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Doppler Ultrasound in Gynecology
3
Similar considerations apply to the early diagnosis of ectopic pregnancy (Figs. ing of the course of an ectopic pregnancy by medical treatment with systematically administered methotrexate.Note that the perfusion of the corpus lu­teum is also profuse, so that a suspected ectopic preg­nancy could be confused with a normally developed
Fig. 20.5 Intensely vascularized ectopic pregnancy adjacent to the ovary.
20.3−20.5) and the monitor-
corpus luteum (Fig. 20.6). Hence it is important to dis­play both organs, the ovary and the uterine tube con­taining the ectopic pregnancy, side by side to ensure the proper identification of the ectopic pregnancy. In this case uncritical application of color Doppler can in­duce a diagnostic error.
When uterine fibroids are treated medically with gonadotropic-releasing hormone (GnRH) agonists, Doppler ultrasound display of a reduction in perfusion can supplement the reduction in size.
Other applications of pulsed and color-coded Dop­pler ultrasound include the demonstration and docu­mentation of tubal hydroperturbation by ultrasound contrast media as part of a diagnostic workup for sterility (Fig. 20.7).
It should be noted that the premature uncritical in­troduction into clinical practice of a new method such as color Doppler ultrasound, when not adequately founded on research, can entail considerable risk. This is especially true when estimating its validity and when planning treatment based on this. In this con­nection special mention should be made of the risk of laparoscopic surgery when an unexpected adnexal malignancy is found.
184
Fig. 20.6 Corpus luteum with similarly intense perfusion due to neovascularization.

Tumor Angiogenesis

As early as 1907 Goldman (The Growth of Malignant Disease in Man with Reference to Vascular System), working from arteriographic studies of tumor speci­mens (Fig 20.8), described the development of newly formed “tumor vessels” in the periphery of malignant tumors. Many decades later Folkman (1974) postulated that tumor growth was only possible when new ves­sels are formed in the vicinity of the tumor. In 1971 Folkman et al. were able to discover the underlying
Fig. 20.7 Flow of contrast medium through the uterine tube
displayed by color Doppler.
mechanisms of this activity by describing and demon­strating tumor-angiogenesis factors. Increasing new formation of blood vessels can now be demonstrated in tumors over 3−5 mm in diameter.
However, new vascularization does not always con­stitute an unambiguous criterion for the formation of a tumor, since new vascularizations and changes in tissue perfusion can also occur during physiological and benign processes, such as for instance wound heal-

Examination Procedure and Instrumentation for Ultrasound Diagnosis of the Pelvis

ing, ectopic pregnancy (cf. above) and in inflammatory processes. If in a case presenting a sonographically sus­pect adnexal finding no vessel can be displayed by ul­trasound, the following should be considered:
Flow may be present in the tumor, but very slow
due to small vascular diameters. In this case the flow may not reach the sensitivity threshold of the instrument. Thus, there may be a change in perfu-
sion, but the instrument cannot register it for tech-
nical reasons. The introduction of intravenous ultra-
sonic contrast media improves the signal in such
cases and so leads to improvement by displaying even the smallest vessels. Another possibility sug­gested by Sohn et al. (1993) is to raise the perfusion briefly and artificially by raising the blood pressure. This may, for instance, be achieved without risk by a controlled physical load.
Since tumors are often only poorly vascularized in
their core, display of tumor vascularization due to angiogenesis may only be possible in the immedi­ate periphery of the tumor. This effect has been documented especially in the examination of mam­mary tumors.
During rapidly increasing tumor growth the center
first becomes strongly vascularized. There follows a
secondary central compression of the newly formed
20.9). The consequence of such
vessels ( diminished central tissue perfusion may be necro-
sis. Thus, in the core of the tumor avascular areas
may alternate with some that are well perfused and necrotic. Such changes are not, however, pathog­nomic for malignant tumors: Central necroses may be observed not only in rapidly growing malignant tumors, but are also characteristic of rapidly grow­ing fibroid tumors.
Fig.
Fig. 20.8 Arteriographic cast of the uterus displaying the blood vessels, modified after Fleischer et al.
Advanced Topics
Essential Considerations for Clinical Practice
Complete absence of connected vessels or sporadic color pixels in a display speaks against the presence of angiogenesis associated with a tumor and hence at the same time against the presence of a malignant tumor.
Fig. 20.9 Marginal blood vessels in a mammary carcinoma.
If the display of a suspicious area shows multiple sig­nals with a variable, but above all a low resistance index (RI), such abnormal perfusion tends to favor the presence of a malignant tumor.
Examination Procedure and Instrumentation for Ultrasound Diagnosis of the Pelvis
Besides a valid clinical question, Doppler examination of the internal genital area requires in every case a
vaginal examination and B-mode vaginal sonography
for a three-dimensional view of the relations of the or-
20.10).
Fig.
gans (
In B-mode sonography the uterus is imaged first for
orientation and is displayed in longitudinal and cross
section ( structural changes in the myometrium and the en­dometrium, and for free fluid in the pouch of Douglas. The thickness and condition of the endometrium should be recorded. The search for the adnexa begins laterally at the pelvic wall near the iliac vessels. The search may be made difficult by reduced ovarian
Fig. 20.11). The display should be examined for
185
Doppler Ultrasound in Gynecology
3
volume and superposition of gas-filled intestinal loops, especially after menopause. The ovary is localized and its morphology recorded (size or volume, follicles, cys­tic or solid constituents), using a score if necessary. Its vascularization can then be displayed by color Doppler.
Depending on the diagnostic question, a variety of Doppler systems may be used for this purpose. If the large vessels (iliac a.) are to be displayed, a high veloc­ity up to 1 m/s must be taken into account: Perfusion in this case can be displayed with the usual direction-de­pendent, frequency-coded, color flow mapping (CFM) mode. These vessels are displayed easily because of the high intensity and high pulsatility of the flow signals. In contrast, the actual ovarian vessels are often difficult to display. The right ovarian a. originates from the right renal a., the left from the aorta. However, the ovarian aa. are of subordinate significance in the evaluation of
Fig. 20.10 Three-dimensional representation of the pelvic or­gans.
the ovarian perfusion proper, since in clinical practice only vessels within the limits of the organ itself can be assigned to that organ with any certainty. When dis­playing the actual perfusion of an organ or establishing the presence of tumor vessels, anatomical features such as very small vascular diameters and very slow blood flows must be taken into account. Hence a dis­play using an amplitude-coded, direction-dependent power Doppler is preferred, for in favorable situations this allows displays of very slow flows of as low as a few millimeters per second. In such cases the small ar­teries with low vascular resistance inside the organ are displayed rather than the larger vessels supplying the organ.
Evaluation
This addresses in the first place qualitative impressions of the vascularization of the organ. The record should include the number and density of the color pixels dis­played, the diameter of the vessel, the number of ves­sels displayed, the presence and number of vascular branchings. Next the sample volume is placed in the vessel to be examined or the abnormal color pixel group, and the pulsed Doppler inserted. In quantitative measurements, besides measuring flow velocity, the derived flow curve is described by the use of indices; the most commonly used indices are the RI (V V
min/Vmax
V
time average
Carter et al. (1995), it is better to dispense with the pre­cise alignment of the angle of incidence, since the direction of the tumor vessels can often not be deter­mined.
(1994) showed that the values RI and PI are highly correlated. The correlation coefficient was 0.99. The di­agnostic significance of both parameters seems to be equivalent. Consequently in our clinic we prefer docu­menting the RI because it is easier to determine and plot.
) and the pulsatility index (PI) (V
).
According to studies by Valentin et al. (1994) and
Statistical analysis of results by Prömpler’s group
max
max−Vmin
− /
186
Fig. 20.11 Longitudinal section through the uterus showing thin endometrium, scanty serometra.

Ovarian Diagnosis

Conventional Ultrasound Examination of the Ovary: Procedure and Results
Since 1983 Campbell et al. have been reporting con­tinuously on a voluntary screening program using transabdominal sonography on 5497 women. Asymp­tomatic women only received annual ultrasound. In 1990 they published these results: 336 (5.9%) women
were found to have abnormal sonograms. In the sub­sequent exploratory operation five women had ovarian carcinoma. Hence detection of a malignant ovarian tumor by ultrasound examination carries a positive predictive value or accuracy of merely 1:26. The proba­bility of discovering a primary ovarian carcinoma was therefore just 1:50.
When ultrasound screening by transvaginal sono-
graphy was performed for ovarian carcinoma, several criteria were evaluated. Those given special attention included:
Ovarian size (Campbell et al. 1989, Duda et al. 1990):
Premenopausal volume 18 mL, postmenopausal volume 8 mL were considered suspicious. As a general rule length × breadth × height × 0.53 was used as an approximate estimate of volume.
Pathological structure of the ovary: The evaluation
included changes in echogenicity, the appearance of cystic formations, appearance of solid parts, and
20.12). All study groups agree
F
blurred contours ( that the appearance of a solid segment in a cystic adnexal structure is the criterion that best distin­guishes benign from malignant tumors.
Difference in size of the ovaries (Campbell et al.
1989, Duda et al. 1990): Using this criterion an
ovary that was more than double the size of the contralateral ovary was considered suspicious.
The study groups of Higgins and van Nagell in 1989 identified 31 cases of equivocal adnexal findings during prospective examinations of 1000 asympto­matic patients. During confirmatory surgery on 24 patients only one case of metastatic colon cancer was found. Hence the accuracy of detection of a malignant ovarian tumor in this study was 1:24.
Duda et al. (1990), in a study of 221women with nor­mal findings by palpation, found 13 cases with incon­clusive ovarian findings. Surgical exploration revealed one case of ovarian metastasis. This corresponds to an accuracy of 1:13.
Toimprove the accuracy of ovariandiagnosis, a num­ber of study groups have in the past suggested differ­ent scores (e.g., Sassone et al. 1991, Schilliger et al.
1989) that included a varying number of morphologi­cal criteria (
Table 20.1).
ig.
Ovarian Diagnosis
Fig. 20.12 Inhomogeneous ovary, partly hypoechoic, partly echoic. Suspected endometriosis
When equivocal premenopausal and post­menopausal tumors were classified in this way trans­vaginal sonography attained a sensitivity of about 80− 100% and a specificity between 69 % and 93% (
20.2).
In evaluating the results of such studies it must be borne in mind that the patient population examined was mostly confined to symptomatic patients. The re­sults can therefore only be viewed in the light of a general screening of normal populations.
Table 20.1 Tumor score after Schillinger (1989)
Score
I Well-demarcated solitary cysts II Other well-demarcated homogeneous tumors III Minimally inhomogeneous tumors (small tumor areas
differ in consistency) IV Inhomogeneous cystic−solid or solid−cystic tumors V Completely inhomogeneous tumors with bizarre
formations
Table 20.2 Preoperative staging using sonographic scoring systems
Authors Number of
patients (n)
Herrmann et al. 1987 241 82 93 Benacerraf et al. 1990 100 80 87 Granberg et al. 1990 180 82 92 Sassone et al. 1991 143 100 83 Hata et al. 1992 63 85 69 Kurjak et al. 1992 1000 48 98 Weiner et al. 1992 53 94 69
Sensitivity (%)
Table
Speci­ficity (%)
Advanced Topics
187
Doppler Ultrasound in Gynecology
3
Another point to be noted is that, while transvaginal sonography is relatively reliable with a sensitivity of over 90% for scores of 1 and 2 (unremarkable/slightly suspicious) and 5 (highly suspicious), it is much less accurate in evaluating the prognosis in groups 3 and 4 (tumors that are partly cystic and partly solid). A num­ber of study groups (Lerner et al. 1994) have therefore tried to improve sensitivity and specificity by differen­tiating ovarian findings by color Doppler sonography.
Normal Findings in the Doppler Ultrasound Examination of the Ovaries
Marked changes in perfusion can be noted in normal ovaries in the course of the menstrual cycle. While it is difficult to display any perfusion of the organ during the follicular phase, signals from the ovary increase markedly after ovulation, when the erstwhile follicle is transformed into the corpus luteum. The cause of this is a physiological “angiogenesis,” which is the con­sequence of rapid vascular invasion into the corpus lu­teum of very small vessels without a muscular layer, resulting in increased end-diastolic perfusion. This phenomenon is reminiscent both of tumor-specific perfusion changes and changes resulting from the im­plantation of a tubal ectopic pregnancy, with either of
F
ig.
which it could be confused (
As a rule the high vascular resistance in the normal ovarian vessels results in a sharp systolic rise in the flow curve, followed by a steep decline with an early diastolic notch, after which the curve declines slowly to low end-diastolic flow velocities. The resulting RIs in the blood vessels of the normal premenopausal ovary are of the order of 0.7 to 0.9. In the region supplied by tumor vessels, the angiogenetic vessels formed re­semble capillary clef ts with sudden increases in caliber and a lack of the usual vascular musculature that
20.13).
would normally control vascular resistance in a vascu­lar bed. This results in a bed with low flow resistance and increased continuous flow. Hence the vascular bed of a tumor often shows a reduction in the measured RIs to values clearly below 0.7.
After menopause as a rule no blood vessels can be demonstrated in a healthy ovary of normal size (volume 8 mL).
Significance of Color-Coded Doppler Ultra­sound
In 1993 Bourne et al. published what is to date the only screening study, examining 1600 asymptomatic women with a positive family history of ovarian carci­noma. Fifty-eight women with positive morphological ultrasound findings were also examined by color Dop-
F
ig.
pler ( ian carcinomas were found. The detection rate was therefore 1:9 by vaginal ultrasound, but 1:2.5 after the search was refined by the insertion of color Doppler. However, because of its design this study cannot be compared with the usual case studies of symptomatic patients.
Doppler ultrasound were initially presented by the study groups working with Kurjak (1991), Bourne et al. (1989), and Campbell (1989). They tried primarily to find a cutoff level in the measured perfusion indices (RI or PI) that would effectively differentiate between benign and malignant tumors. Table after Voigt 1995) presents an overview of the results of various study groups.
the studies presented there is a wide overlap between the Doppler indices for benign and malignant tumors. For instance, a cutoff level of 0.5 would result in a num-
20.14). On subsequent laparotomy five ovar-
Statistically validated results of transvaginal color
20.3 (modified
On inspection of the results it is noticeable that in
188
Fig. 20.13 Corpus luteum. Fig. 20.14 Color Doppler sonogram of a profusely perfused
ovary.
Ovarian Diagnosis
Table 20.3 Preoperative staging using color-coded Doppler ultrasound
Authors Patients
(n)
Kurjak et al. 1991 680 56/624 RI 0,4 96 99 99 Fleischer et al. 1991 43 11/32 PI 1,0 100 83 100 Weiner et al. 1992 53 17/36 PI 1,0 94 97 − Kawai et al. 1992 24 9/15 PI 1,25 96 Tekay et al. 1992 72 11/61 RI 0,6 82 72 74 Kurjak et al. 1992 174 38/136 RI 97 100 99 Timor-Tritsch et al. 1993 115 16/99 RI 93,8 98,7 − Prömpeler et al. 1994 129 45/84 RI 0,5 85 77 84 Voigt et al. 1995 186 49/137 PI 1,0 87 93 90
Malignant/ benign
Index Cutoff level Sensitivity
(%)
Specificity (%)
Accuracy
ber of false positives and also, with a more frequent fatal outcome, false negatives.
We must add, moreover, that, whereas some study
groups initially found very high values for sensitivity and specificity in detecting ovarian carcinoma accu­rately, these results could not be reproduced by other
workers in subsequent years. After a certain initial eu­phoria, figures for sensitivity and specificity settled at a level of about 90 %.
In 1996 the group working with Prömpeler analyzed the validity of transvaginal ultrasound compared to transvaginal color Doppler sonography and compared to a combination of both procedures. They essentially classified their findings as benign if the Schillinger score was 1 or 2, and malignant if it was 5. Scores of 3 and 4 did not permit separation into benign and malig­nant tumors. These tumors were then separated ac­cording to menopausal status and further differen­tiated by color Doppler examination.
The indices determined by color Doppler are shown in Table
20.4.
The table shows clearly that, while the mean values of benign and malignant tumors can be distinguished statistically, the broad overlap of the RIs determined for benign and malignant tumors precludes a definite distinction between such tumors in individual cases.
Table 20.5 summarizes more studies comparing the di-
agnostic power of ultrasound examination with color Doppler examination and with a combination of both procedures (
F
Kurjak and Predanic, for in-
ig. 20.15).
stance, in their 1992 study, were able to amplify the morphological ultrasound discrimination of tumors by adding color Doppler sonography. On the other hand, Valentin and his group (1994) attained a better dis­crimination by transvaginal ultrasound than by color Doppler,by determining that all tumors with solid por­tions should be classified as potentially malignant.
Thus, because of the small number of cases in these studies, a definitive, precise evaluation of the validity of color Doppler ultrasound is currently not yet possible.
Table 20.4 Doppler index values of 36 premenopausal and 52 postmenopausal tumors with scores (after Schillinger) of 3 and 4
Criterion Benign Tumors Malign Tumors
Premeno­pausal RI
Postmeno­pausal RI
Median Range Median Range p =
0.54 0.41−1 0.44 0.3−0.53 0.0154
0.52 0.24−1 0.42 0.22−0.66 0.0351
Advanced Topics
Table 20.5 Test validity differentiating benign from malignant ovarian tumors using only ultrasound (TV-US), color Doppler ultra­sound (TV-CFM), or a combination of both (after Prömpeler 1996)
Authors Patients
(n)
Kurjak et al. 1992 83 48/96/90 98/95/95 81/96/93 Kurjak und Predanic 1992 174 92/97/97 95/100/100 94/99/99 Timor-Tritsch et al. 1993 94 94/94/94 87/99/99 88/98/98 Schneider et al. 1993 55 88/94/81 67/56/85 78/67/76 Bromley et al. 1994 33 91/67/67 52/81/81 67/76/76 Valentin et al. 1994 149 100/92/100 73/71/77−83 68/75/−
Sensitivity (TV-US)/
Specificity (TV-CFM)/
Accuracy (TV-CFM + TV-CFM)
189
Doppler Ultrasound in Gynecology
Fig. 20.15 Ovarian tumor partly divided by septa. By histology this was an ovarian carcinoma, but no flow could be demon­strated by Doppler ultrasound.
3

Doppler Ultrasound and Myomas

Essential Considerations for Clinical Practice
Inconclusive adnexal findings should primarily be evaluated by transvaginal sonography. The most useful way to classify ovarian tumors, using either transvagi­nal sonography or color Doppler, is by reference to menopausal status. Multivariate analysis of sonomor­phological criteria indicates that color Doppler ultra­sound appears to provide better evaluation of carci­noma staging after menopause than before.
To date research has predominantly pursued the fol­lowing goals:
Changes in Doppler indices in relation to size and
growth of myomas,
Changes in Doppler indices during GnRH analog
treatment,
Determination of a cutoff level to distinguish
benign from malignant tumors.
In 1997 Alatas and co-workers compared Doppler in­dices of a normal population of 60 women whose uterus was of normal size with a study population of
100 women with an enlarged or fibroid uterus (Table
F
ig.
20.6, tinctly lower indices in the group with uterine fibroids than in the normal population. When the uteri show­ing myomatous changes were divided by weight into two groups, namely those over and those under 200 g,
20.16). The immediate results showed dis-
Table 20.6 Comparison of Doppler indices RI and PI in a nor­mal population with those in a population with an enlarged uterus
N = Volume of uterus Range RI PI p =
100 276.2 cm
60 101.4 cm
the indices of the heavier uteri were significantly below the lighter ones. Statistical elaboration showed a significant overlap of the results, so that healthy uteri could not be distinguished with certainty from those with myomas by using Doppler indices alone. Huang et al. (1996) postoperatively did a histological examina­tion of the uteri of 39 patients who had had hysterecto­mies for fibroid uteri. They, too, found a correlation be­tween Doppler indices and tumor size, but there was no corresponding correlation to rate of proliferation or angiogenesis.
In 1995 Yoshioka examined a population of 38 patients with fibroid uterus. He divided the patients into two groups:
− One group in which circulation could be displayed
in the specimen or in the periphery of the myoma,
− One group in which no blood vessels could be de-
monstrated in the tissue surrounding the myoma.
3
3
65−928 cm30.77 1.69 0.01 36−171 cm30.82 1.97 0.01
190
Fig. 20.16 Blood flow in the myometrium of a uterus of nor­mal size.
Postoperative histological workup of the operative specimen showed, as expected, that in the patients of the second group they could demonstrate an increase in hyalinization and rarefication of blood vessels.
Fifteen of these patients received GnRH analog treat­ment preoperatively (buserelin 900µg q.d). All these cases showed a significant reduction in Doppler in-

Endometrial Diagnosis

dices and a significant decline in serum estradiol in the course of treatment. Volumetry of the myomas per­formed concurrently with this study revealed that all six patients in the group with positive flow in the pe­riphery of the myoma achieved significant reduction in the size of the tumor, but only three out of nine did so in the group without evidence of blood flow. These re­sults indicate that the combination of pulsed and color Doppler ultrasound might be helpful in predicting for
which patients GnRH analog therapy is indicated.
Using preoperative color Doppler examination
before elective hysterectomy in 2010 patients, the
group working with Kurjak (1995) tried to determine a cutoff level between benign and malignant tumors. In the course of their histological examination of the specimens they found 10 sarcomas in addition to 1850 uteri with myomatous changes. In all patients with sarcoma the Doppler indices were significantly lower (RI = 0.37) preoperatively than in the control group. As­suming a cutoff level for the RI of 0.4, benign and
Endometrial Diagnosis
Currently transvaginal ultrasound permits a detailed description of the normal endometrium. Nevertheless, 80% of curettages performed for postmenopausal bleeding lead to a diagnosis of benign endometrial changes (Lerner et al. 1996). It is also known that the sensitivity and specificity of curettage for the detection of endometrial changes is limited. False negative re­sults for the detection of endometrial hyperplasia and endometrial carcinoma, as well as endometrial polyps,
F
igs.
were found at a level of 2−6% ( (Grimes 1982, Koonings 1990). Hence the question arose of whether the detection rate for endometrial changes could be improved by using color Doppler ul­trasound, and if by measuring perfusion, the rate of false positive findings could be reduced. This is even
20.17, 20.18)
malignant uterine tumors were separated with a sensi­tivity of 90.91%, a specificity of 99.8%, a positive pre­dictive value for the detection of a tumor of 71.43 %, and a negative predictive value (exclusion of a tumor by preoperative Doppler ultrasound examination) of
99.96%. In contrast to similar studies with ovarian tumors, these studies seem to show that a cutoff level can be establishe d for myomas.
Essential Considerations for Clinical Practice
The diagnosis of uterine myoma continues to be made by transvaginal B-mode sonography. The demonstra­tion of blood vessels by color Doppler may identify a group of patients for whom GnRH therapy is indicated. If the RI is lowered significantly, the possibility of a sar­coma must at least be considered in planning treat­ment. It remains to be seen whether the hypothesis that there is a cutoff level can be confirmed by studies from other groups.
more important since more patients present them­selves for investigation of equivocal endometrial changes now that tamoxifen has been introduced for treatment of mammary carcinoma (and more recently even approved by the Food and Drug Administration [FDA] for prevention of mammary carcinoma).
A good knowledge of the structure of the normal en­dometrium is a prerequisite for the evaluation of pathological changes in the endometrium. Blood is supplied to the endometrium ( the arcuate arteries of the uterus through radially ar­ranged arteries piercing the myometrium (Fig. 20.20). Scholtes (1989), working with Wladimiroff ’s group, and Steer (1990) in Campbell’s group were able to show a correlation between the level of female sex
20.19) laterally from
Fig.
Advanced Topics
Fig. 20.17 Polyp in the body of the uterus. Fig. 20.18 The polyp displayed by color Doppler.
191
Doppler Ultrasound in Gynecology
3
Fig. 20.19 Blood supply of the uterus. Schematic representa­tion after Fleischer et al.
hormones and uterine perfusion. Thus, as expected, uterine perfusion clearly depends on the menstrual cycle. The uterine aa. supply the arterioles in the basal layer of the endometrium. These arterioles finally give rise to the spiral aa. of the endometrium, which supply the functional layer, and, like the latter, change with the hormonal changes of the menstrual cycle and are
20.21). Adequate
cast off at menstruation ( development of these spiral aa. seems to play an im­portant role in the implantation of the trophoblast at the beginning of pregnancy. Hence a number of authors (Deligdisch 1991, Goswamy et al. 1988) have connected a significant reduction in blood flow in the supplying uterine a. with infertility.Blood flow in these vessels of the endometrium proper is so slow that it can only be displayed by suitable systems (A-mode, power Doppler). For more precise localization and differentiation of endometrial changes, Fleischer et al. (1997) recommended dividing the endometrium into 4
Fig. 20.22):
zones (
Fig.
Fig. 20.20 Ultrasound display of the blood supply to the my-
ometrium.
Zone 1—A layer about 2 mm thick, hypoechoic, sur-
rounding the endometrium (innermost suben­dometrial layer of the myometrium), sometimes known as “halo.”
Zone 2—The hyperechoic outermost layer of the en-
dometrium (basal layer).
Zone 3—The hypoechoic inner layer of the en-
dometrium (functional layer).
Zone 4—The surface of the endometrium, boundary
of the uterine cavity.
The premenopausal cyclic changes in the en­dometrium may be described as follows:
In the follicular phase the endometrium is still rela-
tively thin and is mildly echogenic. Its total thick­ness is 2−6 mm.
Around the time of ovulation there is often a trace
of fluid in the cavity (Fig. 20.23).
In the postovulatory phase a hyperechoic basal
layer can b e distinguished from a hypoechoic functional layer (Fig. 20.24).
192
Fig. 20.21 Endometrial blood supply. Fig. 20.22 Endometrium in B-mode image.
Endometrial Diagnosis
Fig. 20.23 Endometrium at time of ovulation. Fig. 20.24 Endometrium after ovulation.
Advanced Topics
In the luteal phase there is first a thickening of the
hypoechoic functional layer that is then increas­ingly transformed, becoming more hyperechoic. In this phase the total thickness of the endometrium can attain 12−14mm (Fig. 20.25).
The morphological changes in the endometrium after menopause vary according to the number of years from the beginning of menopause, the exogenous ad­ministration of female sex hormones, and the patient’s body weight. Normally the endometrium atrophies, the total thickness being 쏝 5 mm. A trace of mucus or fluid in the lumen (comparable to the changes seen around ovulation) with a total thickness of the en­dometrium 4−5 mm is often seen in the display and is not considered abnormal. During simple estrogen treatment the endometrium proliferates slightly and attains a diameter of almost premenopausal dimen­sion. In combined estrogen/progesterone therapy pro­liferation to a total thickness of 6−8 mm may be ob­served.
The question of at what thickness of the en­dometrium a histological examination becomes neces­sary has not yet been answered definitively. In one of the largest studies, the Nordic trial, using a cutoff level of 4 mm, a sensitivity of 96 % and a specificity of 68% were calculated for the detection of endometrial carci­noma. Other groups recommend a histological exami­nation at total endometrial thicknesses of 5−8 mm in the absence of hormone substitution. Of course in these recommendations there is a broad overlap be­tween normal and abnormal values when the evalua­tion addresses only the total thickness of the en-
20.26).
dometrium (
It is known from B-mode sonography as well as hys­teroscopic examination that endometrial carcinoma may develop as a focal lesion in an otherwise normal endometrium, as a diffuse process, or in endometrial polyps. Hence the display of irregular perfusion of the endometrium should be considered a good additional criterion for the detection of neoplasms (
20.28).
Fig.
Figs. 20.27,
Fig. 20.25 Endometrium in luteal phase. Fig. 20.26 Loose, cystic, thickened endometrium.
193