Introduction
Adenomyosis is a chronic, estrogen- and progesterone-
dependent benign uterine condition defined by the ectopic
presence of endometrial glands and stroma within the
myometrium, accompanied by adjacent smooth muscle
hyperplasia and hypertrophy. It is increasingly recognized as a
heterogeneous condition with distinct subtype’s inner, outer,
and diffuse myometrial involvement each potentially differing
in pathogenesis, clinical presentation, and treatment response
[1]. The clinical spectrum ranges from incidental asymptomatic
findings to severe dysmenorrhea, heavy menstrual bleeding,
chronic pelvic pain, dyspareunia, and infertility, with significant
impairment of health-related quality of life [2].
Abstract
Introduction: Adenomyosis diagnosis has improved substantially with high-resolution transvaginal ultrasound and the standardized
Morphological Uterus Sonographic Assessment (MUSA) criteria; however, the relative diagnostic contribution of individual sonographic signs
to histopathological confirmation remains incompletely defined. This study evaluated clinical and ultrasonographic markers associated with
histopathologically confirmed adenomyosis.
Materials and methods
We conducted a single-center prospective observational study of consecutive women scheduled for hysterectomy
at a tertiary referral center. Clinical symptoms and a comprehensive set of direct and indirect MUSA criteria were systematically recorded using
a standardized reporting form. Associations with histopathologically confirmed adenomyosis were evaluated by univariate logistic regression;
Odds Ratios (OR) with 95% Confidence Intervals (CI) and corresponding p-values are reported. A multivariable model was not constructed
owing to sample size constraints and the exploratory nature of the study.
Results
Clinically, Heavy Menstrual Bleeding (HMB) demonstrated the strongest association with adenomyosis (OR=4.81, 95% CI: 2.33–9.92;
p<0.001), followed by dyspareunia (OR=1.11, 95% CI: 1.01–1.23; p=0.02). Dysmenorrhea, chronic pelvic pain, dyschezia, and dysuria were
not statistically significant predictors in univariate analysis. Ultrasonographically, five MUSA criteria demonstrated statistically significant
associations with histopathologically confirmed adenomyosis: subendometrial echogenic lines/buds (OR=8.51, 95% CI: 2.20–32.9; p<0.001),
myometrial asymmetry (OR=6.88, 95% CI: 2.22–21.3; p<0.001), myometrial heterogeneity (OR=4.96, 95% CI: 1.28–19.3; p=0.015), myometrial
cysts (OR=3.30, 95% CI: 1.67–6.56; p<0.001), and junctional zone irregularity (OR=2.57, 95% CI: 1.18–5.40; p=0.047). In contrast, uterine size in
the leiomyoma-free subset, myometrial shadowing patterns, lesion vascularization, lesion echogenicity, and lesion definition demonstrated
no statistically significant associations with adenomyosis. Hyperechoic islands showed a non-significant trend toward association with
adenomyosis (OR=2.67, 95% CI: 0.94–7.52; p=0.058). Myometrial cysts demonstrated a sensitivity of 67.3% and specificity of 61.6%;
subendometrial echogenic lines/buds showed lower sensitivity (17.3%) but higher specificity (97.6%) for histopathologically confirmed
adenomyosis.
Conclusion
Transvaginal ultrasound incorporating MUSA criteria is clinically useful for preoperative adenomyosis diagnosis, particularly
through markers like subendometrial lines, myometrial asymmetry, heterogeneity, cysts, and junctional zone irregularity.
Keywords
Adenomyosis, Transvaginal ultrasound, MUSA criteria, Myometrial cysts, Subendometrial echogenic lines, Junctional zone, Heavy
menstrual bleeding, Dyspareunia, Hysterectomy
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
36
The true prevalence of adenomyosis remains uncertain.
Histopathological examination of hysterectomy specimens
has reported widely varying rates of 5–70%, with a consensus
estimate of approximately 20–35% when standardized
diagnostic criteria are applied [3]. However, with the advent
of high-resolution transvaginal ultrasound and improved
imaging protocols, adenomyosis is increasingly identified
in younger, nulliparous, and infertile women who would
not previously have been captured in hysterectomy-based
prevalence studies, suggesting that the true population
prevalence may be substantially higher than historically
reported [4,5].
The pathogenesis of adenomyosis remains incompletely
understood. The most widely accepted hypothesis involves
invagination of the endometrial basalis layer into the inner
myometrium along the junctional zone, facilitated by tissue
injury and repair (TIAR) mechanisms, which are thought to
be triggered by uterine peristaltic dysfunction, repeated
microtraumatic insults, and altered immune surveillance
[1,6]. Alternative pathogenic hypotheses include de novo
development from Müllerian remnants, metaplasia of adult
stem cells, and lymphatic or hematogenous dissemination of
endometrial cells [6]. Regardless of the initiating mechanism,
ectopic endometrial tissue within the myometrium induces a
sustained localized inflammatory response, smooth muscle
hyperplasia and hypertrophy, aberrant angiogenesis, and
progesterone resistance — collectively contributing to the
hallmark clinical manifestations of heavy menstrual bleeding
and pelvic pain [1].
The Morphological Uterus Sonographic Assessment
(MUSA) consensus was first published in 2015, establishing
standardized terminology and sonographic criteria for
uterine morphological evaluation [7]. In 2022, a modified
Delphi procedure led to a substantive revision of MUSA
definitions, refining the classification of direct adenomyosis
markers — including myometrial cysts, hyperechoic
islands, and subendometrial echogenic lines and buds —
and indirect markers, comprising myometrial asymmetry,
myometrial heterogeneity, junctional zone irregularity, fan-
shaped shadowing, and translesional vascularization [8].
These updated 2022 MUSA criteria form the methodological
backbone of the present study and represent the current
standard for sonographic adenomyosis assessment in
both clinical practice and research settings. The concurrent
presence of multiple sonographic markers has been shown
to improve overall diagnostic accuracy, and MUSA criteria
additionally facilitate differentiation between focal and diffuse
adenomyosis subtypes, thereby informing individualized
clinical management decisions [7–9].
Accurate preoperative identification of adenomyosis
in patients scheduled for hysterectomy is important for
patient counseling and for objective assessment of surgical
indications [10]. Evaluating the concordance between
preoperative transvaginal ultrasound using MUSA criteria and
postoperative histopathological diagnosis will help determine
the clinical utility of these sonographic criteria.
While magnetic resonance imaging (MRI) is considered the
Reference
standard for adenomyosis diagnosis with reported
sensitivity of 77–78% and specificity of 85–89%, its limited
availability, higher cost, and patient-related contraindications
restrict its routine clinical use. Transvaginal ultrasound,
particularly when performed using standardized MUSA
criteria by trained operators, achieves comparable diagnostic
performance and remains the first-line imaging modality
recommended by international guidelines including ESHRE
and ISUOG [10,11].
The primary aim of this study was to evaluate the association
between preoperative transvaginal ultrasound findings
based on MUSA criteria and histopathologically confirmed
adenomyosis in women undergoing hysterectomy at a tertiary
referral center. Secondary aims included: (i) assessment of
the individual diagnostic value of direct and indirect MUSA
sonographic markers; (ii) identification of clinical symptoms
independently associated with adenomyosis in univariate
analysis; (iii) estimation of odds ratios with 95% confidence
intervals for each clinical and sonographic marker to quantify
the magnitude of association with adenomyosis; and (iv)
evaluation of the additive diagnostic value of a composite
MUSA score derived from eight binary sonographic criteria.
Materials and methods
Study design and ethical approval
This prospective observational cohort study was conducted
at a single tertiary referral center (Department of Obstetrics
and Gynecology, Selçuk University Faculty of Medicine, Konya,
Turkey) between December 2024 and January 2026. The
study was designed, conducted, and reported in accordance
with the Strengthening the Reporting of Observational
Studies in Epidemiology (STROBE) guidelines for prospective
observational cohort studies. Ethical approval was obtained
from the Selçuk University Faculty of Medicine Clinical Research
Ethics Committee (Registration No: E.892571; Decision No:
2024/22). The study was conducted in accordance with the
principles of the Declaration of Helsinki (2013 revision) and
applicable Good Clinical Practice guidelines. Written informed
consent was obtained from all participants prior to enrollment.
A total of 177 women were included in the final analysis. A
priori power analysis was performed based on an expected
adenomyosis prevalence of 25–30% in the hysterectomy
population, a minimum detectable odds ratio of 2.5 for key
sonographic markers, 80% statistical power, and a two-sided
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
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alpha level of 0.05, indicating a required minimum sample size
of approximately 150 participants. The final enrolled sample
of 177 women was therefore considered adequate to meet
the primary study objectives. However, given the exploratory
nature of the study and the absence of multivariable modeling,
findings should be interpreted with appropriate caution.
Inclusion and exclusion criteria
Inclusion criteria were (i) Women aged 18–52 years;
(ii) scheduled for hysterectomy for benign or malignant
gynecological indications; and (iii) provision of written
informed consent prior to enrollment. Exclusion criteria were
(i) incomplete clinical or ultrasonographic data precluding
full MUSA assessment; (ii) prior uterine surgery including
myomectomy, endometrial ablation, or cesarean section,
owing to potential distortion of myometrial architecture
and junctional zone morphology; (iii) current pregnancy
or postpartum state within six months of examination; (iv)
inadequate or insufficient histopathological specimens
precluding definitive adenomyosis assessment; (v) use of
hormonal therapy within three months prior to ultrasound
examination, including combined oral contraceptives,
progestins, GnRH analogues, or levonorgestrel-releasing
intrauterine system, due to potential suppression of
sonographic adenomyosis features; (vi) known or suspected
uterine or endometrial malignancy at the time of ultrasound
examination; and (vii) technically inadequate transvaginal
ultrasound examination due to patient body habitus or probe
intolerance.
Clinical data collection
Demographic and clinical data, surgical indications,
and preoperative endometrial pathology results were
prospectively recorded on a standardized data collection
form. Histopathological diagnosis of adenomyosis was based
on internationally accepted standardized criteria: the presence
of endometrial glands and stroma within the myometrium,
located more than 2.5 mm (one low-power microscopic field)
below the endometrial-myometrial junction, accompanied
by adjacent smooth muscle hyperplasia and hypertrophy
[12]. All hysterectomy specimens were evaluated by a single
experienced gynecological pathologist who was blinded
to preoperative ultrasound findings and clinical symptom
data. Tissue sections were obtained at standardized intervals
of 3–5 mm throughout the full thickness of the uterine
wall to minimize sampling error and ensure adequate
histopathological representation [12]. All women were
systematically questioned about the presence and severity
of chronic pelvic pain, abdominal bloating, dysmenorrhea,
dyspareunia, dysuria, and dyschezia during a structured
preoperative interview. Symptom severity was quantified
using a validated 10-point Visual Analog Scale (VAS), where
0 indicated complete absence of symptoms and 10 indicated
the worst imaginable pain intensity. VAS assessments were
conducted exclusively by a single trained investigator to
minimize interobserver variability. Symptoms were recorded
as present if the VAS score was ≥1. VAS scores were additionally
analyzed as continuous variables to preserve full distributional
information. Heavy menstrual bleeding and intermenstrual
bleeding were assessed as binary variables (present/absent)
based on clinical history and FIGO PALM-COEIN criteria, rather
than VAS scoring, given their volumetric rather than pain-
based nature. All symptom assessments were performed
independently of and prior to review of ultrasound findings,
and the assessing investigator was blinded to the anticipated
surgical indication and postoperative histopathological
outcome. Symptom definitions followed current international
guidelines: dysmenorrhea, dyspareunia, dyschezia, and
chronic pelvic pain were defined according to the American
Society for Reproductive Medicine (ASRM) and European
Society of Human Reproduction and Embryology (ESHRE)
endometriosis management guidelines [13,14]. Heavy
menstrual bleeding (HMB) and intermenstrual bleeding (IB)
were defined according to the FIGO PALM–COEIN classification
system for abnormal uterine bleeding [9,15].
"Operational definitions applied in this study were as follows
Dysmenorrhea: cyclic pelvic pain occurring during
menstruation of sufficient severity to interfere with daily
activities, requiring analgesic use or resulting in activity
limitation, consistent with ESHRE endometriosis guideline
definitions [12].
Dyspareunia: pelvic or genital pain occurring during or after
sexual intercourse, assessed as superficial or deep in location,
consistent with ASRM and ESHRE definitions [12, 13].
Dyschezia: pain or significant discomfort during defecation,
particularly if cyclically exacerbated during the menstrual
period, consistent with ESHRE deep endometriosis symptom
[12] criteria [12].
Dysuria: pain, burning, or discomfort during urination,
recorded irrespective of menstrual cycle phase; urinary tract
infection was excluded clinically prior to symptom attribution
[12].
Heavy menstrual bleeding (HMB): menstrual blood loss
exceeding 80 ml per cycle, or clinically significant menstrual
bleeding that impairs physical, social, emotional, or material
quality of life, irrespective of measured volume, consistent
with FIGO PALM–COEIN criteria [9,14].
Intermenstrual bleeding (IB): uterine bleeding occurring
outside the expected menstrual period, including both
random and predictable patterns of non-menstrual bleeding,
consistent with FIGO PALM–COEIN criteria [9,14].
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
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Chronic pelvic pain (CPP): non-menstrual or non-cyclical
pelvic pain persisting for a minimum of six months, located in
the anatomical pelvis, anterior abdominal wall, lower back, or
buttocks, of sufficient severity to cause functional disability or
require medical treatment, consistent with ASRM and ESHRE
definitions [12,15].
Abdominal bloating: self-reported sensation of abdominal
distension or fullness, recorded as a binary variable (present/
absent) based on patient report during structured interview;
no validated scoring instrument was applied for this symptom.
Ultrasonographic assessment
All transvaginal ultrasound examinations were performed by
two investigators (E.Ç. and M.N.T.), each with a minimum of
five years of dedicated experience in gynecological ultrasound
and formal training in MUSA-based uterine assessment.
Sonographic findings were recorded by consensus following
simultaneous dual-operator review of each examination. In
cases of disagreement between the two primary investigators,
a third senior investigator (Ç.Ç.) with subspecialty
expertise in gynecological imaging was consulted for final
adjudication. Formal interobserver agreement statistics were
not calculated, as all examinations were performed and
interpreted by consensus rather than independently; this
represents a limitation of the present study. All transvaginal
ultrasound examinations were performed using a Mindray
DC-80 ultrasound system (Mindray Medical International,
Shenzhen, China) equipped with a 3–11 MHz transvaginal
transducer. Examinations were conducted with the woman
in the dorsal lithotomy position following complete bladder
emptying. The uterus was systematically evaluated in both
sagittal and transverse planes, with additional oblique plane
imaging performed when required for complete myometrial
assessment. Uterine length was measured in the sagittal plane
from the uterine fundus to the external cervical os. Anterior
and posterior myometrial wall thickness was measured from
the endometrial-myometrial interface to the serosal surface at
the point of maximum thickness in the sagittal plane at the
uterine midpoint. All color and power Doppler assessments
were performed using standardized gain settings, pulse
repetition frequency, and wall filter parameters to minimize
operator-dependent variability, consistent with ISUOG
technical recommendations. Sonographic evaluation followed
the 2022 revised MUSA criteria [8] and included systematic
assessment of the following parameters:
• Uterine size: For uterine size analysis, women with
sonographically confirmed leiomyomas were excluded to
minimize confounding from leiomyoma-related uterine
enlargement.
• Myometrial echogenicity: classified as homogeneous
or heterogeneous based on the overall myometrial
echotexture pattern, excluding areas occupied by
discrete lesions.
• Myometrial asymmetry: defined as an absolute
difference of more than 5 mm between the anterior and
posterior myometrial wall thickness, measured from the
endometrial-myometrial interface to the serosal surface
in the sagittal plane at the uterine midpoint, consistent
with MUSA 2022 consensus definitions [9]. An anterior-to-
posterior wall thickness ratio was additionally calculated
for descriptive purposes; however, the absolute difference
threshold of >5 mm was used as the primary binary
criterion for statistical analysis, as ratio-based definitions
have demonstrated lower interobserver reproducibility in
published MUSA validation studies [8,9,14].
• For assessment of uterine size, myometrial asymmetry, and
myometrial heterogeneity, women with sonographically
confirmed leiomyomas were excluded from the analysis,
as leiomyomas may enlarge the uterus and distort
myometrial wall thickness and echogenicity. Accordingly,
these parameters were evaluated in a leiomyoma-free
subset of the study population (adenomyosis group
n=24, control group n=41; total n=65).
• Leiomyomas: the presence, number, FIGO subtype
classification, and maximum diameter of leiomyomas
were systematically recorded. In analyses of adenomyosis-
specific lesion characteristics including lesion
echogenicity, shadowing pattern, and vascularization
cases with concurrent leiomyomas were analyzed
separately and results interpreted with caution, given
the potential for leiomyomas to confound myometrial
sonographic features.
• Lesion definition: myometrial lesions were categorized
as well-defined (typically consistent with leiomyoma,
characterized by a distinct echogenic pseudocapsule and
smooth borders) or ill-defined (suggestive of adenomyosis,
characterized by indistinct margins and gradual transition
to surrounding myometrium), consistent with MUSA
2022 criteria [8]. For well-defined lesions, FIGO subtype
location, number, and largest diameter were recorded.
For ill-defined lesions, distribution pattern (focal or
diffuse), estimated depth of myometrial penetration
(inner, middle, or outer third), and border characteristics
were systematically documented.
• Lesion echogenicity: myometrial lesion echogenicity was
classified using the five-tier MUSA grading system as very
hypoechoic (−−), hypoechoic (−), isoechoic, hyperechoic
(+), or very hyperechoic (++), with the myometrium serving
as the reference tissue for echogenicity comparison.
• Myometrial shadowing: the presence, pattern, and
intensity of myometrial acoustic shadowing were
systematically documented. Shadowing pattern was
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
39
classified as: peripheral (edge shadowing, typically
associated with leiomyoma), internal (arising from within
the lesion), or fan-shaped (arising from the endometrial-
myometrial interface and spreading into the myometrium
in a fan-like distribution, considered an indirect MUSA
marker of adenomyosis). Shadowing intensity was graded
as mild, moderate, or strong, consistent with MUSA 2022
definitions [8].
• Myometrial cysts: the presence, sonographic type,
number, and largest diameter of myometrial cysts were
systematically recorded. Cyst echogenicity was classified
according to MUSA 2022 criteria as: anechoic, low-level
echoes, ground-glass appearance, or mixed echogenicity
[8].The presence of an echogenic rim considered a specific
sonographic feature of adenomyosis-related hemorrhagic
cysts was specifically documented. Cyst number was
recorded as the primary diagnostic parameter, consistent
with MUSA guideline recommendations prioritizing cyst
count over maximum dimension as the diagnostically
relevant metric.
• Hyperechoic islands: the presence, number, and
maximum diameter of hyperechoic myometrial islands
were recorded. Hyperechoic islands were defined as
discrete, well-circumscribed, hyperechoic foci within the
myometrium, not associated with acoustic shadowing,
and distinct from calcifications, consistent with MUSA
2022 revised definitions [8]. Their presence was recorded
as a binary variable (present/absent) for primary statistical
analysis.
• Subendometrial echogenic lines and buds: the presence,
number, and uterine wall location (anterior, posterior, or
both) of subendometrial echogenic lines and buds were
systematically recorded. These features were defined
as thin, echogenic linear projections or small bud-like
echogenic foci arising from the endometrial-myometrial
interface and extending into the inner myometrium,
representing sonographic correlates of basalis
endometrial invagination, consistent with MUSA 2022
revised definitions [8]. Their presence was recorded as a
binary variable (present/absent) for primary univariate
analysis, with anterior and posterior wall localization
assessed separately as secondary endpoints.
• Junctional zone (JZ): the sonographic appearance of the
junctional zone was systematically assessed and classified
into three categories consistent with MUSA 2022 revised
definitions [9]: (i) regular a clearly visible, uniform
hypoechoic inner myometrial layer with smooth and well-
defined borders; (ii) irregular a visible but non-uniform
hypoechoic inner myometrial layer demonstrating focal
indentations, interruptions, or asymmetric thickening
without complete loss of continuity; and (iii) interrupted
a junctional zone that is partially or completely disrupted,
with loss of the continuous hypoechoic layer and direct
interface between endometrium and outer myometrium.
For primary statistical analysis, junctional zone status was
dichotomized as regular versus irregular or interrupted,
consistent with MUSA 2022 consensus recommendations
[9]. Three-dimensional ultrasound was not available in this
study; JZ assessment was therefore performed exclusively
in two-dimensional sagittal and transverse planes, which
may have limited detection sensitivity compared to 3D
coronal plane reconstruction as reported in published
comparative studies [8].
• Vascularization: myometrial lesion vascularization was
assessed using color and power Doppler imaging and
categorized according to MUSA 2022 definitions [8] as:
(i) absent no detectable vascular signal within or around
the lesion; (ii) intralesional — vascular signals distributed
randomly within the lesion without a specific pattern; (iii)
translesional — vascular signals traversing the lesion in
a linear or branching pattern from periphery to center;
and (iv) circumferential — vascular signals forming a
peripheral rim around the lesion. Doppler parameters
including gain, pulse repetition frequency, and wall filter
settings were standardized across all examinations to
minimize operator-dependent variability, consistent with
ISUOG technical recommendations.
Grouping
Preoperative symptoms and ultrasound data were recorded
independently. Final grouping was based on postoperative
histopathology: patients with histopathologically confirmed
adenomyosis comprised Group 1 (n = 52) and those without
adenomyosis comprised Group 2 (control, n = 125).
Statistical analysis
Data are summarized using descriptive statistics. Continuous
variables are presented as mean ± Standard Deviation (SD)
for normally distributed data, or as median with minimum–
maximum range for non-normally distributed data; categorical
variables are presented as absolute frequency and percentage
[n (%)]. Normality of continuous variables was assessed using
the Kolmogorov–Smirnov test with Lilliefors correction;
variables with a test statistic yielding p<0.05 were treated
as non-normally distributed. For comparisons between two
independent groups, Student's independent samples t-test
was used for normally distributed continuous variables
and the Mann–Whitney U test was used for non-normally
distributed continuous variables. Categorical variables were
compared between groups using the Pearson chi-square test;
Fisher's exact test was applied where any expected cell count
was less than five. A two-sided p-value of less than 0.05 was
considered statistically significant for all analyses. All statistical
analyses were performed using IBM SPSS Statistics version
26.0 (IBM Corp., Armonk, NY, USA).
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
40
Associations between individual clinical and sonographic
variables and histopathologically confirmed adenomyosis
were evaluated by univariate binary logistic regression
analysis, with adenomyosis status (present/absent) as the
binary dependent variable. Odds Ratios (ORs) with 95%
Confidence Intervals (CIs) and corresponding two-sided
p-values are reported for each variable. Continuous variables
were entered into logistic regression as continuous predictors;
categorical variables were entered as binary or nominal
dummy-coded predictors as appropriate. Multivariable
logistic regression was not performed owing to the exploratory
nature of the study, the relatively small number of outcome
events (n=52 adenomyosis cases), and the associated risk
of model overfitting with multiple candidate predictors;
the rule of thumb of a minimum of ten outcome events per
predictor variable was used as the guiding criterion. Variables
demonstrating p<0.10 in univariate analysis were recorded as
candidates for inclusion in future multivariable modeling in
larger independent cohorts.
Diagnostic performance metrics including sensitivity,
specificity, positive predictive value (PPV), and Negative
Predictive Value (NPV) were calculated for each statistically
significant MUSA criterion and for each statistically significant
clinical symptom variable, using histopathologically
confirmed adenomyosis as the reference standard. For binary
sonographic and clinical variables, a two-by-two contingency
table was constructed and diagnostic metrics derived
accordingly. Exact binomial 95% confidence intervals were
calculated for sensitivity and specificity estimates. Receiver
Operating Characteristic (ROC) curve analysis was performed
for the composite MUSA score as a continuous ordinal
variable; the Area Under the Curve (AUC) with 95% CI was
reported as a measure of overall discriminatory performance,
where AUC values of 0.50, 0.60–0.70, 0.70–0.80, 0.80–0.90, and
>0.90 were interpreted as no discrimination, poor, acceptable,
excellent, and outstanding discrimination, respectively. The
optimal cut-off threshold for the composite MUSA score
was determined using the Youden index (J = sensitivity +
specificity − 1), which identifies the threshold maximizing the
sum of sensitivity and specificity. Likelihood ratios — positive
likelihood ratio (LR+) and negative likelihood ratio (LR−) were
additionally calculated for the composite MUSA score at
the optimal cut-off to facilitate clinical interpretation of the
diagnostic findings. "
To evaluate the additive diagnostic value of simultaneously
assessed multiple MUSA sonographic criteria, a composite
MUSA score was prospectively calculated for each woman
by summing eight pre-specified binary MUSA variables: (i)
myometrial cysts (present=1, absent=0); (ii) subendometrial
echogenic lines and buds (present=1, absent=0); (iii)
hyperechoic islands (present=1, absent=0); (iv) myometrial
asymmetry (present=1, absent=0); (v) myometrial
heterogeneity (present=1, absent=0); (vi) junctional zone
status (irregular or interrupted=1, regular=0); (vii) fan-shaped
shadowing (present=1, absent=0); and (viii) translesional
vascularization (present=1, absent=0); yielding a total
composite MUSA score ranging from 0 to 8. These eight
variables were selected a priori based on their representation
of both direct and indirect MUSA adenomyosis markers as
defined in the 2022 revised MUSA consensus [9] and were
not selected post-hoc based on univariate analysis results, to
avoid incorporation bias.
Junctional zone status was dichotomized as regular versus
irregular or interrupted per MUSA 2022 definitions [9]. The
composite score was compared between groups using the
Mann–Whitney U test and evaluated by ROC analysis; AUC,
optimal cut-off via Youden index, sensitivity, specificity, PPV,
and NPV are reported. Women were stratified as low risk
(0–1), intermediate risk (2–3), or high risk (≥4); adenomyosis
distribution across categories was assessed by chi-square test
for trend.
Results
Demographic characteristics and symptom scores of
patients with and without adenomyosis are summarized in
Table 1. Mean age was similar between groups (46.4 ± 4.1 vs
46.4 ± 3.8 years; p>0.9; OR=0.99, 95% CI: 0.92–1.07). Gravidity
was comparable (median 3 [1–6] vs 3 [1–7]; p>0.9; OR=1.21,
95% CI: 0.96–1.54). Parity did not differ significantly between
groups (median 3 [1–5] vs 2 [1–5]; p>0.9; OR=1.01, 95% CI:
0.76–1.37). Number of living children was also similar (median
3 [1–5] vs 2 [1–5]; p=0.60; OR=1.07, 95% CI: 0.71–1.60).
Regarding symptom scores, dysmenorrhea was higher in the
adenomyosis group but the difference was not statistically
significant (median 4 [0–10] vs 2 [0–10]; p=0.21; OR=1.06,
95% CI: 0.96–1.16). Dyspareunia showed a significant positive
association with adenomyosis (median 2 [0–10] vs 0 [0–10];
p = 0.02; OR = 1.11, 95% CI: 1.01–1.23). No difference was
observed for dyschezia (median 0 [0–10] vs 0 [0–10]; p=0.88;
OR=1.02, 95% CI: 0.91–1.16) or dysuria (median 0 [0–7] vs 0
[0–10]; p=0.36; OR=0.95, 95% CI: 0.81–1.11).
Heavy menstrual bleeding was significantly more frequent
in the adenomyosis group (75.0% vs 38.4%; p<0.001; OR=4.81,
95% CI: 2.33–9.92), representing the strongest clinical
predictor of adenomyosis in this cohort. Intermenstrual
bleeding (IB) did not differ between groups (9.6% vs 13.6%;
p=0.46; OR=0.68, 95% CI: 0.24–1.94). Bloating was more
common in the adenomyosis group but not statistically
significant (63.5% vs 52%; p=0.16; OR=1.60, 95% CI: 0.83–
3.12). Chronic pelvic pain was observed more frequently in
the adenomyosis group (42.3% vs 34.4%) but this difference
was not significant (p=0.32; OR=1.39, 95% CI: 0.72–2.71).
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
41
Heavy Menstrual Bleeding (HMB) showed the highest
sensitivity at 75% with a specificity of 61.6%. Intermenstrual
Bleeding (IB) had very low sensitivity (9.6%) but high specificity
(86.4%). Bloating demonstrated moderate sensitivity (63.5%)
with low specificity (48.0%), while Chronic Pelvic Pain (CPP)
was associated with lower sensitivity (42.3%) and moderate
specificity (65.6%). Overall, HMB emerged as the most sensitive
clinical symptom, whereas IB provided the greatest specificity
for adenomyosis. Cyst size, number of islands, presence of
echogenic line and myometrial features between patients
with and without adenomyosis. In the leiomyoma-free subset,
mean uterine length was 90.7±9.4 mm in the adenomyosis
group and 87.4±16.9 mm in the control group.
Myometrial cysts were significantly more frequent in the
adenomyosis group (67.3%, 35/52) than in the control group
(38.4%, 48/125) (p < 0.001; OR = 3.30, 95% CI: 1.67–6.56).
Cyst number was higher in the adenomyosis group (median
3 [1–6] vs 2 [1–7]) and this difference was statistically
significant (p = 0.02; OR = 1.37, 95% CI: 0.98–1.98). Although
the median maximum echogenic cyst size was 7 mm (2–15)
in the adenomyosis group and 8 mm (1.3–49) in the control
group, this difference was not significant (p = 0.12; OR =
0.90, 95% CI: 0.81–1.00). Hyperechoic islands were observed
in 15.4% (8/52) of the adenomyosis group and 6.4% (8/125)
of controls; this difference approached but did not reach
statistical significance (p = 0.058; OR = 2.67, 95% CI: 0.94–7.52).
The number of islands (median 2 [1–5] vs 1.5 [1–3]) and the
maximum island size (median 11 mm in both groups) did not
differ significantly (p = 0.43 and p > 0.9, respectively).
Myometrial asymmetry was assessable in a subset of
women without concurrent leiomyomas distorting uterine
architecture (adenomyosis group n=24, control group n=41).
In this leiomyoma-free subset, myometrial asymmetry was
significantly more common in the adenomyosis group (62.5%
vs 19.5%; p<0.001; OR=6.88, 95% CI: 2.22–21.3). Similarly,
myometrial heterogeneity was significantly more frequent in
the adenomyosis group within this subset (87.5% vs 58.5%;
p=0.015; OR=4.96, 95% CI: 1.28–19.3). These analyses were
restricted to leiomyoma-free cases to avoid confounding of
indirect myometrial markers by concurrent leiomyoma-related
architectural distortion. Subendometrial echogenic lines
and buds were detected in 17.3% (9/52) of the adenomyosis
group versus 2.4% (3/125) of controls, representing the
highest specificity MUSA criterion identified in this study
(specificity 97.6%, PPV 75.0%). Anterior and posterior
positive subendometrial findings were more frequent in the
adenomyosis group (anterior 3.8% vs 0.8%; posterior 13.5%
vs 1.6%), with posterior localization showing a significant
association (OR = 9.93, 95% CI: 1.98–49.6).
Variables Adenomyosis (n=52) No adenomyosis (n=125) P value OR (95% CI)
Age (years) 46.4 (±4.1) 46.4 (±3.8) >0.9 0.99 (0.92–1.07)
Gravidity 3 (1-6) 3 (1-7) >0.9 1.21 (0.96–1.54)
Parity 3 (1–5) 2 (1–5) >0.9 1.01 (0.76–1.37)
Living children 3 (1–5) 2 (1–5) 0.60 1.07 (0.71–1.60)
Dysmenorrhea 4 (0–10) 2 (0–10) 0.21 1.06 (0.96–1.16)
Dyspareunia 2 (0–10) 0 (0–10) 0.02 1.11 (1.01–1.23)
Dyschezia 0 (0–10) 0 (0–10) 0.88 1.02 (0.91–1.16)
Dysuria 0 (0–7) 0 (0–10) 0.36 0.95 (0.81–1.11)
HMB Yes
No
39 (75)
13 (25)
48 (38.4)
77 (61.6)
<0.001 4.81 (2.33–9.92)
IB Yes
No
5 (9.6)
47 (90.4)
17 (13.6)
108 (86.4)
0.46 0.68 (0.24–1.94)
Bloating Yes
No
33 (63.5)
19 (36.5)
65 (52)
60 (48)
0.16 1.60 (0.83–3.12)
CPP Yes
No
22 (42.3)
30 (57.7)
43 (34.4)
82 (65.6)
0.32 1.39 (0.72–2.71)
HMB: Heavy Menstrual Bleeding; IB: Intermenstrual Bleeding; CPP: Chronic Pelvic Pain; OR: Odds Ratio; 95% CI: 95% Confidence Interval. Data are presented as
mean ± standard deviation, median (min–max), or n (%) as appropriate. p<0.05 was considered statistically significant.
Table 1. Demographic characteristics and symptom scores by group.
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
42
Myometrial cysts showed a sensitivity of 67.3% and a
specificity of 61.6%. Hyperechoic islands had low sensitivity
(15.4%) but high specificity (93.6%). Myometrial asymmetry
demonstrated a sensitivity of 62.5% and a specificity of 80.5%.
Myometrial heterogeneity was highly sensitive (87.5%) but
less specific (41.5%). Subendometrial echogenic line and buds
presented a sensitivity of 17.3% with very high specificity
(97.6%). Overall, myometrial heterogeneity emerged as the
most sensitive finding, while subendometrial echogenic line
and buds provided the greatest specificity for adenomyosis.
Table 3 summarizes the comparison of well- defined versus
ill-defined lesions, myometrial lesion echogenicity, junctional
zone appearance, and vascularization patterns between
patients with and without adenomyosis. Well- defined lesions
(typically compatible with leiomyoma/myoma) were observed
in 57.7% (30/52) of the adenomyosis group and 67.2% (84/125)
of the control group, with no significant difference (p = 0.22;
OR = 0.66, 95% CI: 0.34–1.30). Ill- defined lesions were mostly
absent (adenomyosis 86.5% vs control 90.4%); there were no
significant differences for focal type (5.8% vs 6.4%; OR = 0.94,
95% CI: 0.24–3.71) or diffuse type (7.7% vs 3.2%; OR = 2.51,
95% CI: 0.60–10.5) (p = 0.42).
Myometrial lesion echogenicity did not differ significantly
between groups for isoechoic (38.5% vs 34.4%), hypoechoic
(13.5% vs 11.2%; OR = 0.88, 95% CI: 0.41–1.90), hyperechoic
(9.6% vs 20.8%; OR = 0.95, 95% CI: 0.33–2.80), or very
hypoechoic lesions (1.9% vs 1.6%; OR = 0.95, 95% CI: 0.08–
11.1) (p = 0.37). Conversely, very hyperechoic lesions were
absent in the adenomyosis group and present in 3.2% (4/125)
of controls; owing to zero cells in the adenomyosis group, a
meaningful odds ratio could not be estimated by standard
logistic regression (complete separation); this finding is
reported descriptively only.
Junctional zone assessment in the adenomyosis group
showed regular 40.4% (21/52), irregular 38.5% (20/52),
and interrupted 21.2% (11/52). In controls, the distribution
was regular 55.2% (69/125), irregular 20.8% (26/125), and
interrupted 24.0% (30/125).
Shadowing patterns in the adenomyosis group were
fan-shaped 28.8% (n = 15), internal 21.2% (n = 11), and
peripheral 13.3% (n = 7); in the non-adenomyosis group
these were 33.6% (n = 42), 25.6% (n = 32), and 11.2% (n = 14),
respectively. Among cases without shadowing, adenomyosis
was present in 36.5% (n = 19) versus 29.6% (n = 37) in
the control group. These differences were not statistically
significant (p = 0.73).
Table 2. Ultrasonographic data by group: Key measurements (uterine length, cyst and island features).
Variables Adenomyosis
(n=52)
No adenomyosis
(n=125)
P value OR (95% CI)
Uterine length (mm) 90.7 (±9.4) 87.4 (±16.9) 0.59 0.99 (0.99–1.01)
Myometrial cysts Yes
No
Number
Max echogenic cyst size (mm)
35 (67.3)
17 (32.7)
3 (1–6)
7 (2–15)
48 (38.4)
77 (61.6)
2 (1–7)
8 (1.3–49)
<0.001
0.02
0.12
3.30 (1.67–6.56)
1.37 (0.98–1.98)
0.90 (0.81–1.00)
Hyperechoic islands Yes
No
Numbers
Max island size (mm)
8 (15.4)
44 (84.6)
2 (1–5)
11 (0.7–17)
8 (6.4)
117 (93.6)
1.5 (1–3)
11 (3.2–20)
0.058
0.43
>0.9
2.67 (0.94–7.52)
1.63 (0.57–4.65)
0.97 (0.81–1.17)
Myometrial asymmetry Yes
No
15 (62.5)
9 (37.5)
8 (19.5)
33 (80.5)
<0,001 6.88 (2.22–21.3)
Myometrial heterogeneity Yes
No
21(87.5)
3 (12.5)
24 (58.5)
17 (41.5)
0.015 4.96 (1.28–19.3)
Subendometrial
echogenic line and buds
Positive
Negative
Numbers
Negative
Positive (+/anterıor)
Positive (+/posterıor)
9 (17.6)
122 (97.6)
3 (1–6)
43 (82.7)
2 (3.8)
7 (13.5)
3 (2.4)
43 (82.7)
2 (1–7)
122 (97.6)
1 (0.8)
2 (1.6)
<0.001
0.73
<0.001
8.51 (2.20–32.9)
1.60 (0.24–10.9)
-
5.58 (0.50–64.2)
9.93 (1.98–49.6)
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
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No significant differences were found in lesion vascularization
between groups. Absence of vascularization was observed in
38.5% (20/52) of the adenomyosis group and 30.4% (38/125)
of controls (p = 0.22). Intralesional vascularization was present
in 23.1% (12/52) of adenomyosis cases and 29.6% (37/125)
of controls (OR = 0.62, 95% CI: 0.26–1.44). Translesional
vascularization was observed in 9.6% (5/52) of the adenomyosis
group and 19.2% (24/125) of controls, without statistically
significant difference (OR=0.39, 95% CI: 0.13–1.19; p=0.10).
Circumferential vascularization was observed in 28.8% (15/52)
of adenomyosis patients and 20.8% (26/125) of controls (OR =
1.09, 95% CI: 0.48–2.53).
Table 4 summarizes the distribution of MUSA scores between
patients with and without adenomyosis, presenting median
values and risk group classifications along with their statistical
significance. The composite MUSA score was significantly
higher in the adenomyosis group than in the control group
(median 3.0, range 0–5 versus median 2.0, range 0–5; Mann–
Whitney U test, p=0.003), confirming the additive diagnostic
value of simultaneously assessed multiple MUSA criteria.
Risk stratification demonstrated a significant difference in
adenomyosis prevalence across MUSA score categories (chi-
square test for trend, p=0.002): adenomyosis was confirmed
in 20.0% (7/35) of low-risk women (score 0–1), 24.5% (26/106)
of intermediate-risk women (score 2–3), and 52.8% (19/36) of
high-risk women (score ≥4), representing a significant stepwise
increase in adenomyosis probability with increasing composite
score. Conversely, the majority of non-adenomyosis patients
fell into the intermediate risk category (64.0%), while 50.0% of
adenomyosis patients were also in this group. The chi-square
test confirmed a statistically significant association between
MUSA risk categories and adenomyosis status (p = 0.002).
Table 3. Ultrasonographic characteristics of myometrial lesions, junctional zone, shadowing, and vascularization in patients with and without
adenomyosis.
Variables Adenomyosis
(n=52)
No adenomyosis
(n=125)
P value OR (95% CI)
Myometrial lesion Well-defined (leiomyoma
Ill-defined lesion
Negative
Positive
Negative
Positive (focal)
Positive (diffuse)
22 (42.3)
30 (57.70)
45 (86.5)
3 (5.8)
4 (7.7)
41 (38.8)
84 (67.20)
113 (90.4)
8 (6.4)
4 (3.2)
0.22
0.42
0.66 (0.34–1.30)
-
0.94 (0.24–3.71)
2.51 (0.60–10.5)
Myometrial lesion
echogenicity
Isoechoic
Hypoechoic
Hyperechoic
Very hypoechoic
Very hyperechoic
20 (38.5)
7 (13.5)
5 (9.6)
1 (1.9)
0
43 (34.4)
14 (11.2)
26 (20.8)
2 (1.6)
4 (3.2)
0.37 -
0.88 (0.41–1.9)
0.95 (0.33–2.8)
0.95 (0.08–11.1)
Not estimable
Junction Zone Regular
Irregular
Interrupted
Regular
Irregular and Interrupted
21 (40.4)
20 (38.5)
11 (21.2)
21 (40.4)
31 (59.6
69 (55.2)
26 (20.8)
30 (24)
69 (55.2)
56 (44.8)
0.047
0.073
-
2.57 (1.18–5.40)
1.21 (0.52–2.81)
1.81 (0.94–3.50)
Shadowing No
Fan-shape shadowing
Internal Shadowing
Edge Shadowing
19 (36.5)
15 (28.8)
11 (21.2)
7 (13.5)
37 (29.6)
42 (33.6)
32 (25.6)
14 (11.2)
0.73 -
0.69 (0.31–1.56)
0.67 (0.29–1.61)
0.97 (0.34–2.80)
Vascularization of
Myometrial lesion
Absent
Intralesional
Translesional
Circumferential
20 (38.5)
12 (23.1)
5 (9.6)
15 (28.8)
38 (30.4)
37 (29.6)
24 (19.2)
26 (20.8)
0.22 -
0.62 (0.26–1.44)
0.39 (0.13–1.19)
1.09 (0.48–2.53)
OR: Odds Ratio; 95% CI: 95% Confidence Interval. Data are presented as mean ± standard deviation, median (min– max), or n (%) as appropriate. p <0.05 was
considered statistically significant.
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
44
ROC curve analysis of the composite MUSA score
demonstrated an AUC of 0.636 (95% CI: 0.543–0.729;
SE=0.047; p=0.004), indicating poor discriminatory ability per
the prespecified AUC classification, though significantly above
chance level. At the optimal cut-off of 3.5 (corresponding to a
score of ≥4) determined by the Youden index, the composite
score yielded a sensitivity of 36.5%, specificity of 86.4%, PPV of
57.6%, and NPV of 75.0%. The high specificity at this threshold
indicates that a composite MUSA score of ≥4 functions
primarily as a rule-in marker for adenomyosis, whereas the low
sensitivity indicates limited ability to exclude adenomyosis
when the score is below this threshold.
Variables Adenomyosis (n=52) No adenomyosis (n=125) P value
MUSA score points 3.0 (0–5) 2.0 (0–5) 0.003
MUSA Score Low risk
Intermediate risk
High risk
7 (13.5%)
26 (50.0%)
19 (36.5%)
28 (22.4%)
80 (64.0%)
17 (13.6%)
0.002
MUSA = Morphological Uterus Sonographic Assessment, OR = Odds Ratio, CI = Confidence Interval, SD = Standard Deviation, n = number of cases,
p-value = probability value.
Table 4. Comparison of MUSA score between adenomyosis and non-adenomyosis groups.
Table 5. ROC curve analysis of the composite MUSA score for detection of histopathologically confirmed adenomyosis.
Test Variable AUC (95% CI) SE P-value Optimal
Cut-off
Sensitivity (%) Specificity (%) PPV (%) NPV (%) Y ouden
Index
Musa score 0.636 (0.543–0.729) 0.047 0.004 3.5 (≥4) 36.5 86.4 57.6 75.0 0.229
AUC: Area Under the Curve; CI: Confidence Interval; SE: Standard Error; PPV: Positive Predictive Value; NPV: Negative Predictive Value. The optimal cut-
off of 3.5 corresponds to a composite MUSA score of ≥4. Sensitivity, specificity, PPV, NPV, and Youden index were calculated using histopathologically
confirmed adenomyosis as the reference standard.
Figure 1. Receiver Operating Characteristic (ROC) curve for the composite MUSA score in the detection of histopathologically confirmed
adenomyosis. The blue line represents the discriminatory performance of the composite score; the red diagonal reference line represents
chance-level performance (AUC=0.50). The AUC of 0.636 (95% CI: 0.543–0.729; p=0.004) indicates poor discriminatory ability per the
prespecified classification, though significantly above chance level. The optimal cut-off of 3.5 (corresponding to a composite MUSA score of
≥4), determined by the Youden index, yielded a sensitivity of 36.5%, specificity of 86.4%, PPV of 57.6%, and NPV of 75.0%. At this threshold,
a composite score of ≥4 functions as a rule-in marker for adenomyosis (high specificity, SpPin), whereas a score below this threshold does
not reliably exclude the diagnosis.
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
45
Discussion
The present study evaluated the diagnostic value of
preoperative TVUS using MUSA criteria in 177 women
undergoing hysterectomy, with histopathological confirmation
serving as the reference standard. Adenomyosis was confirmed
in 52 women (29.4%), consistent with previously reported
prevalence rates of 20–35% in hysterectomy specimens. The
key findings of this study were: (a) heavy menstrual bleeding
and dyspareunia were the strongest clinical correlates of
adenomyosis; (b) subendometrial echogenic lines/buds,
myometrial asymmetry, heterogeneity, cysts, and junctional
zone irregularity were the most diagnostically informative
MUSA criteria; and (c) uterine size in the leiomyoma-free
subset, shadowing patterns, vascularization, and lesion
echogenicity demonstrated no significant associations
with adenomyosis [9,14]. These findings broadly support
the MUSA consensus recommendation for comprehensive
multi-criterion evaluation rather than reliance on any single
sonographic feature.
No significant differences in age, gravidity, parity, or number
of living children were observed between groups, consistent
with contemporary evidence challenging the classical
characterization of adenomyosis as a disease exclusively of
older multiparous women. The mean age of approximately
46 years in both groups reflects the hysterectomy population
rather than the broader adenomyosis population; advanced
imaging now enables diagnosis in younger and nulliparous
women who would not historically have been captured in
hysterectomy-based prevalence studies [7,12,16,17]. These
findings support the view that demographic factors alone are
insufficient to guide clinical suspicion for adenomyosis and
that objective imaging-based assessment is essential across
all age and parity groups.
Adenomyosis is most often associated with heavy menstrual
bleeding, dysmenorrhea, chronic pelvic pain, and infertility
[6,17]. However, these symptoms are not specific, as similar
complaints occur in leiomyoma, endometriosis, and other
benign gynecological conditions. Therefore, diagnosis cannot
rely solely on clinical findings. Heavy menstrual bleeding
was the strongest clinical predictor of adenomyosis in our
cohort, increasing the likelihood of histopathologically
confirmed disease nearly fivefold. This finding is consistent
with previous evidence identifying heavy menstrual bleeding
as a frequent manifestation of adenomyosis and may be
explained by impaired uterine contractility and hemostasis,
local inflammation, aberrant angiogenesis, progesterone
resistance, and increased endometrial surface area secondary
to myometrial hypertrophy [17,19,20]. Accordingly,
adenomyosis should be considered in the differential diagnosis
of women presenting with unexplained or treatment-resistant
heavy menstrual bleeding.
Dyspareunia was significantly associated with adenomyosis
in our cohort (p=0.02; OR=1.11), albeit with a modest effect
size. This association is likely mediated by posterior myometrial
wall involvement, which has been demonstrated in up to 60%
of adenomyosis cases. The proposed mechanisms include
increased density of substance P-positive nerve fibers within
adenomyotic lesions, elevated expression of pro-inflammatory
cytokines including IL-1β, IL-6, and TNF-α, enhanced local
prostaglandin E2 synthesis, and sensitization of pelvic
nociceptors through repeated inflammatory stimulation
[15,17,18]. Notably, the co-occurrence of deep infiltrating
endometriosis — which shares overlapping symptom
profiles and is present in 35–80% of adenomyosis cases —
may have contributed to dyspareunia scores in our cohort,
as endometriosis was not systematically excluded. Future
studies should prospectively stratify dyspareunia analysis
by endometriosis status to better isolate the adenomyosis-
specific contribution.
Contrary to the classical association between adenomyosis
and dysmenorrhea, our study found no statistically significant
difference in dysmenorrhea VAS scores between groups
(p=0.21; OR=1.06). This finding warrants careful interpretation
for several reasons. First, dysmenorrhea is inherently non-
specific, occurring in leiomyoma, endometriosis, primary
dysmenorrhea, and pelvic inflammatory disease all of which
were present in our surgical cohort. Second, the use of
VAS as a continuous measure rather than a binary present/
absent variable may have reduced statistical power to detect
group differences. Third, preoperative analgesic or hormonal
medication use — which was not systematically recorded
may have attenuated reported pain scores in both groups.
Fourth, the relatively advanced mean age of our cohort
(46.4 years) may reflect a shift toward HMB as the dominant
symptom, as dysmenorrhea severity has been reported
to paradoxically decrease with age in some adenomyosis
phenotypes. These considerations suggest that the absence
of a significant dysmenorrhea association in our study reflects
methodological factors rather than a true biological absence
of this symptom [3]. Intermenstrual bleeding and bloating
also lacked diagnostic value, being reported as nonspecific
supportive findings rather than primary indicators [1,16].
Among direct MUSA markers, myometrial cysts were
significantly more frequent in the adenomyosis group (67.3%
vs 38.4%; OR=3.30; p<0.001). Histopathologically, these cysts
represent dilated ectopic endometrial glandular spaces within
the myometrium, often related to cyclic hemorrhage and fluid
accumulation. Although MUSA 2022 classifies myometrial
cysts as a direct marker of adenomyosis, the specificity in our
cohort was lower than that reported in dedicated ultrasound
studies, probably reflecting the high prevalence of coexisting
leiomyomas and other non-adenomyosis-related cystic or
pseudocystic myometrial changes. Importantly, cyst number
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
46
rather than maximum cyst size was the diagnostically relevant
parameter, supporting MUSA recommendations to document
cyst count during structured reporting. Hyperechoic islands
showed a borderline association with adenomyosis (p=0.058;
OR=2.67), suggesting a potential confirmatory role in larger
cohorts because of their low sensitivity but relatively high
specificity profile [4,17].
Myometrial asymmetry demonstrated one of the strongest
associations with adenomyosis in the leiomyoma-free subset
of our cohort (OR=6.88, 95% CI: 2.22–21.3; sensitivity 62.5%,
specificity 80.5%), consistent with findings of Van den Bosch
et al. and the MUSA 2022 Delphi consensus [7,8]. Since
leiomyomas can directly distort myometrial wall thickness
and confound asymmetry assessment, this analysis was
intentionally restricted to leiomyoma-free cases. The relatively
modest sensitivity indicates that absence of asymmetry does
not reliably exclude adenomyosis, particularly in early or focal
disease.
Myometrial heterogeneity demonstrated the highest
sensitivity among all MUSA criteria in the leiomyoma-
free subset (87.5%), albeit with limited specificity (41.5%),
consistent with its role as a sensitive but non-specific indirect
adenomyosis marker reflecting disorganized myometrial
architecture and fibrotic stromal changes [4]. Given that
heterogeneity assessment was restricted to leiomyoma-free
cases in the present study, the observed specificity may be
higher than would be expected in an unselected hysterectomy
population where concurrent leiomyomas frequently produce
heterogeneous myometrial echotexture.
No significant differences were observed for well- or ill-defined
lesions and fibroid presence. The coexistence of leiomyomas
is frequently reported, with hysterectomy series showing
rates of 35–60% [3,12]. Fibroids complicate diagnosis due to
acoustic shadowing and distortion but are not protective or
risk-enhancing factors. Similarly, lesion echogenicity patterns
were not distinctive, as described in MUSA-based sonographic
assessment studies [14,16].
Neither myometrial shadowing patterns nor vascularization
characteristics demonstrated significant associations with
adenomyosis in our cohort (p=0.73 and p=0.22, respectively).
These negative findings are consistent with published meta-
analyses reporting high operator dependency and low
interobserver reproducibility for both parameters. Fan-shaped
shadowing, while described in the MUSA consensus as an
indirect adenomyosis marker, has been shown to have limited
standalone diagnostic value when evaluated independently
of other criteria, with sensitivity estimates of 30–40% and wide
confidence intervals across studies. Similarly, Doppler-based
vascularization assessment is highly technique-dependent;
standardized gain settings, pulse repetition frequency, and
wall filter parameters critically influence vascular signal
detection, and the absence of a standardized Doppler
protocol in our study may have reduced the reliability of these
assessments. MUSA consensus recommendations support
interpreting Doppler findings as supportive features within
a comprehensive MUSA evaluation rather than as primary
diagnostic criteria, a recommendation strongly supported by
our finding [16].
Subendometrial echogenic lines and buds demonstrated the
strongest sonographic association with adenomyosis in our
cohort (OR=8.51, 95% CI: 2.20–32.9; p<0.001) and the highest
specificity among evaluated MUSA criteria (97.6%). Despite
low sensitivity, their presence can therefore be considered
a strong rule-in marker. Posterior wall localization showed a
particularly strong association, consistent with the reported
predilection of adenomyosis for the posterior myometrium.
Histopathologically, these findings likely represent basalis
endometrial invaginations into the inner myometrium,
supporting the junctional zone invagination hypothesis. Their
low sensitivity in this study may partly reflect the exclusive use
of two-dimensional TVUS, as three-dimensional coronal plane
reconstruction improves assessment of subendometrial and
junctional zone abnormalities [8, 9].
Junctional zone irregularity was significantly associated
with adenomyosis in our cohort (OR=2.57, 95% CI: 1.18–5.40;
p=0.047), with a calculated sensitivity of 48.8% and specificity
of 72.6%. The junctional zone, representing the inner
myometrium adjacent to the endometrial basalis, is the primary
site of adenomyosis initiation according to the invagination
hypothesis. Its disruption manifesting sonographically
as irregularity or interruption of the hypoechoic inner
myometrial layer is considered a pathognomonic early marker
of adenomyosis. The relatively modest sensitivity observed
in our 2D TVUS study is consistent with published literature
demonstrating superior JZ assessment with 3D ultrasound
and MRI. Harmsen et al. demonstrated that 3D TVUS achieves
substantially higher interobserver agreement for JZ assessment
compared to 2D TVUS, and MRI-based JZ thickness exceeding
12 mm has been established as a validated diagnostic
threshold. The use of 2D TVUS in our study may therefore have
underestimated the true diagnostic value of JZ assessment;
future studies incorporating 3D TVUS or MRI are needed to
fully characterize JZ performance in this [19].
Several limitations should be considered. First, this was a
single-center study, which may limit generalizability. Second,
formal interobserver agreement could not be calculated
because ultrasound examinations were performed by
simultaneous dual-operator consensus review rather than
independent assessment; this should be addressed in future
studies. Third, although all hysterectomy specimens were
reviewed by a single blinded gynecological pathologist using
standardized diagnostic criteria and 3–5 mm tissue sampling
intervals, histopathological diagnosis of adenomyosis may
Taşpınar MN, Çelik C, Çintesun E. Evaluation of Adenomyosis by MUSA Based Transvaginal Ultrasound in Women
Undergoing Hysterectomy. Arch Obstet Gynecol. 2026;7(1):35–48.
Arch Obstet Gynecol. 2026
Volume 7, Issue 1
47
still be affected by sampling error because adenomyotic foci
can be patchy and heterogeneous. Fourth, the exclusion of
women using hormonal therapy within three months before
ultrasound may reduce, but cannot completely eliminate, the
potential effect of prior or unreported hormonal exposure
on myometrial echogenicity or junctional zone appearance.
Fifth, the absence of multivariable logistic regression limits
assessment of independent predictors after adjustment for
confounders. Sixth, endometriosis was not systematically
recorded, preventing evaluation of its potential confounding
effect on symptoms and sonographic findings.
Conclusion
Our findings support the use of structured preoperative
TVUS assessment in women scheduled for hysterectomy.
Evaluation should focus on the MUSA criteria most strongly
associated with adenomyosis in this cohort: myometrial
cysts, myometrial asymmetry, myometrial heterogeneity,
subendometrial echogenic lines/buds, and junctional zone
irregularity. Multiple positive criteria may increase diagnostic
suspicion and support preoperative counseling, particularly
in women with heavy menstrual bleeding and dyspareunia.
MRI may be considered when TVUS findings are equivocal or
technically limited.
Conflict of Interest
The authors declare no conflict of interest.
Funding
This research received no specific grant from any funding
agency in the public, commercial, or not-for-profit sectors.
Author Contributions
Merve Nur Taşpınar contributed to data collection, ultrasound
assessment, data organization, and manuscript preparation.
Çetin Çelik contributed to ultrasound assessment, clinical
supervision, interpretation of findings, and critical manuscript
revision. Ersin Çintesun contributed to study conception and
design, data collection, ultrasound assessment, supervision,
and manuscript revision. All authors reviewed and approved
the final manuscript.
Acknowledgements
None declared.
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