беременности у пациенток с недифференцированной дисплазией соединительной ткани: обсервационное когортное проспективное исследование. Кубанский научный медицинский вестник. 2024; 31 (4): 17–29. https://doi.org/10.25207/1608-6228-2024-31-4-17-29
8. Bradley E., Blencowe H., Moller A.B. et al. Born too soon: global epidemiology of preterm birth and drivers for change. Reprod. Health. 2025; 22 (Suppl. 2): 105. https://doi.org/10.1186/s12978-025-02033-x
9. Zhu Z., Yuan L., Wang J. et al. Mortality and Morbidity of Infants Born Extremely Preterm at Tertiary Medical Centers in China From 2010 to 2019. JAMA Netw Open. 2021; 4 (5): e219382. https://doi.org/10.1001/jamanetworkopen.2021.9382
10. Melo T.F.M., Carregaro R.L., Araújo W.N. et al. Direct costs of prematurity and factors associated with birth and maternal conditions. Rev. Saude Publica. 2022; 56: 49. https://doi.org/10.11606/s1518-8787.2022056003657
11. Van Blankenstein E., Aveline A., Battersby C. A protocol for neoWONDER: Neonatal whole population data linkage to improve long-term health and wellbeing of preterm and sick babies. PLoS One. 2024; 19 (7): e0305113. https://doi.org/10.1371/journal.pone.0305113
12. Ultrasound Workshop in Obstetrics. J. Obstet. Gynaecol. Res. 2023; 49, Suppl. 1: 145–153. https://doi.org/10.1111/jog.15597
13. Andersen H.F., Nugent C.E., Wanty S.D., Hayashi R.H. Prediction of risk for preterm delivery by ultrasonographic measurement of cervical length. Am. J. Obstet. Gynecol. 1990; 163 (3): 859–867. https://doi.org/10.1016/0002-9378(90)91084-p
14. Greco E., Gupta R., Syngelaki A. et al. First-trimester screening for spontaneous preterm delivery with maternal characteristics and cervical length. Fetal. Diagn. Ther. 2012; 31 (3): 154–161. https://doi.org/10.1159/000335686
15. Retzke J.D., Sonek J.D., Lehmann J. et al. Comparison of three methods of cervical measurement in the first trimester: single-line, two-line, and tracing. Prenat. Diagn. 2013; 33 (3): 262–268. https://doi.org/10.1002/pd.4056
16. Кривоносова Н.В. Способ прогнозирования экстремально ранних преждевременных родов у беременных женщин. Патент на изобретение RU 2792919, 28.03.2023. Заявка № 2022119280 от 13.07.2022.
17. Coutinho C.M., Sotiriadis A., Odibo A. et al. ISUOG Practice Guidelines: role of ultrasound in the prediction of spontaneous preterm birth. Ultrasound Obstet. Gynecol. 2022; 60 (3): 435–456. https://doi.org/10.1002/uog.26020
18. Zwertbroek E.F., Groen H., Fontanella F. et al. Performance of the FMF First-Trimester Preeclampsia-Screening Algorithm in a High-Risk Population in The Netherlands. Fetal. Diagn. Ther. 2021; 48 (2): 103–111. https://doi.org/10.1159/000512335
19. Giorgione V., Quintero Mendez O., Pinas A. et al. Routine first-trimester pre-eclampsia screening and risk of preterm birth. Ultrasound Obstet. Gynecol. 2022; 60 (2): 185–191. https://doi.org/10.1002/uog.24915
20. Cavoretto P.I., Farina A., Salmeri N. et al. First trimester risk of preeclampsia and rate of spontaneous birth in patients without preeclampsia. Am. J. Obstet. Gynecol. 2024; 231 (4): 452.e1–452.e7. https://doi.org/10.1016/j.ajog.2024.01.008
21. Yearwood L., Bone J.N., Wen Q. et al. Does maternal stature modify the association between infants who are small or large for gestational age and adverse perinatal outcomes? A retrospective cohort study. BJOG. 2023; 130 (5): 464–475. https://doi.org/10.1111/1471-0528.17350.
22. Tersigni C., Neri C., D'Ippolito S. et al. Impact of maternal obesity on the risk of preterm delivery: insights into pathogenic mechanisms. J. Matern. Fetal. Neonatal. Med. 2022; 35 (16): 3216–3221. https://doi.org/10.1080/14767058.2020.1817370
23. Пенжоян Г.А., Маркова Л.М., Гришанов Н.В. Значение этиологических факторов нарушения репродуктивной системы мужчины в лечении мужского бесплодия. Проблемы репродукции. 2000; 6 (6): 60–61
24. Pelikh A., Smith K.R., Myrskylä M., Goisis A. Medically Assisted Reproduction Treatment Types and Birth Outcomes: A Between-Family and Within-Family Analysis. Obstet. Gynecol. 2022; 139 (2): 211–222. https://doi.org/10.1097/AOG.0000000000004655
25. Hoffman M.K. Prediction and Prevention of Spontaneous Preterm Birth: ACOG Practice Bulletin, Number 234. Obstet. Gynecol. 2021; 138 (6): 945–946. https://doi.org/10.1097/AOG.0000000000004612
26. Story L., Shennan A. Cervical cerclage: An evolving evidence base. BJOG. 2024; 131 (12): 1579–1586. https://doi.org/10.1111/1471-0528.17905
27. Temming L., Mikhail E. SMFM Publications Committee. Electronic address: pubs@smfm.org. Society for Maternal-Fetal Medicine Consult Series #65: Transabdominal cerclage. Am. J. Obstet. Gynecol. 2023; 228 (6): B2–B10. https://doi.org/10.1016/j.ajog.2023.02.018
28. Shennan A., Suff N., Leigh Simpson J. et al. FIGO Working Group for Preterm Birth. FIGO good practice recommendations on progestogens for prevention of preterm delivery. Int. J. Gynaecol. Obstet. 2021; 155 (1): 16–18. https://doi.org/10.1002/ijgo.13852
29. Новикова С.В., Зароченцева Н.В., Дальниковская Л.А., Климова И.В. Истмико-цервикальная недостаточность – предиктор преждевременных родов. Вопросы практической кольпоскопии и генитальные инфекции. 2022; 2: 30–36. https://doi.org/10.46393/27826392_2022_2_30
30. Boelig R.C., Kripalu V., Chen S.L. et al. Utility of follow-up cervical length screening in low-risk women with a cervical length of 26 to 29 mm. Am. J. Obstet. Gynecol. 2021; 225 (2): 179.e1–179.e6. https://doi.org/10.1016/j.ajog.2021.02.027
31. Tran T.L., Jwala S., Terenna C. et al. Evaluation of additive effect of quantitative fetal fibronectin to cervical length for prediction of spontaneous preterm birth among asymptomatic high-risk women. J. Matern. Fetal. Neonatal. Med. 2020; 33 (15): 2628–2634. https://doi.org/10.1080/14767058.2018.1555816
32. Seravalli V., Abati I., Strambi N. et al. Universal cervical length screening for preterm birth is not useful after 24-weeks of gestation. Acta Obstet. Gynecol. Scand. 2023; 102 (11): 1541–1548. https://doi.org/10.1111/aogs.14683
33. Bortoletto T.G., Silva T.V., Borovac-Pinheiro A. et al. Cervical length varies considering different populations and gestational outcomes: Results from a systematic review and meta-analysis. PLoS One. 2021; 16 (2): e0245746. https://doi.org/10.1371/journal.pone.0245746
34. Van Zijl M.D., Koullali B., Kleinrouweler E.C. et al. Uniform International Method to Measure Cervical Length: Are We There Yet? Fetal. Diagn. Ther. 2022; 49 (4): 159–167. https://doi.org/10.1159/000523996
35. Van Dijk C.E., van Gils A.L., van Zijl M.D. et al.; Quadruple P Research Group. Cervical pessary versus vaginal progesterone in women with a singleton pregnancy, a short cervix, and no history of spontaneous preterm birth at less than 34 weeks' gestation: open label, multicentre, randomised, controlled trial. BMJ. 2024; 384: e077033. https://doi.org/10.1136/bmj-2023-077033
36. Beaver H., Lanzarone V., Low G.K. Comparing transabdominal and transvaginal cervical length measurements at mid-trimester fetal anomaly scan: The impact of bladder fullness and lower uterine contractions. Australas J. Ultrasound Med. 2024; 27 (4): 218–228. https://doi.org/10.1002/ajum.12409
37. Pedretti M.K., Doherty D.A., Dickinson J.E. The perceptions of obstetric care providers about cervical length screening for preterm birth prevention. Aust. N. Z. J. Obstet. Gynaecol. 2022; 62 (5): 650–657. https://doi.org/10.1111/ajo.13514
38. Peterson J.A., Smolar I., Stoffels G., Bianco A. Intra-Sonographer Correlation Between Transabdominal and Transvaginal Cervical Length Measurements and Associated Patient Demographics. J. Ultrasound. Med. 2023; 42 (11): 2583–2588. https://doi.org/10.1002/jum.16293
39. Pedretti M.K., Dickinson J.E., Doherty D.A., Newnham J.P. Routine transabdominal cervical length screening in mid-pregnancy for the prevention of preterm birth: Is it good enough to use as a screening test? Aust. N. Z. J. Obstet. Gynaecol. 2025; 65 (1): 61–68. https://doi.org/10.1111/ajo.13859
40. Songserm V., Komwilaisak R., Saksiriwuttho P., Kongwattanakul K. Transperineal versus transvaginal sonographic measurements of cervical length in pregnant women between 16 and 24-weeks of gestation. J. Clin. Ultrasound. 2019; 47 (7): 389–393. https://doi.org/10.1002/jcu.22640
41. Клинические рекомендации “Истмико-цервикальная недостаточность”. Год 2024 https://cr.minzdrav.gov.ru/preview-cr/671_2 (дата обращения 02.09.2024)
42. Prediction and Prevention of Spontaneous Preterm Birth: ACOG Practice Bulletin, Number 234. Obstet. Gynecol. 2021; 138 (2): e65–e90. https://doi.org/10.1097/AOG.0000000000004479
43. Berger R., Abele H., Bahlmann F. et al. Prevention and Therapy of Preterm Birth. Guideline of the DGGG, OEGGG and SGGG (S2k-Level, AWMF Registry Number 015/025, September 2022) – Part 1 with Recommendations on the Epidemiology, Etiology, Prediction, Primary and Secondary Prevention of Preterm Birth. Geburtshilfe Frauenheilkd. 2023; 83 (5): 547–568. https://doi.org/10.1055/a-2044-0203. Erratum in: Geburtshilfe Frauenheilkd. 2023; 83 (8): 1043. https://doi.org/10.1055/a-2114-0548
44. Shennan A., Story L., Jacobsson B., Grobman W.A.; FIGO Working Group for Preterm Birth. FIGO good practice recommendations on cervical cerclage for prevention of preterm birth. Int. J. Gynaecol. Obstet. 2021; 155 (1): 19–22. https://doi.org/10.1002/ijgo.13835
45. Emilia F., Laurence K., Lisa-Marie L. et al. Clinical guidance paper VVOG primary and secondary prevention of preterm birth in singleton pregnancies. Eur. J. Obstet. Gynecol. Reprod. Biol. X. 2025; 27: 100401. https://doi.org/10.1016/j.eurox.2025.100401
46. Kagan K.O., Sonek J. How to measure cervical length. Ultrasound Obstet. Gynecol. 2015; 45 (3): 358–362. https://doi.org/10.1002/uog.14742
47. Thoirs K., O'Hara S., Quinton A. et al. Ultrasound assessment of the gravid cervix to assess for risk of spontaneous preterm birth: Introducing an evidence-based clinical guideline for sonographers. Sonography. 2024; 11 (2): 113–125. https://doi.org/10.1002/sono.12424
48. Souka A.P., Pilalis A. Reproducibility of cervical length measurement throughout pregnancy. J. Matern. Fetal. Neonatal. Med. 2021; 34 (13): 2185–2191. https://doi.org/10.1080/14767058.2019.1660765
49. Creswell L., Rolnik D.L., Lindow S.W., O'Gorman N. Preterm Birth: Screening and Prediction. Int. J. Womens Health. 2023; 15: 1981–1997. https://doi.org/10.2147/IJWH.S436624
50. Nooshin E., Mahdiss M., Maryam R. et al. Prediction of Preterm Delivery by Ultrasound Measurement of Cervical Length and Funneling Changes of the Cervix in Pregnant Women with Preterm Labor at 28-34 weeks of Gestation. J. Med. Life. 2020; 13 (4): 536–542. https://doi.org/10.25122/jml-2020-0069
51. Xiao H., Xing X., Zhang C., Shao Y. Association between clinical subtypes and pregnancy outcome of cervical incompetence: a retrospective cohort study. BMC Pregnancy Childbirth. 2025; 25 (1): 348. https://doi.org/10.1186/s12884-025-07465-8
52. Худорожкова Е.Д. Эхографическая оценка состояния шейки матки для прогнозирования преждевременных родов. Медицинская визуализация. 2015; 3: 30–34.
53. Stratulat V., Melamed N., Barrett J. et al. Cervical assessment certification and its impact on performance quality in the context of universal cervical screening. Int. J. Gynaecol. Obstet. 2024; 164 (3): 951–958. https://doi.org/10.1002/ijgo.15078
54. Ridout A.E., Ross G., Seed P.T. et al. Predicting spontaneous preterm birth in asymptomatic high-risk women with cervical cerclage. Ultrasound Obstet. Gynecol. 2023; 61 (5): 617–623. https://doi.org/10.1002/uog.26161
55. Cochrane E., Getrajdman C., Tavella N.F. et al. Is There Utility in Transvaginal Cervical Length Surveillance After Cerclage Placement for the Prediction of Spontaneous Preterm Birth? Cureus. 2024; 16 (7): e64818. https://doi.org/10.7759/cureus.64818
56. Chen R., Huang X., Li N., Li B. Analysis of pregnancy outcomes in patients undergoing ultrasound-indicated cerclage and identification the influence factors for predicting preterm birth: A retrospective study of 87 cases. Taiwan J. Obstet. Gynecol. 2023; 62 (2): 304–310. https://doi.org/10.1016/j.tjog.2022.10.010
57. Schnettler W., Manoharan S., Smith K. Transvaginal Sonographic Assessment Following Cervical Pessary Placement for Preterm Birth Prevention. AJP Rep. 2022; 12 (1): e80–e88. https://doi.org/10.1055/s-0041-1742273
58. Mountain K.E., Ng S., Elger T. et al. Predictive value of cervical length for spontaneous preterm birth in women with cervical cerclage. Ultrasound Obstet. Gynecol. 2025. https://doi.org/10.1002/uog.29281
59. Barinov S.V., Artymuk N.V., Novikova O.N. et al. Analysis of risk factors and predictors of pregnancy loss and strategies for the management of cervical insufficiency in pregnant women at a high risk of preterm birth. J. Matern. Fetal. Neonatal. Med. 2021; 34 (13): 2071–2079. https://doi.org/10.1080/14767058.2019.1656195
60. Luca S.T., Săsăran V., Muntean M., Mărginean C. A Review of the Literature: Amniotic Fluid “Sludge”-Clinical Significance and Perinatal Outcomes. J. Clin. Med. 2024; 13 (17): 5306. https://doi.org/10.3390/jcm13175306
61. Pannain G.D., Pereira A.M.G., Rocha M.L.T.L.F.D., Lopes R.G.C. Amniotic Sludge and Prematurity: Systematic Review and Meta-analysis. Rev. Bras. Ginecol. Obstet. 2023; 45 (8): e489–e498. https://doi.org/10.1055/s-0043-1772189
62. Pustotina O. Effects of antibiotic therapy in women with the amniotic fluid “sludge” at 15-24 weeks of gestation on pregnancy outcomes. J. Matern. Fetal. Neonatal. Med. 2020; 33 (17): 3016–3027. https://doi.org/10.1080/14767058.2019.1567706
63. Yeo L., Romero R., Chaiworapongsa T. et al. Resolution of acute cervical insufficiency after antibiotics in a case with amniotic fluid sludge. J. Matern. Fetal. Neonatal. Med. 2022; 35 (25): 5416–5426. https://doi.org/10.1080/14767058.2021.1881477
64. Khalil A., Sotiriadis A., Chaoui R. et al. ISUOG Practice Guidelines: role of ultrasound in congenital infection. Ultrasound Obstet. Gynecol. 2020; 56 (1): 128–151. https://doi.org/10.1002/uog.21991
65. Rouse D.J., MacPherson C., Saade G.R. et al.; Eunice Kennedy Shriver National Institute of Child Health and Human Development Maternal-Fetal Medicine Units (MFMU) Network. The association of cytomegalovirus hyperimmune globulin with adverse pregnancy outcomes. Am. J. Obstet. Gynecol. 2025; 233 (2): e39–e42. https://doi.org/10.1016/j.ajog.2025.04.014
66. Kim Y., Kim Y.M., Kim D.R. et al. The Multifaceted Clinical Characteristics of Congenital Cytomegalovirus Infection: From Pregnancy to Long-Term Outcomes. J. Korean Med. Sci. 2023; 38 (32): e249. https://doi.org/10.3346/jkms.2023.38.e249
67. Hurt K., Kodym P., Stejskal D. et al. Toxoplasmosis impact on prematurity and low birth weight. PLoS One. 2022; 17 (1): e0262593. https://doi.org/10.1371/journal.pone.0262593
68. Rabaan A.A., Uzairue L.I., Alfaraj A.H. et al. Seroprevalence, Risk Factors and Maternal-Fetal Outcomes of Toxoplasma gondii in Pregnant Women from WHO Eastern Mediterranean Region: Systematic Review and Meta-Analysis. Pathogens. 2023; 12 (9): 1157. https://doi.org/10.3390/pathogens12091157
69. Siargkas A., Pachi C., Nigdelis M.P. et al. The Association of Placental Grading with Perinatal Outcomes: A Systematic Review and Meta-Analysis. Diagnostics (Basel). 2025; 15 (10): 1264. https://doi.org/10.3390/diagnostics15101264
70. Porschen C., Schmitz R., Schmidt R. et al. Second trimester fetal thymus size in association to preterm birth. J. Perinat. Med. 2021; 50 (2): 144–149. https://doi.org/10.1515/jpm-2021-0065
71. Hamamoto T.E.N.K., Hatanaka A.R., França M.S. et al. An enlarged fetal thymus may be the initial response to intrauterine inflammation in pregnant women at risk for preterm birth. Rev. Assoc. Med. Bras. (1992). 2023; 69 (5): e20221678. https://doi.org/10.1590/1806-9282.20221678
72. Hall M., Hutter J., Suff N. et al. Antenatal diagnosis of chorioamnionitis: A review of the potential role of fetal and placental imaging. Prenat. Diagn. 2022; 42 (8): 1049–1058. https://doi.org/10.1002/pd.6188
73. Goletzke J., Pagenkemper M., Wiessner C. et al. Longitudinal adrenal gland measurements and growth trajectories as risk markers for late preterm delivery. BMC Pregnancy and Childbirth. 2020; 20 (1): 570. https://doi.org/10.1186/s12884-020-03255-6
74. Gabor M., Kunochova I., Krizko M. Jr. et al. Simple ultrasound evaluation of fetal adrenal glands as a marker of imminent preterm birth: a preliminary report. Bratisl. Lek. Listy. 2021; 122 (10): 721–726. https://doi.org/10.4149/BLL_2021_115
75. Sawaddisan R., Kor-Anantakul O., Pruksanusak N., Geater A. Uterocervical angle measurement for preterm birth prediction in singleton pregnant women with no history of preterm birth and normal cervical length: A prospective cohort study. Eur. J. Obstet. Gynecol. Reprod. Biol. 2020; 252: 30–35. https://doi.org/10.1016/j.ejogrb.2020.06.020
76. Goldstein M.J., Bailer J.M., Gonzalez-Brown V.M. Uterocervical angle in predicting spontaneous preterm birth: a systematic review and meta-analysis. AJOG Glob. Rep. 2023; 3 (3): 100240. https://doi.org/10.1016/j.xagr.2023.100240
77. Nguyen T.T.H., Vu T.V., Nguyen H.V.Q. Uterocervical angle and cervical length measurements for spontaneous preterm birth prediction in low-risk singleton pregnant women: a prospective cohort study. Arch. Gynecol. Obstet. 2024; 310 (3): 1611–1619. https://doi.org/10.1007/s00404-024-07646-4
78. Reicher L., Fouks Y., Yogev Y. Cervical Assessment for Predicting Preterm Birth-Cervical Length and Beyond. J. Clin. Med. 2021; 10 (4): 627. htts://doi.org/10.3390/jcm10040627
79. Халитова Р.Ш., Тюрина А.А., Ящук А.Г. Прогнозирование преждевременных родов у женщин с короткой шейкой матки. Международный научно-исследовательский журнал. 2024; 6 (144): 1. https://doi.org/10.60797/IRJ.2024.144
80. Tantengco O.A.G., Menon R. Contractile function of the cervix plays a role in normal and pathological pregnancy and parturition. Med. Hypotheses. 2020; 145: 110336. https://doi.org/10.1016/j.mehy.2020.110336
81. Oliver E.R., Maturen K.E., Feldstein V.A. et al. ACR Appropriateness Criteria® Assessment of Gravid Cervix. J. Am. Coll. Radiol. 2020; 17 (5S): S26–S35. https://doi.org/10.1016/j.jacr.2020.01.032
82. Vidal M.S. Jr., Lintao R.C.V., Severino M.E.L. et al. Spontaneous preterm birth: Involvement of multiple feto-maternal tissues and organ systems, differing mechanisms, and pathways. Front. Endocrinol. (Lausanne). 2022; 13: 1015622. https://doi.org/10.3389/fendo.2022.1015622
83. Alfuraih A.M. The Emerging Role of Sonoelastography in Pregnancy: Applications in Assessing Maternal and Fetal Health. Diagnostics (Basel). 2024; 15 (1): 47. https://doi.org/10.3390/diagnostics15010047
84. Vasudeva A., Kodavati H., Samanth J. et al. TVS-guided cervical strain elastography is more effective than measuring cervical length as an independent predictor of spontaneous preterm delivery in asymptomatic, high-risk women during the mid-trimester. J. Matern. Fetal. Neonatal. Med. 2024; 37 (1): 2381589. https://doi.org/10.1080/14767058.2024.2381589
85. Luca A.M., Haba R., Cobzeanu L.M. et al. Predicting Preterm Birth with Strain Ratio Analysis of the Internal Cervical Os: A Prospective Study. J. Clin. Med. 2023; 12 (12): 3885. https://doi.org/10.3390/jcm12123885
86. Thomsen C.R., Jensen M.S.S., Bor P. et al. Recommendations for strain elastography of the uterine cervix. Arch. Gynecol. Obstet. 2024; 310 (4): 2023–2033. https://doi.org/10.1007/s00404-024-07693-x
87. Seol H.J., Sung J.H., Seong W.J. et al. Standardization of measurement of cervical elastography, its reproducibility, and analysis of baseline clinical factors affecting elastographic parameters. Obstet. Gynecol. Sci. 2020; 63 (1): 42–54. https://doi.org/10.5468/ogs.2020.63.1.42
88. Duan H., Chaemsaithong P., Ju X. et al. Shear-wave sonoelastographic assessment of cervix in pregnancy. Acta Obstet. Gynecol. Scand. 2020; 99 (11): 1458–1468. https://doi.org/10.1111/aogs.13874
89. Wang B., Zhang Y., Chen S. et al. Diagnostic accuracy of cervical elastography in predicting preterm delivery: A systematic review and meta-analysis. Medicine (Baltimore). 2019; 98 (29): e16449. https://doi.org/10.1097/MD.0000000000016449
90. Nguyen-Hoang L., Chaemsaithong P., Cheng Y.K.Y. et al. Longitudinal evaluation of cervical length and shear wave elastography in women with spontaneous preterm birth. Ultrasound Obstet. Gynecol. 2024; 63 (6): 789–797. https://doi.org/10.1002/uog.27614
91. Lu H., Liu Y., Yang F., et al. The value of real-time shear wave elastography in spontaneous preterm birth. Medicine (Baltimore). 2024; 103 (33): e39288. https://doi.org/10.1097/MD.0000000000039288
92. Mlodawski J., Mlodawska M., Plusajska J. et al. Repeatability and reproducibility of quantitative cervical strain elastography (E-Cervix) in pregnancy. Sci. Rep. 2021; 11 (1): 23689. https://doi.org/10.1038/s41598-021-02498-3
93. Massó P., Melchor J., Rus G., Molina F.S. A Preliminary Study on the Safety of Elastography during Pregnancy: Hypoacusia, Anthropometry, and Apgar Score in Newborns. Diagnostics (Basel). 2020; 10 (11): 967. https://doi.org/10.3390/diagnostics10110967
94. Zhang C., Li N., Li C., Li J. A Safety Study of the Effects of 2-Dimensional Shear Wave Elastography on Synaptic Morphologic Characteristics and Function in the Hippocampus of Neonatal Mice. J. Ultrasound Med. 2021; 40 (1): 163–173. https://doi.org/10.1002/jum.15387
95. Wu D., Cao J., Xu M. et al. Fetal membrane imaging: current and future perspectives-a review. Front. Physiol. 2024; 15: 1330702. https://doi.org/10.3389/fphys.2024.1330702
96. Menon R., Moore J.J. Fetal Membranes, Not a Mere Appendage of the Placenta, but a Critical Part of the Fetal-Maternal Interface Controlling Parturition. Obstet. Gynecol. Clin. N. Am. 2020; 47 (1): 147–162. https://doi.org/10.1016/j.ogc.2019.10.004
97. Volpe N., di Pasquo E., Ferretti A. et al. Hyperechoic amniotic membranes in patients with preterm premature rupture of membranes (p-PROM) and pregnancy outcome. J. Perinat. Med. 2020; 49 (3): 311–318. https://doi.org/10.1515/jpm-2020-0223
Рецензия
Для цитирования:
Кривоносова Н.В., Макухина Т.Б., Кривоносова О.М. Возможности ультразвуковой диагностики в предикции спонтанных преждевременных родов (обзор литературы). Ультразвуковая и функциональная диагностика. 2026;32(1):42-55. https://doi.org/10.24835/1607-0771-353
For citation:
Krivonosova N.V., Makukhina T.B., Krivonosova O.M. Value of ultrasound in the prediction of spontaneous preterm birth: a literature review. Ultrasound & Functional Diagnostics. 2026;32(1):42-55. (In Russ.) https://doi.org/10.24835/1607-0771-353
JATS XML









