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Chapter 10 - Fetal Vascular Malperfusion

from Section 4 - Fetal Stromal-Vascular Pathology

Published online by Cambridge University Press:  03 September 2018

Raymond W. Redline
Affiliation:
Case Western Reserve University, Ohio
Theonia K. Boyd
Affiliation:
Harvard Medical School, Boston
Drucilla J. Roberts
Affiliation:
Harvard Medical School, Boston
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Publisher: Cambridge University Press
Print publication year: 2017

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References

Chan, JS, Baergen, RN. Gross umbilical cord complications are associated with placental lesions of circulatory stasis and fetal hypoxia. Pediatr Dev Pathol. 2012;15:487–94.Google Scholar
Ryan, WD, Trivedi, N, Benirschke, K, et al. Placental histologic criteria for diagnosis of cord accident: sensitivity and specificity. Pediatr Dev Pathol. 2012;15:275–80.CrossRefGoogle ScholarPubMed
Tantbirojn, P, Saleemuddin, A, Sirois, K, et al. Gross abnormalities of the umbilical cord: related placental histology and clinical significance. Placenta. 2009;30:1083–88.Google Scholar
Parast, MM, Crum, CP, Boyd, TK. Placental histologic criteria for umbilical blood flow restriction in unexplained stillbirth. Hum Pathol. 2008;39:948–53.Google Scholar
Chisholm, KM, Heerema-McKenney, A. Fetal Thrombotic Vasculopathy: Significance in liveborn children using proposed Society for Pediatric Pathology diagnostic criteria. Am J Surg Pathol. 2015;39:274–80.Google Scholar
Saleemuddin, A, Tantbirojn, P, Sirois, K, et al. Obstetric and perinatal complications in placentas with fetal thrombotic vasculopathy. Pediatr Dev Pathol. 2010;13:459–64.CrossRefGoogle ScholarPubMed
Ernst, LM, Minturn, L, Huang, MH, et al. Gross patterns of umbilical cord coiling: correlations with placental histology and stillbirth. Placenta. 2013;34:583–8.Google Scholar
Khong, Y, Mooney, EE, Ariel, I, et al. Sampling and Definitions of Placental Lesions: Amsterdam Placental Workshop Group Consensus Statement. Arch Pathol Lab Med. 2016;140:698713.Google Scholar
Chisholm, KM, Heerema-McKenney, A. Fetal thrombotic vasculopathy: significance in live born children using proposed society for pediatric pathology diagnostic criteria. Am J Surg Pathol. 2015;39:274–80.Google Scholar
Redline, RW, Ariel, I, Baergen, RN, et al. Fetal vascular obstructive lesions: nosology and reproducibility of placental reaction patterns. Pediatr Dev Pathol. 2004;7:443–52.Google Scholar
Strong, TH Jr, Jarles, DL, Vega, JS, et al. The umbilical coiling index. Am J Obstet Gynecol. 1994;170:2932.Google Scholar
Mittal, A, Nanda, S, Sen, J. Antenatal umbilical coiling index as a predictor of perinatal outcome. Arch Gynecol Obstet. 2015;291:763–8.Google Scholar
Dutman, AC, Nikkels, PG. Umbilical hypercoiling in 2nd- and 3rd-trimester intrauterine fetal death. Pediatr Dev Pathol. 2015;18:10–6.CrossRefGoogle ScholarPubMed
Georgiadis, L, Keski-Nisula, L, Harju, M, et al. Umbilical cord length in singleton gestations: a Finnish population-based retrospective register study. Placenta. 2014;35:275–80.CrossRefGoogle ScholarPubMed
Baergen, RN, Malicki, D, Behling, C. Morbidity, mortality, and placental pathology in excessively long umbilical cords: retrospective study. Pediatr Dev Pathol. 2001;4:144–53.Google Scholar
Proctor, LK, Fitzgerald, B, Whittle, WL, et al. Umbilical cord diameter percentile curves and their correlation to birth weight and placental pathology. Placenta. 2013;34:62–6.CrossRefGoogle ScholarPubMed
Parast, MM, Crum, CP, Boyd, TK. Placental histologic criteria for umbilical blood flow restriction in unexplained stillbirth. Hum Pathol. 2008;39:948–53.Google Scholar
Desa, DJ. Intimal cushions in foetal placental veins. J Pathol. 1973;110:347–52.Google Scholar
Genest, DR. Estimating the time of death in stillborn fetuses: II. Histologic evaluation of the placenta; a study of 71 stillborns. Obstet Gynecol. 1992;80:585–92.Google ScholarPubMed
Treacy, A, Higgins, M, Kearney, JM, et al. Delayed villous maturation of the placenta: quantitative assessment in different cohorts. Pediatr Dev Pathol. 2013;16:63–6.Google Scholar
Stallmach, T, Hebisch, G, Meier, K, et al. Rescue by birth: defective placental maturation and late fetal mortality. Obstet Gynecol. 2001;97:505–9.Google Scholar
Pathak, S, Lees, CC, Hackett, G, et al. Frequency and clinical significance of placental histological lesions in an unselected population at or near term. Virchows Arch. 2011;459:565–72.Google Scholar
Leistra-Leistra, MJ, Timmer, A, van Spronsen, FJ, et al. Fetal thrombotic vasculopathy in the placenta: a thrombophilic connection between pregnancy complications and neonatal thrombosis? Placenta. 2004;25 SupplA:S102–5.Google Scholar
Ernst, LM, Bit-Ivan, EN, Miller, ES, et al. Stillbirth: correlations between brain injury and placental pathology. Pediatr Dev Pathol. 2016;19:237243.CrossRefGoogle ScholarPubMed
Chang, KT, Keating, S, Costa, S, et al. Third-trimester stillbirths: correlative neuropathology and placental pathology. Pediatr Dev Pathol. 2011;14:345–52.Google Scholar
Redline, RW, Pappin, A. Fetal thrombotic vasculopathy: the clinical significance of extensive avascular villi. Hum Pathol. 1995;26:8085.Google Scholar
Redline, RW. Cerebral palsy in term infants: a clinicopathologic analysis of 158 medicolegal case reviews. Pediatr Dev Pathol. 2008;11:456–64.Google Scholar
Redline, RW. Severe fetal placental vascular lesions in term infants with neurologic impairment. Am J Obstet Gynecol. 2005;192:452–57.Google Scholar
Wintermark, P, Boyd, T, Parast, MM, et al. Fetal placental thrombosis and neonatal implications. Am J Perinatol. 2010;27:251–56.Google Scholar
Bernson-Leung, ME, Boyd, TK, Meserve, EE, et al. Placental pathology in neonatal stroke: A retrospective case-control study. J Pediatr. 2018; 195:39–47.CrossRefGoogle Scholar
Dahms, BB, Boyd, T, Redline, RW. Severe perinatal liver disease associated with fetal thrombotic vasculopathy. Pediatr Dev Pathol. 2002;5:80–5.CrossRefGoogle ScholarPubMed

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