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Diagnostic and Clinical Significance of Doppler Ultrasound in Obstetrics
154
Tabelle 17.1 Prospective randomized studies of the clinical sig­nificance of Doppler ultrasound in pregnancy.
Lead author n Vascular
Davies (31) 2475 UA + ut CW Screen −m Mason (76a) 2025 UA CW Screen −m Whittle (125) 2986 UA CW Screen −m McParland (78) 509 UA + ut PW H., Rest. −m Tyrrell (113) 500 UA + ut CW High risk −m Newnham (83 504 UA + ut CW High risk −m Trudinger (111) 300 UA CW High risk −m Hofmeyr (58) 897 UA CW High risk −m Omtzigt (86) 1598 UA CW High risk +M Almström (2) 426 UA PW* Rest. +M
UA: Umbilical artery
3
ut: Uteroplacental arteries CW: Continuous wave Doppler PW: Pulsed wave Doppler H: Hypertension Rest.: Intrauterine growth restriction
−m: Individual clinical management “by best ef fort” +M: Standardized management according to protocol
*: Without B-mode imaging
Screen: Screening examination High risk: High risk: Examination for high-risk pregnancy
bed
Doppler pro­cedure
best judgment into the obstetric management of each case in the Doppler group. In the control group, by con­trast, Doppler readings were either not taken or not made available. The goal was to discover to what ex­tent Doppler ultrasound influences obstetric manage­ment, and whether the consequent interventions (out­patient or inpatient monitoring, aspirin prophylaxis, stress tests, induction of labor, primary cesarean sec­tion, etc.) improve the outcome of the pregnancy (Newnham et al. 1991, Tyrrell et al. 1990).
Uteroplacental Arteries
Only one study of this type addressing the utero­placental circulation has been carried out (McParland et al. 1990). It examined the effectiveness of adminis­tering low-dose acetylsalicylic acid (ASA) for an abnor­mal Doppler finding in the uteroplacental circulation, known as aspirin prophylaxis. The study population was confined to nulliparae who had two abnormal Doppler findings, once at a screening examination at
18 weeks, the second time at a control examination at
24 weeks. The study evaluated the effect of 75 mg ASA vs. placebo. The study showed that aspirin adminis­tered under these conditions reduced preeclampsia and other hypertensive complications of pregnancy as well as the rate of subsequent cesarean sections. Blood loss was comparable in the two groups and there were no significant side effects. Intrauterine fetal death oc­curred in three patients with severe hypertension in
Indica­tion
Man­age­ment
the placebo group, but this incidence did not reach statistical significance. Thus, in this study the treat­ment decision was aided by Doppler ultrasound, the aim being to establish which patients might benefit from the administration of aspirin.
In some of the clinical studies described in the fol­lowing section the uteroplacental circulation was ex­amined as well as the umbilical aa., and both findings were incorporated in the clinical management of the Doppler group (Davies et al. 1992, McParland and Pearce 1988, Newnham et al. 1991, Tyrrell et al. 1990).
Umbilical Arteries
Analysis of Individual Clinical Doppler Studies
The first prospective randomized study anywhere of clinical management using Doppler ultrasound in high-risk pregnancies was that of Trudinger et al. (1987). The vessel examined was the umbilical a., and in the Doppler group the finding was shared with the responsible obstetrician. The procedure reduced the frequency of threatened prenatal hypoxemia and the frequency of secondary cesarean section compared to the control group. On the other hand, there were no differences in the duration of gestation, birth weight, and the frequency of total or elective cesarean sections. Hence the findings of Doppler sonography of the umbilical aa. made it easier to detect which infants would be able to tolerate vaginal delivery and which would not. Using comparisons from clinical records, the same workers later found that perinatal mortality declined significantly in their institution from the time Doppler ultrasound was introduced in clinical man­agement (Trudinger et al. 1991).
Shortly after that McParland and Pearce (1988), in a prospective randomized study of pregnancies compli­cated by hypertension and/or growth restriction, found that with Doppler examinations antenatal in­patient stay, rate of inductions, and even perinatal mortality was signicantly reduced. Newnham et al. (1991) by contrast found no clinical effect using Dop­pler ultrasound and no influence on perinatal morbid­ity or mortality. Tyrrell et al. (1990) compared the in­troduction of Doppler ultrasound and a biophysical profile in high-risk pregnancies with selective use of these techniques in a few cases. They found a signifi­cant reduction in neonatal depression and early mor­bidity with regular use, but no difference in perinatal morbidity. Hofmeyr et al. (1991) compared Doppler sonography of the umbilical a. with computer-aided CTG analysis during primary monitoring of high-risk pregnancies. They found a significant reduction in the frequency of secondary cesarean sections in the Dop­pler group. The gross perinatal mortality was cut in half, but this difference disappeared when cases with
Studies of Clinical Significance
lethal malformations were excluded (Giles and Bisits
1993). By contrast Davis et al. (1992) even found a fourfold
increase in perinatal mortality in the Doppler group. However, analysis of the clinical management reveled that 85% (!) of the patients in this group had only a single Doppler examination after the 22nd week, and that in all cases with intrauterine fetal death the last Doppler examination had been performed two to five
weeks previously. This error must be attributed to the lack of standard management protocol,so that possible abnormalities arising before the death of the fetus
were not detected. According to Trudinger et al. (1991), serial, i. e., regular examinations, were not performed in this series in 85 % of the subjects, but are essential for prognostic significance, since placental insuffi­ciency and associated changes in the Doppler findings can be a progressive process.
Observational studies addressing the clinical signifi­cance of Doppler ultrasound lead to the expectation that Doppler ultrasound can improve especially the clinical management of IUGR. This applies not only to the detection of genuinely growth-restricted fetuses, but also to the avoidance of unnecessary diagnostic measures in the presence of, for example, a constitu­tionally small fetus (Redman 1989). A criterion for intervention either by intensive surveil­lance or elective delivery would appear to be the end­diastolic block in the umbilical a. because of its highly significant association with perinatal morbidity and mortality (Beattie et al. 1994, Pardi et al. 1993, Thorn­ton and Lilford 1993).
These considerations were explored by Alström et al. (1992) in a Scandinavian multicenter study of IUGR. In contrast to the previously cited studies, this prospec­tive randomized study included a complete standard­ized management protocol. It essentially mandated the comparison of CTG with Doppler sonographyof the umbilical a. during basic monitoring of the pregnancy as well as primary cesarean section for Doppler sono-
graphic evidence of complete diastolic block after 32
weeks. The result showed significant reductions in in­ductions and secondary sections, while antenatal and neonatal inpatient stays were shorter. On the other hand, this study, too, found no difference in the total section rate and the duration of the pregnancy. Hence clinical use of Doppler ultrasound optimized obstetric management without increasing prematurity or the rate of cesarean sections.
Nienhuijs et al. (1990) similarly reported on the use of Doppler ultrasound in the decision whether to con­tinue ambulatory management or to admit for in­patient care in the management of growth restriction.
The incidence of inpatient care was significantly
smaller in the Doppler group than in the control group,
while the outcome of the pregnancy in general was
comparable between the groups. This result is con-
suitable
Doppler
sonant with the observation that pregnancies with growth restriction, but normal Doppler finding, run an essentially normal course.
Omtzigt et al. (1994) conducted a randomized con­trolled study to assess the clinical significance of Dop­pler sonography of the umbilical aa. in an unselected clinic population. This study also included a standard­ized management protocol. This required that Doppler ultrasound was introduced in the Doppler group only when there was a risk to the fetus. The study found no difference in clinical course or perinatal morbidity, but there was a significant reduction in perinatal mortal­ity, both raw and when lethal fetal malformations were excluded. Neonatal mortality was not increased in this study, i.e., the reduction in perinatal mortality was not the result of a shift in fetal mortality into the neonatal period.
Cumulative Metaanalysis
None of the cited studies in itself contains a sufficient number of patients to demonstrate additional reduc­tions in perinatal mortality, since this is already quite low. From this point of view the reduction in perinatal mortality found in the study of Omtzigt et al. (1994) cited above can be viewed as the result of chance. Using metaanalysis, however, it is possible to collect the individual results of a number of different studies that are similar in design and to evaluate them by means of formal statistical methods (Collins et al. 1987, Thompson and Pocock 1991). The cumulative results can then be expressed as a typical odds ratio (OR) with its associated confidence interval (95% CI). If the num­ber 1 (no effect) lies outside this interval, a significant effect of the intervention, with an error 쏝5 %, has been demonstrated. Prospective randomized studies of in­terventions collected for metaanalysis must fulfill other methodological and statistical quality criteria. Giles and Bisits (1993) undertook a corresponding evaluation of all studies that appeared in English before 1991 and abstracted the essential results of six studies in a metaanalysis ( method the typical OR for the effect of Doppler ultra­sound on the raw perinatal mortality in high-risk preg­nancies was 0.50 and the effect on the incidence of stillbirth after exclusion of lethal malformations 0.54. Hence integrating Doppler sonography of the umbilical aa. into the clinical management of high-risk pregnan­cies leads to a halving of the mortality figures. It is worth mentioning that this clinical advantage was achieved without any increase in perinatal or maternal morbidity.
A metaanalysis of just four of the six cited interven­tional studies (McParland and Pearce 1988, Newnham et al. 1991, Omtzigt et al. 1994, Trudinger et al. 1987) based on the Oxford and Cochrane databases for clini­cal studies in perinatal medicine also showed that the
Tables 17.2,17.3). By this
Advanced Topics
155
Diagnostic and Clinical Significance of Doppler Ultrasound in Obstetrics
Table 17.2 Effects of Doppler vs. conventional management on perinatal mortality. Metaanalysis after Giles and Bisits
Lead Author Doppler Control OR 95 % CI
Trudinger (111) 1/133 5/167 0.32 (0.06−1.62) McParland (78) 6/254 20/255 0.32 (0.15−0.71) Omtzigt (86)* 16/809 28/789 0.56 (0.31−1.01) Almström (2) Hofmeyr (58) 4/438 8/459 0.53 (0.17−1.67) Newnham (83) 9/254 9/251 0.99 (0.39−2.53)
Metaanalysis: 0.50 (0.34−0.73)
OR:Odds Ratio CI: Confidence interval
*: Fir st published in 1990 as PhD thesis at the University of Utrecht
#
: Results were presented at the International Perinatal Doppler Society
meeting, 1991, Malmö, Sweden (J. Matern. Fetal Invest. 1: 127, 1991, abstract)
3
Table 17.3 Effects of Doppler vs. conventional management on the corrected Bisits.
Lead Author Doppler Control OR 95 % CI
Trudinger (111) 0/133 1/167 0.17 (0.00−8.58) McParland (78) 1/254 4/255 0.30 (0.05−1.74) Omtzigt (86)* 10/809 22/789 0.45 (0.23−0.91) Almström (2) Hofmeyr (58) 1/438 1/459 1.05 (0.07−16.79) Newnham (83) 9/254 9/251 0.99 (0.39−2.53) Metaanalysis: 0.54 (0.32−0.89)
Cf. Table 17.2)
Table 17.4 Effect of Doppler vs. conventional management on perinatal mortality of twin pregnancies. Historical comparisons.
Mortality Doppler
Perinatal:
− total 4 11 0.31 0.05
− corrected: 2 8 0.21 ⬍ 0.05 intrauterine: 1 6 0.14 0.05
n: Number of twin gestations with viable fetuses ex-
Mortality numbers: Number of individual affected fetuses or neonates RR: Relative risk
#
0/214 3/212 0.13 (0.01−1.28)
$
stillbirth rate. Metaanalysis after Giles and
#
0/214 2/212 0.13 (0.01−2.14)
(n = 112)
amined 28 weeks
Controls (n = 95)
RR Chi2test,
P
clinical use of Doppler ultrasound in high-risk preg­nancies halved the refined perinatal mortality (typical OR: 0.51; 95% CI: 0.32−0.80).
Diastolic Reverse Flow
Management for (end-)diastolic reverse flow in the umbilical a. has also been examined in a prospective study, specifically in pregnancies between 23 and 29 weeks (Hadi et al. 1991). Admittedly, in this study the Doppler results in both groups had to be open. In the intervention group immediate cesarean section was performed, while the control group was treated expec­tantly. In the intervention group 3 out of 10 newborns died of immaturity, while all 10 fetuses in the control group died in utero within 2 to 10 days. Further peri­natological data could not be derived from the paper, which was published only in abstract. In our own patients with reverse flow in the umbilical a. we found a median birthweight of only 600 g and a gestational age of only 28 weeks. Thus, every other fetus did not even attain a birthweight of 600 g and did not reach 28 weeks, but either died before that time in utero or had to be delivered sooner by cesarean section b ecause of an abnormal CTG (Gonser et al. 1993b). In view of these extremely low birth weights, under the 1st percentile (Roemer et al. 1990), and the immaturity, no standard­ized procedure can be offered at this time.
Multiple Pregnancy
A study that addresses clinical significance of Doppler ultrasound in multiple pregnancy is that published by Giles et al. (1988). Because of the low rate of twin preg­nancies, a randomized study was not possible. Hence the study compared the intervention group with the chart review of a control group. The result was a signif­icant reduction in both raw as well as refined perinatal mortality (by a factor of 3 or 4!). This effect related principally to a reduction in the incidence of in-
Table
trauterine fetal deaths ( dies there was no negative effect on gestational age or the mode of delivery.
17.4) and as in other stu-
156

Conclusions

Numerous observational studies have demonstrated that Doppler ultrasound provides an efficient mode of monitoring high-risk pregnancies, especially when there is a predisposition to hypertensivecomplications of pregnancy or for IUGR. Growth-restricted fetuses have a higher perinatal morbidity and mortality than full-grown infants (Heinomen et al. 1985, Jones and Roberton 1984, Low et al. 1975) and hence require in-
tensive perinatal monitoring. In this respect the Dop­pler procedure is not as suitable for a primary diagno­sis of such retardation as for the identification of actual nutritional and respiratory deficiencies in a growth re­striction previously detected by ultrasound (Lowery et al. 1990, Malcus et al. 1991, Maršál 1991). If a fetus has been found to be small by biological measurements, and the pregnancy is unremarkable with normal Dop-
Conclusions
pler findings, the prognosis over the remaining course of the pregnancy is very favorable and ambulatory monitoring appears to be adequate (Almström et al. 1992,Burke et al. 1992, Maršál and Persson 1988, Nien­huijs et al. 1990, Redman 1989, Rochelson et al. 1987b).
Pardi et al. (1993) suggested adding umbilical cord puncture with blood gas analysis to optimize the man­agement of IUGR with abnormal Doppler findings in the umbilical a. However, the risk of inducing brady­cardia by such a puncture is especially great in these fetuses (in growth restriction: 15% to 18%; in end-dias­tolic block as much as 21%) (Weiner et al. 1991). Hence such a procedure needs to be clarified by suitable con­trolled interventional studies (Soothill 1993a).
Compared to the number of observational studies addressing diagnostic significance, there are consider­ably fewer interventional studies addressing clinical significance. The intervention consisted of the integra­tion of Doppler findings into clinical management, but in most cases no standardized management protocol
was provided. In almost all interventional studies Dop­pler ultrasound had a positive effect on obstetric man­agement, resulting in improved pregnancy outcome.
In two of the cited controlled interventional studies the integration of Doppler ultrasound into obstetric management resulted in the observation that perinatal mortality was significantly reduced (McParland and Pearce 1988, Omtzigt et al. 1994), even though these studies were not designed to demonstrate this effect.
This fact limits the value of this result (Altman 1983). If, for instance, a study is to show that the introduction of a new procedure into obstetric management reduces the perinatal mortality from, say, 5 to 2.5 per 1000, the study group and the control group each must include close to 10 000 patients for such a clinical study to have a level of significance of 5% (α error 쏝 5 %) and a powerofover80%(β error 쏝 20 %) (Lilford 1987 and
1989). An indirect solution of this dilemma is provided by a cumulative metaanalysis of several individual, correspondingly well-documented comparable stu­dies, such as were registered in the Oxford database for perinatal studies (Chalmers et al. 1986). In addition, the number of cases required can be reduced by con­fining the study to high-risk pregnancies, since a sig­nificant reduction is more likely to be attained when the initial mortality is higher. Adhering to these prin­ciples, Giles et al. conducted an exemplary metaanaly­sis of management studies published in England up to and including 1991. The study proved that the peri­natal mortality was cut in half in high-risk pregnancies
when Doppler ultrasound was used, without any nega­tive effect on maternal and neonatal morbidity (Giles
and Bisits 1993). However, these results should un­dergo further critical review. Beyond that, with few ex­ceptions, there are no concrete procedural guides for the integration of Doppler ultrasound into obstetric management. In this respect clear indications are im­perative, not least because some reservations have been expressed recently concerning the safety of the acoustic intensity of pulsed Doppler instruments (European Federation of Societies for Ultrasound in Medicine and Biology [EFSUMB] 1992).
For the statistical reasons noted above a measurable clinical usefulness of Doppler ultrasound can only be expected with wide application and standardized pro­cedures (De Bono et al. 1992, Thornton and Lilford
1993). Hence an examination that is to be used clini­cally must be simple to perform and robust. These re­quirements were best met by examinations of the umbilical aa. (Maršál 1991). Controlled interventional studies of the clinical significance of Doppler sonogra­phy of other fetal vessels, such as aorta, cerebral ves­sels, IVC, or umbilical v.’s, are still pending. Given the differentiated insight into fetal pathophysiology these would provide, an even more favorable influence on clinical management might be expected. Women at 24−32 weeks of gestation might even benefit from such studies, for in problem cases this is the time when it is imperative to determine the diagnostic measures and the clinical management best suited to find the optimal time for delivery between increased in­trauterine risk and severe immaturity (Thornton and Lilford 1993).
The perinatal prognosis in high-risk pregnancies can at best be improvedto the extentthat the development of pathology can still be influenced at the point in time when the findings are obtained. Hence a differential diagnosis in high-risk pregnancies should be made at a point in time when they are still accessible to treat­ment. An example for such an approach is the selection by Doppler ultrasound of those pregnant women who could benefit from the administration of low-dose aspirin to reduce the risk of hypertensive complica­tions of pregnancy (McParland et al. 1990). An effective differential diagnosis is important, for indeed the Col­laborative Low-dose Aspirin Study in Pregnancy (CLASP study) led to a significant reduction in the frequency of preeclampsia and halving of the perinatal mortality under 32 weeks (5.3 % vs. 10.6%) only when a daily dose of 60 mg aspirin was targeted to the prophy­laxis of preeclampsia. In contrast, administering aspirin in all high-risk pregnancies without such diag­nosis proved to be useless (CLASP 1994).
Advanced Topics
157
Diagnostic and Clinical Significance of Doppler Ultrasound in Obstetrics

Summary

3
Diagnostic significance is measured by the reliability with which Doppler parameters in pregnancy are as­sociated or correlated with outcome parameters. The measure of clinical signif icance, on the other hand, is how effective the clinical introduction of the pro­cedure is in improving the course and outcome of the pregnancy. Therefore, the adequate procedure to measure diagnostic significance is the observational study, while the ideal procedure to measure clinical significance is the prospective, randomized manage­ment or interventional study.
The literature contains numerous observational stu­dies addressing diagnostic significance. These show that there is a significant link between abnormal Dop­pler findings and the consecutive obstetric patholo­gies: growth restriction, prematurity, acidosis by cor­docentesis, abnormal prenatal CTG, neonatal depres­sion and acidosis, and neonatal intensive care.
Such findings, however, should in no way lead to the conclusion that the information so obtained can im­prove pregnancy outcome. That question can only be answered by suitable clinical management studies. In
the prospective randomized studies currently availa­ble, a positive clinical effect was demonstrated in high­risk pregnancies. These studies showed that compared to the control group the Doppler group resulted in a re­duction in prenatal and neonatal inpatient stays, in­duction rate, and frequency of secondary cesarean sec­tion. At the same time there was no difference in the duration of gestation or the total section rate.
However, none of the studies contained a sufficient number of patients to substantiate a further reduction in the already very low perinatal mortality with any as­surance. Nevertheless, using cumulative metaanalysis, the discrete effects of individual well-documented stu­dies with similar design can be collected and eval­uated. Such studies show that the introduction of Dop­pler ultrasound into the clinical management of high­risk pregnancies leads to a halving of the raw as well as the refined mortality. It should be mentioned that this effect is achieved without an increase in neonatal or maternal morbidity and without a shift of fetal mortal­ity into the neonatal period.
158

18 Doppler Sonography of the Fetal Venous Circulation

It is known from numerous animal studies on sheep and primate fetuses that the venous circulation, con­sisting of umbilical v. (UV), ductus venosus (DV), portal
v.’s, hepatic v.’s, inferior vena cava (IVC), and the right
atrium with the foramen ovale, reflects the central
venous pressure and cardiac function. It is also known to play an important role in the regulation of the fetal circulation.
Blood flow in the UV was measured even before the application of Doppler ultrasound in obstetrics in 1980, especially volume flow to monitor fetuses with rhesus incompatibility (Eik-Nes et al. 1980). Subsequent stu­dies concentrated increasingly on the arterial blood
vessels of the fetus and on the uterus. Only after the
advent of color Doppler ultrasound did it become

Anatomy

Oxygenated blood from the placenta reaches the body of the fetus through the venous system. The UV enters the fetal abdomen and first runs acutely backward and upward, then divides in the liver into the portal v. (PV) and the DV. From this point, known as the portal sinus, the left PV runs to the right, while the DV runs to the left and in a dorsocranial direction, as it were the con-
18.1).
tinuation of the UV (
Fig.
possible to record the rest of the venous circulation with its narrower vessels and in part very slow blood flow velocities, and to display the anatomical peculi­arities of the humans fetus.
Since the beginning of the last decade studies of blood flow in the IVC and the DV were primarily selected for study, but flow in the hepatic v.’s and around the foramen ovale was also studied (Reed et al. 1990, Huisman et al. 1991 and 1992b, Kiserud et al. 1992a, Rizzo et al. 1992, Hecher et al. 1994).
More recently Doppler studies designed to extend our understanding of the fetal circulation in health and disease have also included the conditions of flow in the superior vena cava, the portal v.’s, and the pulmonary v.’s.
The DV is a trumpet-shaped connection between the UV and the proximal part of the IVC. It is only 2 mm wide at its origin.
The left PV anastomoses with the branches of the right PV, and both supply placental blood to the right lobe of the liver, which receives 80% of the hepatic circulation. The venous drainage takes place through the wide-branching right hepatic v. (RHV) (
Fig. 18.2),
Advanced Topics
Fig. 18.1 Umbilical vein (UV) and ductus venosus (DV) dis­played in a cross section of the fetal abdomen. (LHV = left he­patic vein)
Fig. 18.2 Right hepatic vein (RHV) displayed in a cross section of the fetal abdomen.
159
Doppler Sonography of the Fetal Venous Circulation
Fig. 18.3 Longitudinal section of the fetal abdomen with dis­play of the junction of the precordial v.’s at the upper portion of the inferior vena cava (IVC). (UV = umbilical vein, DV = ductus venosus, HV = hepatic vein)
3

Physiology

the main branch of which is the most proximal of the precordial v.’s to drain into the IVC. The UV itself sup­plies the left lobe of the liver directly with blood which flows into the IVC through the left and middle hepatic v.’s (LHV and MHV).
The proximal part of the IVC, the DV, and the three hepatic v.’s together form a space situated immediately under the diaphragm before the right atrium, as Huis­man et al. (1992a) were able to demonstrate in their anatomical studies. This should be taken into account when the precordial v.’s are examined by Doppler ul­trasound, in order to avoid overlapping signals
ig.
F
18.3).
(
The DV plays an essential role in the regulation of the fetal circulation. It is one of three shunts and links the UV with the IVC. About 50−60 % of the oxygenated blood passes through the DV directly to the fetal heart. The constriction of the lumen of the DV to about a third of the width of the UV and the differences in pressure and resistance in the hepatic and cardiac circulations increase the blood flow velocity from 20 cm/s in the UV to 60−80 cm/s in the DV. Nervous and hormonal in­fluences as well as a sphincter muscle have been sus­pected of taking part in the regulation of blood flow through the DV, but anatomical correlates for such mechanisms are lacking.
The remaining 40−50 % of the blood in the UVs first pass through the PVs into the liver, and then through the hepatic v.’s into the IVC. The oxygen saturation in
the UV and the DV is about 80−85 %, while in the distal IVC and the RHV it is only 35 % or 50 %.
Animal experiments using microspheres carrying radionuclides show two streams of blood, which do not mix, flowing from the proximal IVC to the heart. Kiserud et al. (1992b) used color Doppler ultrasound to show that in the human fetus there are also two cross­ing inflows to the heart in this area, the left path lead­ing from the DV to the foramen ovale, the right path from the IVC to the right atrium.
The Left Path from the Ductus Venosus to the
Foramen Ovale
Well-oxygenated blood from the UV passes through the DV into the left dorsal part of the proximal IVC. The position of the dividing crest of the foramen ovale and the eustachian valve directs this blood flow directly through the foramen ovale into the left atrium. By this route blood rapidly reaches the vital organs, such as brain, heart, and adrenals.
The LHV and MHV, with an oxygen saturation of 70−
18.4).
75%, also enter this path (
Fig.
The Right Path from the Inferior Vena Cava to the Right Atrium
160
Fig. 18.4 The left path of DV−foramen ovale. (UV = umbilical vein, DV = ductus venosus, MHV = middle hepatic vein, LA = left atrium)
The less well oxygenated blood from the lower body and the RHV flows from the anterior right-hand side of the proximal IVC primarily into the right atrium and through the tricuspid valve into the right ventricle. From here it passes through the pulmonary circulation and from there chiefly into the descending thoracic aorta through the ductus arteriosus (
These blood streams effectively do not mix and en­sure that the oxygenated blood from the placenta pref-
Fig. 18.5).

Ultrasound Display and Doppler Sonography of the Venous System

erentially supplies the small left fetal circulation, while the poorly oxygenated blood from the fetal body re­turns to the placenta by way of the right heart, the duc­tus arteriosus, and the aorta.
If the resistance in the placental be d increases, with
a rise in the cardiac afterload, and/or a reduction in the
venous return, blood flow through the DV may in­crease up to 70 %, partly by an increase in hepatic re­sistance, partly by dilatation of the cerebral vessels.
This shift ensures an adequate venous return to the fetal heart, and a good oxygen supply to the vital or-
gans, i. e., the brain, heart, and adrenals. In addition, changes in the lumen of the DV modify its blood flow.
This may be attributed to nervous factors or some kind of sphincter, and may become manifest by wide fluc­tuations occurring in the flow curves in the DV within a brief examination period.
Fig. 18.5 The right path of IVC−right atrium. (IVC = inferior vena cava, RA = right atrium)
Ultrasound Display and Doppler Sonography of the Venous System
Depending on the position of the fetus, a median longi­tudinal cut or a somewhat obliquely set cross section have been established as the best way to display the fetal v.’s. For the examination of the IVC a lateral longi­tudinal or a coronal cut is the best choice.
The UV should be focused at its entrance into the fetal abdomen and the blood flow measured by pulsed Doppler. Normally the blood flow in the UV will appear monophasic and band-like, with a peak velocity of about 20 cm/s.
The DV should be examined at its origin from the UV, the hepatic v.’s about 5 mm proximal to their junction
with the IVC, and the IVC between the junction of the
DV and the renal v.’s. This will avoid interference from
18.6,18.7).
neighboring vessels (
As in the Doppler examination of the arteries, the fetus should not be breathing or moving. The insona­tion angle should be less than 30°, and this is easily ac­complished when focusing the DV, UV, and RHV. The IVC, on the other hand, can usually only be focused at an angle of 50−60°.
In contrast to the UV ( in the veins closer to the heart is pulsatile. The forward flow toward the heart has two peaks. The first peak oc­curs during ventricular systole (S = filling of the atria) followed by a decline in blood flow toward the end of systole (ES = maximal filling of the atria). The second peak occurs in early diastole (D) during passive filling of the ventricles when the atrioventricular (AV) valves open. Reverse flow into the IVC and the hepatic v.’s oc­curs during active atrial contraction in late diastole (A)
18.9).
Fig.
(
Peak blood flow velocity is attained in systole and reaches about 40 cm/s in the IVC and 20 cm/s in the he-
Figs.
Fig. 18.8), the blood flow curve
Fig. 18.6 Point of measurement and blood flow curve of the DV.
Fig. 18.7 Point of measurement and blood flow curve of the IVC.
Advanced Topics
161
Doppler Sonography of the Fetal Venous Circulation
Fig. 18.8 Blood flow pattern of the DV and the UV. Fig. 18.9 Characteristic blood flow curve of the RHV.
162
3
Fig. 18.10 Characteristic blood flow curve of the DV.

Results of the Doppler Studies

In longitudinal Doppler studies of the precordial v.’s in normal pregnancies there is a continuous increase in forward flow to the heart and a decrease in return flow into the veins as the pregnancy progresses (Huisman et al. 1991 and 1992b, Kiserud et al. 1992a, Rizzo et al.
1992, Hofstaetter et al. 1996).
This reflects better cardiac filling by increasing atrial relaxation and improved cardiac emptying by a reduc­tion in flow resistance in the placental bed as the preg­nancy progresses.
Beyond that, if cardiac function is impaired, venous blood flow changes by a reduction in venous inflow, in­crease in venous inflow, or by a reduction in cardiac stroke volume due to an increased postcardiac re­sistance. The latter may be due to increasingly severe
patic v.’s. Blood flow in the DV normally continues for­ward, because of its higher blood flow velocity that
Fig.
may peak at 60−80 cm /s (
Besides peak velocities in systole (S), early diastole (D), and during atrial contraction (A), as well as aver­age maximal velocity (TAMX) a number of indices are calculated for Doppler sonography of the fetal v.’s. Those applied most commonly are the S/A ratio, the pulsatility index for veins (PIV = S−A/TAMX), the peak velocity index for veins (PVIV = S−A/D), the DV index after De Vore (S−A/S), and in the case of the IVC and the hepatic v.’s the percent reverse flow (RF in % = time ×
TAMX of reverse flow during atrial contraction in late diastole : time × TAMX of forward flow during ventric­ular systole and early diastole) (Reed et al. 1990, Huis­man et al. 1991 and 1992b, Kiserud et al. 1992a, Rizzo et al. 1992, Hecher et al. 1994, De Vore and Horenstein
1993).
placental insufficiency (absent or reversed diastolic
[ARED] flow), to tachyarrhythmias, or myocardial
failure.
The flow pattern in the UV is monophasic and in a normal case has a maximal flow velocity of 20 cm/s and a volume flow of 120 mL/kg/min in early preg­nancy and 90 mL/kg/min at term.
A pulsatile pattern in the UV is only physiological until the 15th week of gestation. After that pulsations in the umbilical cord are always pathological. Simple pulsations in the UV during ventricular systole may be found when the umbilical cord is compressed
ig.
F
18.11).
(
Pulsations in the intra-abdominal portion of the UV during atrial contraction in late diastole (Fig. 18.12)are
18.10).
a reflection of elevated intra-arterial pressure. This may result from increased cardiac preload, such as hy­pervolemia due, for example, to hydrops fetalis, in the acceptor twin in a feto−fetal transfusion syndrome (FFTS), or a cardiac malformation with reduced cardiac inflow, or it may occur when raised resistance in the placental bed increases the cardiac afterload. Back flow into the veins (so-called A blood flow) in these cases increases in the IVC and the hepatic v.’s, while decreas-
Fig.
ing in the DV (
18.13).
As the resistance in the placental bed increases and as a result the fetal circulation becomes increasingly centralized, the afterload continues to increase. If the coronary circulation then is no longer adequate, pres­sure at the end of ventricular systole increases, leading to double pulsations in the UV (Fig. 18.14). This is an ominous sign, signifying the breakdown of circulatory compensation in the fetus due to myocardial insuffi­ciency. The raised right atrial pressure passes through the DV directly into the UV. Mostly there is reverse flow in the DV during atrial contraction (
Fig .18.15). Double pulsations in the UV and reverse flow through the DV are associated with a fetal mortality of 70% and a mor­bidity of about 90%.
In a study of fetuses with hydropsfetalis Gudmunds­son et al. (1991) were able to show that pulsations in the umbilical cord are a sign of impaired cardiac func­tion and are associated with a poor pregnancy out­come. If, on the other hand, hydrops fetalis was due to a viral infection, pulsations were absent and the fe­tuses survived.
The raised intra-atrial pressure leads to an increase in reverse flow in the IVC and the hepatic v.’s during atrial contraction (A blood flow). There is a decrease in
A blood flow in the DV. The SA ratio and S−A/S ratio, the
PIV, the PVIV, and the RF rise correspondingly in %
Figs. 18.16,18.17) (Rizzo et al. 1992, Kiserud et al.
( 1994, Rizzo et al. 1994, Hecher et al. 1995, Gudmunds­son et al. 1996).
Results of the Doppler Studies
Fig. 18.11 UV pulsation due to compression.
Advanced Topics
Fig. 18.12 Single UV pulsations during atrial contraction in late diastole.
Fig. 18.13 Abnormal blood flow in the DV with reduced A blood flow.
163
Fig. 18.14 Double pulsations in the UV.