This extensive AWMF 085-002 S2e-guideline "First Trimester Diagnosis and Therapy @ 11-13+6 Weeks of Gestation" has systematically analyzed high-quality studies and publications and the existing evidence (evidence tables) and produced recommendations (level of recommendation, level of evidence, strength of consensus).This guideline deals with the following topics in the context of the 11-13+6 weeks scan: the legal basis, screening for anatomical malformations, screening for chromosomal defects, quality assessment and audit, screening for preeclampsia and FGR, screening for preterm birth, screening for abnormally invasive placenta (AIP) and placenta accreta spectrum (PAS), screening for velamentous cord insertion and vasa praevia, screening for diabetes mellitus and LGA.Screening for complications of pregnancy can best be carried out @ 11-13+6 weeks of gestation. The issues of how to identify malformations, chromosomal abnormalities and certain disorders of placentation (high blood pressure and proteinuria, intrauterine growth retardation) have been solved. The problem of how to identify placenta percreta and vasa previa has been partially solved. What is still unsolved is how to identify disorders of glucose metabolism and preterm birth.In the first trimester, solutions to some of these problems are available: parents can be given extensive counselling and the risk that a pregnancy complication will manifest at a later stage can be delayed and reduced. This means that screening is critically important as it helps in decision-making about the best way to manage pregnancy complications (prevention and intervals between follow-up examinations).If no treatment is available and if a termination of pregnancy is considered, the intervention can be carried out with far lower complications compared to the second trimester of pregnancy. In most cases, further examinations are not required and the parents can be reassured. A repeat examination at around week 20 of gestation to complete the screening for malformations is recommended. NOTE:: The guideline will be published simultaneously in the official journals of both professional societies (i.e. Ultraschall in der Medizin/European Journal of Ultrasound for the DEGUM and Geburtshilfe und Frauenheilkunde for the DGGG).
This extensive AWMF 085-002 S2e-guideline "First Trimester Diagnosis and Therapy @ 11-13(+6) Weeks of Gestation" has systematically analyzed high-quality studies and publications and the existing evidence (evidence tables) and produced recommendations (level of recommendation, level of evidence, strength of consensus). This guideline deals with the following topics in the context of the 11-13(+6) weeks scan: the legal basis, screening for anatomical malformations, screening for chromosomal defects, quality assessment and audit, screening for preeclampsia and FGR, screening for preterm birth, screening for abnormally invasive placenta (AIP) and placenta accreta spectrum (PAS), screening for velamentous cord insertion and vasa praevia, screening for diabetes mellitus and LGA. Screening for complications of pregnancy can best be carried out @ 11-13+6 weeks of gestation. The issues of how to identify malformations, chromosomal abnormalities and certain disorders of placentation (high blood pressure and proteinuria, intrauterine growth retardation) have been solved. The problem of how to identify placenta percreta and vasa previa has been partially solved. What is still unsolved is how to identify disorders of glucose metabolism and preterm birth. In the first trimester, solutions to some of these problems are available: parents can be given extensive counselling and the risk that a pregnancy complication will manifest at a later stage can be delayed and reduced. This means that screening is critically important as it helps in decision-making about the best way to manage pregnancy complications (prevention and intervals between follow-up examinations). If no treatment is available and if a termination of pregnancy is considered, the intervention can be carried out with far lower complications compared to the second trimester of pregnancy. In most cases, further examinations are not required and the parents can be reassured. A repeat examination at around week 20 of gestation to complete the screening for malformations is recommended. Note The guideline will be published simultaneously in the official journals of both professional societies (i.e. Ultraschall in der Medizin/European Journal of Ultrasound for the DEGUM and Geburtshilfe und Frauenheilkunde for the DGGG).
This extensive AWMF 085-002 S2e-guideline "First Trimester Diagnosis and Therapy @ 11 - 13 +6 of Gestation" has systematically analyzed high-quality studies and publications and the existing evidence (evidence tables) and produced recommendations (level of recommendation, level of evidence, strength of consensus). This guideline deals with the following topics in the context of the 11 - 13 +6 weeks scan: the legal basis, screening for anatomical malformations, screening for chromosomal defects, quality assessment and audit, screening for preeclampsia and FGR, screening for preterm birth, screening for abnormally invasive placenta (AIP) and placenta accreta spectrum (PAS), screening for velamentous cord insertion and vasa praevia, screening for diabetes mellitus and LGA. Screening for complications of pregnancy can best be carried out @ 11 - 13 +6 weeks of gestation. The issues of how to identify malformations, chromosomal abnormalities and certain disorders of placentation (high blood pressure and proteinuria, intrauterine growth retardation) have been solved. The problem of how to identify placenta percreta and vasa previa has been partially solved. What is still unsolved is how to identify disorders of glucose metabolism and preterm birth. In the first trimester, solutions to some of these problems are available: parents can be given extensive counselling and the risk that a pregnancy complication will manifest at a later stage can be delayed and reduced. This means that screening is critically important as it helps in decision-making about the best way to manage pregnancy complications (prevention and intervals between follow-up examinations). If no treatment is available and if a termination of pregnancy is considered, the intervention can be carried out with far lower complications compared to the second trimester of pregnancy. In most cases, further examinations are not required and the parents can be reassured. A repeat examination at around week 20 of gestation to complete the screening for malformations is recommended. Note: The guideline will be published simultaneously in the official journals of both professional societies (i.e. Ultraschall in der Medizin/European Journal of Ultrasound for the DEGUM and Geburtshilfe und Frauenheilkunde for the DGGG).
OBJECTIVE:We aimed to investigate how the presence of fetal anomalies and different X chromosome variants influences Cell-free DNA (cfDNA) screening results for monosomy X.METHODS:From a multicenter retrospective survey on 673 pregnancies with prenatally suspected or confirmed Turner syndrome, we analyzed the subgroup for which prenatal cfDNA screening and karyotype results were available. A cfDNA screening result was defined as true positive (TP) when confirmatory testing showed 45,X or an X-chromosome variant.RESULTS:We had cfDNA results, karyotype, and phenotype data for 55 pregnancies. cfDNA results were high risk for monosomy X in 48/55, of which 23 were TP and 25 were false positive (FP). 32/48 high-risk cfDNA cases did not show fetal anomalies. Of these, 7 were TP. All were X-chromosome variants. All 16 fetuses with high-risk cfDNA result and ultrasound anomalies were TP. Of fetuses with abnormalities, those with 45,X more often had fetal hydrops/cystic hygroma, whereas those with "variant" karyotypes had different anomalies.CONCLUSION:Both, 45,X or X-chromosome variants can be detected after a high-risk cfDNA result for monosomy X. When there are fetal anomalies, the result is more likely a TP. In the absence of fetal anomalies, it is most often an FP or X-chromosome variant.
ZusammenfassungDiagnostische Punktionen (Amniozentese, Chorionzottenbiopsie und Fetalblutentnahme) sind ein wesentlicher Bestandteil der Pränataldiagnostik und die einzige etablierte und wissenschaftlich ausreichend evaluierte Möglichkeit der Diagnostik genetischer Erkrankungen aus schwangerschaftsspezifischen Zellen. Die Anzahl diagnostischer Punktionen in Deutschland ist, wie in anderen Ländern, deutlich gesunken. Dies ist maßgeblich auf die Einführung des Ersttrimester-Screenings mit weiterführender detaillierter Ultraschalluntersuchung des Fetus und die Analyse von cf-DNA (cell-free DNA) aus maternalem Blut (sogenannter „Nicht Invasiver Pränataler Test“ – NIPT) zurückzuführen. Andererseits sind die Erkenntnisse über die Inzidenz und das Erscheinungsbild genetischer Erkrankungen gestiegen. Die Entwicklung moderner molekulargenetischer Techniken (Mikroarray- und Exom-Analyse) macht eine differenzierte Untersuchung dieser Erkrankungen mehr und mehr möglich. Die Anforderungen an Aufklärung und Beratung über diese komplexen Zusammenhänge sind dadurch wesentlich höher geworden. Die Studien der letzten Jahre machen deutlich, dass diagnostische Punktionen, die in Expertenzentren durchgeführt werden, mit einem niedrigen Risiko für Komplikationen assoziiert sind. Insbesondere der eingriffsbedingte Abort unterscheidet sich kaum vom Hintergrundrisiko für einen Spontanabort. Die Sektion Gynäkologie und Geburtshilfe der Deutschen Gesellschaft für Ultraschall in der Medizin (DEGUM) hat im Jahr 2013 Empfehlungen zu diagnostischen Punktionen in der Pränatalmedizin publiziert 1. Die oben geschilderten Entwicklungen und neuen Erkenntnisse der letzten Jahre machen eine Revision und Neuformulierung dieser Empfehlungen nötig. Ziel dieser Übersicht ist eine Zusammenstellung wichtiger und aktueller Fakten zu pränatalmedizinischen Punktionen (u.a. Technik, Komplikationen, genetische Untersuchungen). Sie soll der grundlegenden umfassenden und aktuellen Information über diagnostische Punktionen in der Pränatalmedizin dienen. Sie ersetzt die Publikation von 2013 1.
Diagnostic puncture (amniocentesis, chorionic villus sampling, and fetal blood sampling) is an essential part of prenatal diagnostics and the only established and sufficiently scientifically evaluated possibility of diagnosing genetic diseases from pregnancy-specific cells. The number of diagnostic punctures in Germany, as in other countries, has fallen significantly. This is largely due to the introduction of first-trimester screening with further detailed ultrasound examination of the fetus and the analysis of cf-DNA (cell-free DNA) from maternal blood (noninvasive prenatal test - NIPT). On the other hand, knowledge about the incidence and appearance of genetic diseases has increased. The development of modern molecular genetic techniques (microarray and exome analysis) makes a differentiated investigation of these diseases increasingly possible. The requirements for education and counseling regarding these complex correlations have thus increased. The studies performed in recent years make it clear that diagnostic puncture performed in expert centers is associated with a low risk of complications. In particular, the procedure-related miscarriage risk hardly differs from the background risk for spontaneous abortion. In 2013, the Section of Gynecology and Obstetrics of the German Society for Ultrasound in Medicine (DEGUM) published recommendations on diagnostic puncture in prenatal medicine 1. The developments described above and new findings in recent years make it necessary to revise and reformulate these recommendations. The aim of this review is to compile important and current facts regarding prenatal medical puncture (including technique, complications, genetic examinations). It is intended to provide basic, comprehensive, and up-to-date information on diagnostic puncture in prenatal medicine. It replaces the publication from 2013 1.
ObjectiveOmphalocele is known to be associated with genetic anomalies like trisomy 13, 18 and Beckwith-Wiedemann syndrome, but not with Turner syndrome (TS). Our aim was to assess the incidence of omphalocele in fetuses with TS, the phenotype of this association with other anomalies, their karyotype, and the fetal outcomes. MethodRetrospective multicenter study of fetuses with confirmed diagnosis of TS. Data were extracted from a detailed questionnaire sent to specialists in prenatal ultrasound. Results680 fetuses with TS were included in this analysis. Incidence of small omphalocele in fetuses diagnosed >= 12 weeks was 3.1%. Including fetuses diagnosed before 12 weeks, it was 5.1%. 97.1% (34/35) of the affected fetuses had one or more associated anomalies including increased nuchal translucency (>= 3 mm) and/or cystic hygroma (94.3%), hydrops/skin edema (71.1%), and cardiac anomalies (40%). The karyotype was 45,X in all fetuses. Fetal outcomes were poor with only 1 fetus born alive. ConclusionTS with 45,X karyotype but not with X chromosome variants is associated with small omphalocele. Most of these fetuses have associated anomalies and a poor prognosis. Our data suggest an association of TS with omphalocele, which is evident from the first trimester.
Mirror syndrome is a rare and serious maternal condition associated with immune and non-immune fetal hydrops after 16 weeks of gestational age. Subjacent conditions associated with fetal hydrops may carry different risks for Mirror syndrome. Fetuses with Turner syndrome are frequently found to be hydropic on ultrasound. We designed a retrospective multicenter study to evaluate the risk for Mirror syndrome among pregnancies complicated with Turner syndrome and fetal hydrops. Data were extracted from a questionnaire sent to specialists in maternal fetal medicine in Germany. Out of 758 cases, 138 fulfilled our inclusion criteria and were included in the analysis. Of the included 138, 66 presented with persisting hydrops at or after 16 weeks. The frequency of placental hydrops/placentomegaly was rather low (8.1%). Of note, no Mirror syndrome was observed in our study cohort. We propose that the risk of this pregnancy complication varies according to the subjacent cause of fetal hydrops. In Turner syndrome, the risk for Mirror syndrome is lower than that reported in the literature. Our observations are relevant for clinical management and parental counseling.
Purpose The aim of our study was to investigate spontaneous resolution and postnatal outcome in non-immune hydrops fetalis (NIHF). We specifically studied NIHF cases that occurred without any other anomalies in the prenatal diagnostic workup, defined as isolated NIHF (iNIHF). Methods To identify iNIHF we retrospectively classified prenatal findings of 700 NIHF singletons, diagnosed in our prenatal referral center between 1997 and 2016. We studied the occurrence of prenatal resolution in iNIHF and linked it to the perinatal outcome. We obtained long-term outcome by contacting the parents, children, and the pediatricians and listed all functional and structural anomalies and temporary logopedic, psychosocial and motoric impairments. Results Among 70 iNIHF cases, 54 (77.1%) resolved completely prenatally. The baby-take-home rate was 98.1% in these cases. In contrast, the baby-take-home rate in the subgroup without complete resolution was 25.0%. We achieved pediatric long-term outcome in 27 of 57 survivors (47.4%) of iNIHF with a mean follow-up period of 10.9 years. Among these 27 children, fetal hydrops had completely resolved prenatally in 26 cases and had regressed to a mild effusion in one case. In the pediatric development, two children had significant functional impairment and two children showed recurrent skin edema. Conclusion Complete spontaneous resolution was the most common intrauterine course of iNIHF in our collective. Completely resolved iNIHF had a favorable perinatal outcome in our study. Our data on the long-term outcomes are consistent with the assumption of an increased rate of functional impairments. Trial registry Internal study number of Heinrich-Heine-University, Duesseldorf: 6177R. Date of registration: December 2017.
Objective: The aim of the objective was to compare the detection rate for trisomy 21 of universal cell free DNA (cfDNA) screening with contingent screening. Methods: Retrospective study was carried out at 3 German centers. The study included euploid and trisomy 21 pregnancies where cfDNA and first trimester (FT) screening assessment was carried out. The FT risk for trisomy 21 was computed based on combined screening and stratified into the following classes: high risk ≥1:10, intermediate risk 1:11–1,000, low risk ≤1,001. For universal cfDNA screening, the cfDNA test results were examined. For the contingent screening model, the result of the cfDNA test was taken into account in case of an intermediate FT risk. Different strategies combining maternal age, nuchal translucency, nasal bone, beta-hCG, and PAPP-A were evaluated. Screen positivity was defined as either a high risk after FT screening or a cfDNA test indicating a high-risk result. An inconclusive cfDNA test was also considered as screen positive. Results: The search of the database identified 2,255 euploid and 163 affected pregnancies. All affected fetuses were identified by universal cfDNA screening. 1.3% of the euploid fetuses were classified as screen positive due to final inconclusive cfDNA test result. The detection and false-positive rate of a contingent approach that is based on combined screening and cfDNA screening in the intermediate group would be 98.4% and 0.7%, respectively. With this approach, cfDNA screening would be necessary in only about 27% of all pregnancies. Conclusion: This study demonstrates that a contingent approach provides similar detection rates for trisomy 21 as universal cfDNA screening, by a reduction of 73% the number of cfDNA tests.
Screening for chromosomal disorders, especially for trisomy 21, has undergone a number of changes in the last 50 years. Today, cell-free DNA analysis (cfDNA) is the gold standard in screening for trisomy 21. Despite the advantages that cfDNA offers in screening for common trisomies, it must be recognized that it does not address many other chromosomal disorders and any of the structural fetal anomalies. In the first trimester, the optimal approach is to combine an ultrasound assessment of the fetus, which includes an NT measurement, with cfDNA testing. If fetal structural defects are detected or if the NT thickness is increased, an amniocentesis or a CVS with at least chromosomal microarray should be offered.
Purpose A short fetal femur in prenatal diagnosis might be an indicator for intrauterine growth retardation (IUGR), a genetically determined small child (SGA) with or without associated fetal malformations and/or an adverse fetal outcome. Methods 1373 singleton pregnancies with a femoral length < 5th percentile detected between 1999 and 2015 during second-trimester screening in a tertiary prenatal diagnostic center were subjected to a descriptive retrospective analysis with regard to fetal characteristics as well as pregnancy outcome. Results 685 (49.9%) fetuses presented an isolated short femur, while 688 (50.1%) showed additional abnormalities. 293 (42.6%) of those were SGA babies without any malformation, while 395 (57.4%) had one or more severe anomaly of the following organ systems: 157 (11.5%) cardiovascular, 101 (7.4%) musculoskeletal, 82 (6.0%) urogenital, 72 (5.2%) cerebrocephalic, 50 (3.6%) gastrointestinal, and 5 (0.4%) thoracic. 75 (5.5%) of the fetuses showed chromosomal aberrations of which Trisomy 13, 18 and 21 were found in 2, 13 and 27 of the cases, respectively. Fetuses with associated malformations had a significantly lower live birth rate than those without (64.2% vs. 98.1%, p < 0.001); in addition, a higher rate of preterm births 36.6% vs. 11.3%, p < 0.001) and SGA babies (51.4% vs. 30.4%, p < 0.001) were observed in the first collective. Conclusion Diagnosis of a short fetal femur should lead to an extended organ screening; in the case of associated abnormalities, additional genetic testing has to be offered, as well as intensified pregnancy monitoring in pregnancies at risk for IUGR and/or preterm birth.
In 2019 the German Federal Joint Committee decided to introduce future reimbursement of screening for trisomy 21, 18 and 13 using cell-free DNA (non-invasive prenatal test, NIPT) as a service of the statutory health insurance. Access to screening is defined in counselling sessions by gynecologists. Risk thresholds or risk groups will not be defined so that access to the NIPT is principally available to every pregnant woman. The consultation for utilization is correspondingly complex, especially in the low-risk group of younger women. The coupling to a qualified ultrasound examination is so far not scheduled. The implementation in a contingent screening after combined first semester screening between 11 and 13 weeks is the most effective solution; however, this remains a self-paying service until further notice. In addition to the minimum version according to the current guidelines, various models for integration of the NIPT into the prenatal diagnostics are presented.
Objective: Concordance-analysis and evaluation of existing algorithms detecting late-onset preeclampsia during first trimester screeningMethods: Retrospective cohort study investigating risk algorithms of late-onset preeclampsia during first trimester screening in a German prenatal center. Three previously developed algorithms including anamnestic factors (Apriori) and biophysical markers (BioM) were investigated by using detection rates (DR) with fixed FPR 10% and fixed cutoff >1:100. Furthermore, we set up a concordance-analysis of test results in late-onset preeclampsia cases to examine the effect of influencing factors and to detect potential weaknesses of the algorithms. Therefore, we modeled the probability of discordances as a function of the influencing factors based on a logistic regression, that was fitted using a Bayesian approach.Results: 6,113 pregnancies were considered, whereof 700 have been excluded and 5,413 pregnancies were analyzed. 98 (1.8%) patients developed preeclampsia (79 late-onsets, 19 early-onsets). The Apriori-algorithm reaches a DR of 34.2%, by adding BioM (MAP and UtA-PI) the DR improves to 57.0% (FPR of 10%). In concordance-analysis of Apriori algorithm and Apriori+BioM algorithms, influencing factor BMI<25 increases the chance of discordances sigificantly. Additional, in the subgroup of late-onset preeclampsias with BMI<25 the DR is higher in Apriori+BioM algorithms than in Apriori algorithm alone. If both compared algorithms include BioM, influencing factor MAP decreases the chance of discordances significantly. All other tested influencing factors do not have a statistically significant effect on discordancesConclusion: Normal-weight patients benefit more from the integration of MAP and UtA-PI compared to overweight/obese patients.
Ultrasound was used for the first time in pregnancy in the 1960 s and then found broader clinical application in the 70 s and particularly in the 80 s, thereby revolutionizing obstetrics and ultimately resulting in the development of a new subspecialty: prenatal diagnosis and perinatal medicine. This means that ultrasound has been used for more than 40 years in pregnancy to examine fetuses. This development was facilitated on the one hand by the ease of use of the method and the resulting broad availability and on the other hand by the fact that ultrasound is an imaging method that does not require the use of physical radiation. This resulted in early differentiation from diagnostic radiology (classic abdominal X-ray, pelvic X-ray, amniofetography) and later also from computed tomography. Magnetic resonance imaging (MRI) has the potential to supplement ultrasound for targeted issues but is still very cost-intensive and has numerous limitations.
A short fetal femur in prenatal diagnostics (PND) might be an indication for intrauterine growth retardation (IUGR), a genetically determined small child (SGA) with or without associated fetal malformations and/or an adverse fetal outcome. 1373 singleton pregnancies with a femoral length < 5th percentile (Verburg et al. 2008) detected between 1999-2015 during second trimester screening in a tertiary prenatal diagnostic centre were subjected to a descriptive retrospective analysis with regard to maternal and fetal characteristics as well as pregnancy outcome. 669 (48.7%) fetuses presented with an isolated short femur, while 704 (51.3%) showed additional abnormalities. 263 (37.4%) of those were SGA babies without any additional malformation, while 441 (62.6%) had one or more severe malformation of the following organ systems: 158 (22.4%) cardiovascular, 101 (14.3%) musculoskeletal, 82 (11.6%) urogenital, 72 (10.2%) cerebrocephalic, 49 (7.0%) gastrointestinal, 5 (0.7%) thoracic. 75 (10.7%) of the fetuses showed chromosomal aberrations of which Trisomy 13, 18 and 21 were found in 2, 13 and 27 of the cases, respectively. Fetuses with associated malformations had a significantly lower live birth rate than those without (67.6% vs. 98.2%, p < 0.001); in addition, a higher rate of preterm births (26.1% vs. 10.3%, p < 0.001) and small for gestational age (SGA) babies (39.2% vs. 28.2%, p < 0.001) were observed in the first collective. Diagnosis of a short femur within the biometric measurement should lead to an extended organ screening; in the case of associated abnormalities additional genetic testing has to be offered as well as intensified pregnancy monitoring in pregnancies at risk for IUGR and/or preterm birth. Please note: The publisher is not responsible for the content or functionality of any supporting information supplied by the authors. Any queries (other than missing content) should be directed to the corresponding author for the article.
Objective To investigate the clinical relevance of an isolated echogenic cardiac focus (iECF) as a marker for trisomy 21 using a large second-trimester collective including a low-risk subgroup. Materials and Methods We retrospectively evaluated 1 25 211 pregnancies from 2000-2016 and analyzed all iECF cases with regard to chromosomal anomalies. It consisted of an early second-trimester collective from 14 + 0 - 17 + 6 weeks (n = 34 791) and a second-trimester anomaly scan collective from 18 + 0-21 + 6 weeks. Two a priori risk subgroups (high and low risk) of the latter were built based on maternal age and previous screening test results using a cut-off of 1:300. Likelihood ratios (LR) of iECF for the detection of trisomy 21, trisomy 13, trisomy 18 and structural chromosomal anomalies were estimated. Results In total, 1 04 001 patients were included. An iECF was found in 4416 of 1 02 847 euploid fetuses (4.29 %) and in 64 of 557 cases with trisomy 21 (11.49 %) giving a positive LR of 2.68 (CI: 2.12-3.2). The sensitivity was 11.5 % at a false-positive rate of 4.29 % (CI:4.17-4.42) with p = 0.01 %. In the high-and lowrisk subgroups, the prevalence of iECF was comparable: 5.08 % vs. 5.05 %. The frequency of trisomy 21 was 0.39 %, 98/24 979 vs 0.16 %, 69/44 103. LR + was 3.86 (2.43-5.14) and 2.59 (1.054). For both subgroups the association of iECF with trisomy 21 was statistically significant. The prevalence of structural chromosomal anomalies in the second-trimester anomaly scan collective was 0.08 % (52/68 967), of which 2 showed an iECF. Conclusion The detection of an iECF at the time of 14 + 0-21 + 6 weeks significantly increases the risk for trisomy 21 in the high-risk and in the low-risk subgroups and does not statistically change the risks for trisomy 13/18 or structural abnormalitie.
Sex differences in mental rotation, robust in adults, have recently been reported for infants’ looking times although the pattern of results is not completely conclusive. In this context, organizational effects of gonadal steroids affecting the neural circuitry underlying spatial cognition could be (partly) responsible for the early sex difference. In the present study testosterone and estradiol levels measured in amniotic fluid via ultra performance liquid chromatography and tandem mass spectrometry were used to examine the role of prenatal sex hormones on infants’ looking times during mental rotation. N = 208 six-month-old infants participated in an expectation of violation task with 3D cube figures. Mental rotation was defined as the difference in looking times for familiar versus mirrored cube figures whereas vigilance was defined as the sum of both looking times. Sex differences were absent for mental rotation as well as for vigilance. Most importantly, however, for boys mental rotation but not vigilance was correlated with prenatal testosterone but not with estradiol. For girls mental rotation but not vigilance was correlated with prenatal estradiol but not with testosterone although it has to be noted that the testosterone values for girls suffered from a floor effect. Only 5% of the within-sex variance was due to prenatal sex hormones indicating small effects. These findings extend our knowledge concerning organizational effects of prenatal sex hormones on the brain circuitry underlying spatial cognition.