Methods
This study was conducted as a case control study after approval of the
research ethics committee of the faculty of medicine, Suez Canal University, in May
2019 with a number of 3849. We recruited patients over six months. The study was
carried out in the obstetrics and gynecology department, Suez Canal University
Hospitals.
The study was carried on patients admitted to the ward fulfilling the
following inclusion and exclusion criteria. Inclusion criteria: - a) patients with
previous CS, b) patients presenting for emergency or elective CS delivery. Exclusion
criteria: - a) previous midline surgery, b) history of wound complications, c)
history of endometriosis, d) history of pelvic inflammatory disease (PID), e) other
abdominal operations other than CS, f) keloid scar formation, g) chronic steroid
therapy, h) Cushing disease, i) adrenal hyperplasia, j) Ehlers-Danlos syndrome, k)
Marfan syndrome, l) Skin disease as lichen sclerosis, m) Prolonged progesterone use,
n) history of multiple pregnancies, o) history of hydramnios, p) history of
macrosomic babies and q) family history of striae on other parts of the body
(breast, hips, and buttocks).
After fulfilling the above criteria, the study included two groups.
Group one was assessed for the presence of striae and the degree of intra-abdominal
adhesions was evaluated during the current CS. Group two included patients without
evidence of abdominal striae and were evaluated for the severity of adhesions after
evaluating the previous scar.
All participants gave written informed consent before entering the
study. Patients eligible for the study had the following:- a- Preoperative evaluation: including personal data (age,
weight, height, BMI, occupation, level of education, contact
information), obstetric history (parity, gestational age, number of
previous CS), and any chronic illness. A blood sample for a group
and save was withdrawn. b- Evaluation of striae: using Davey’s scoring system
[ 13 ]. In this
system, the abdomen is divided into four quadrants using vertical
and horizontal lines passing by the umbilicus. Each quadrant is
examined for the striae and scored in the following manner: Clear skin, scored as 0 A moderate number of striae scored as 1 Many striae, scored as 2.
Preoperative evaluation: including personal data (age,
weight, height, BMI, occupation, level of education, contact
information), obstetric history (parity, gestational age, number of
previous CS), and any chronic illness. A blood sample for a group
and save was withdrawn.
Evaluation of striae: using Davey’s scoring system
[ 13 ]. In this
system, the abdomen is divided into four quadrants using vertical
and horizontal lines passing by the umbilicus. Each quadrant is
examined for the striae and scored in the following manner:
Clear skin, scored as 0
A moderate number of striae scored as 1
Many striae, scored as 2.
This leads to a total score of 0–8. The severity of striae is
classified as none (0), mild [ 1 ,
2 ], moderate [ 3 , 4 ], or severe [ 5 – 8 ]. Evaluation of the striae was done by the same researcher
using the figure provided by Buchanan et al. [ 13 ]. Evaluation of intraabdominal adhesions was done by another
researcher. Both of them were blinded to the results reported by each other. c- The scar was assessed using the Vancouver Scar Scale
(VSS). This scale evaluates the scar for pigmentation, vascularity,
pliability, and height [ 14 ]. d- Intraperitoneal adhesions were evaluated by the
modified Nair’s scoring system. This system classified adhesions
into no adhesions, thin filmy adhesions (either single or two bands
of adhesions between viscera or from viscera to the abdominal wall),
and thick, dense adhesions (more than two bands between viscera or
from viscera to the abdominal wall, multiple dense adhesions, or
viscera directly adherent to the abdominal wall, regardless of the
number or extent of the bands) [ 15 ].
The scar was assessed using the Vancouver Scar Scale
(VSS). This scale evaluates the scar for pigmentation, vascularity,
pliability, and height [ 14 ].
Intraperitoneal adhesions were evaluated by the
modified Nair’s scoring system. This system classified adhesions
into no adhesions, thin filmy adhesions (either single or two bands
of adhesions between viscera or from viscera to the abdominal wall),
and thick, dense adhesions (more than two bands between viscera or
from viscera to the abdominal wall, multiple dense adhesions, or
viscera directly adherent to the abdominal wall, regardless of the
number or extent of the bands) [ 15 ].
Striae and scare characters were evaluated by a researcher who was
blinded to the extent of intraperitoneal adhesions.
Data were statistically described in terms of mean and standard
deviation, frequencies (number of cases), and percentages when appropriate.
P values less than 0.05 were considered
statistically significant. All statistical calculations were done using computer
program SPSS (Statistical Package for the Social Science; SPSS Inc., Chicago,
IL, USA) release 22 for Microsoft Windows. Chi-square test was used for
categorical variables and (t) test for continuous variables with normally
distributed data. Non-normally distributed data were tested using non-parametric
tests. Receiver operator characteristic curve was constructed for the Davey’s
and Vancouver scores to have its cutoff point for the prediction of
intraperitoneal adhesions. Sensitivity and specificity were calculated. For the
construction of logistic regression models for the prediction of intraperitoneal
adhesions, the dependent variable was the presence or absence of adhesions. This
was put against all of the variables that it depended upon; hence, there were
multiple simple logistic models each with a significant factor. These
significant factors were put in a model and factors were removed one by one to
produce a best-fit multiple logistic model.
Results
We recruited patients over six months from June to December 2019. The
study group included 203 women, while the control group included 205 women. Data
were analyzed according to the grade of Davey’s score (mild, moderate, and severe).
Patients with no evidence of abdominal striae were considered as controls. Subgroup
analysis of the study group was done according to the severity of their Davey’s’
score. There were significant differences in the demographic characters of the
recruited patients ( p -value 0.001 for almost all
variables) (Table 1 ). Table 1 Patient demographic data according to the distribution of
abdominal striae Davey’s score grade None Mild Moderate Severe p -value Age (years)
(Mean ± SD) 27.92 ± 3.1 29.5 ± 5.76 31.96 ± 5.67 33.23 ± 4.68 < 0.001 Parity
(Mean ± SD) 1.28 ± 0.45 2.17 ± 1.31 2.57 ± 1.53 2.75 ± 1.55 < 0.001 Number of previous CS
(Mean ± SD) 1.22 ± 0.42 1.72 ± 0.85 1.87 ± 0.91 2.52 ± 1.38 < 0.001 Weight (kg)
(Mean ± SD) 76.46 ± 11.66 80.14 ± 10.55 86.22 ± 11.05 84.38 ± 13.49 < 0.001 Height (cm)
(Mean ± SD) 164.98 ± 6.92 162.62 ± 5.38 162.96 ± 5.58 164.71 ± 4.27 < 0.001 Body mass index (kg/m^2)
(Mean ± SD) 28.11 ± 4.2 30.41 ± 4.47 32.52 ± 4.21 31.05 ± 4.67 < 0.001
Patient demographic data according to the distribution of
abdominal striae
The mean Davey score in those with mild, moderate, and severe striae
was 1.82 ± 0.39, 3.57 ± 0.5, and 6.73 ± 0.94, respectively ( p -value < 0.001). Higher scores for the parameters of the
Vancouver scale were present in patients with severe striae (1.69 ± 1.01,
1.73 ± 0.57, 2.67 ± 1.23, and 1.35 ± 1.06 for scar vascularity, pigmentation,
pliability, and height respectively with a p -value of < 0.001 each). Thick intraperitoneal adhesions were noted
significantly in women with severe striae [21 (43.75%), p -value < 0.001) (Table 2 ). Table 2 Scare characters and intrabdominal adhesions in relation to
abdominal striae Davey’s score grade None (205) Mild (109) Moderate (46) Severe (48) p -value Vascularity
(Mean ± SD) 0.61 ± 0.82 0.89 ± 0.64 1.07 ± 0.8 1.69 ± 1.01 < 0.001 Pigmentation
(Mean ± SD) 0.84 ± 0.83 1.01 ± 0.73 1.54 ± 0.62 1.73 ± 0.57 < 0.001 Pliability
(Mean ± SD) 1.11 ± 0.99 1.34 ± 1.05 1.83 ± 1.34 2.67 ± 1.23 < 0.001 Height (mm)
(Mean ± SD) 0.56 ± 0.76 0.77 ± 0.73 1 ± 0.89 1.35 ± 1.06 < 0.001 Total score (/13)
(Mean ± SD) 3.12 ± 2.97 4.01 ± 2.52 5.43 ± 2.75 7.44 ± 2.92 < 0.001 Davey’s score
(Mean ± SD) 0 ± 0 1.82 ± 0.39 3.57 ± 0.5 6.73 ± 0.94 < 0.001 Intraperitoneal adhesions
(N%) None 171 (83.41%) 24 (22.02%) 9 (19.57) 10 (20.83) < 0.001 Thin
filmy 34 (16.59%) 74 (67.89%) 24 (52.17) 17 (35.42) Thick 0 (0%) 11 (10.09%) 13 (28.26) 21 (43.75)
Scare characters and intrabdominal adhesions in relation to
abdominal striae
Women with intraperitoneal adhesions had more vascular, hyperpigmented,
less liable, and elevated scars than those without ( p -value < 0.001 each) (Table 3 ). Table 3 Scar characters in women with intraperitoneal
adhesions Adhesion occurrence No Yes p -value Variable Attribute n (%) n (%) Vascularity Normal 127 (59.35) 32 (16.49) < 0.001 Red 57 (26.64) 114 (58.76) Pink 14 (6.54) 38 (19.59) Purple 16 (7.48) 10 (5.15) Total 214 (100) 194 (100) Pigmentation Normal 96 (44.86) 28 (14.43) < 0.001 Hypopigmented 44 (20.56) 88 (45.36) Hyperpigmented 74 (34.58) 78 (40.21) Total 214 (100) 194 (100) Pliability Normal 66 (30.84) 16 (8.25) < 0.001 Supple 90 (42.06) 83 (42.78) Yielding 47 (21.96) 36 (18.56) Firm 0 (0) 42 (21.65) Ropes 11 (5.14) 8 (4.12) Contracture 0 (0) 9 (4.64) Total 214 (100) 194 (100) Height
(mm) 0.5 ± 0.75 1.05 ± 0.85 < 0.001 Total score
(/13) 3.08 ± 3.08 5.28 ± 2.81 < 0.001
Scar characters in women with intraperitoneal
adhesions
The Davey’s and Vancouver scores showed highly significant predictive
performance in the prediction of intraperitoneal adhesions ( p -value < 0.001) (Table 4 ). Table 4 Linear regression model for the prediction of
intra-peritoneal adhesions Variables β P -value OR 95% CI OR Age
(years) 0.217 < 0.001 1.243 (1.156–1.335) Education −2.093 < 0.001 0.123 (0.071–0.215) Body mass
index 0.083 0.008 1.086 (1.022–1.155) Vancouver
score 0.236 < 0.001 1.267 (1.119–1.433) Davey
score 0.479 < 0.001 1.615 (1.374–1.898)
Linear regression model for the prediction of
intra-peritoneal adhesions
Davey’s score of ≥1 significantly predicted intraperitoneal adhesions
with a sensitivity and specificity of 82.47 and 79.91%, respectively. Also, a
Vancouver score of 2 was highly significant in the prediction of intraperitoneal
adhesions. It had a sensitivity of 84.02% and specificity of 56.07%
(Table 5 , Fig. 1 ). Table 5 Cut- off value for the Davey score and the Vancouver
score Variable AUC p -value Cut-off point Sensitivity Specificity PPV NPV LR+ LR- Davey’s score 0.811 < 0.001 1 82.47 79.91 78.8 83.4 4.1 0.22 Vancouver score 0.719 < 0.001 2 84.02 56.07 63.4 79.5 1.91 0.28 Fig. 1 ROC (Receiver Operating Characteristics) curve showing the
diagnostic accuracy of the Davey’s and Vancouver’s scores in the
prediction of intra-abdominal adhesions
Cut- off value for the Davey score and the Vancouver
score
ROC (Receiver Operating Characteristics) curve showing the
diagnostic accuracy of the Davey’s and Vancouver’s scores in the
prediction of intra-abdominal adhesions
Strengths
Strengths included a large sample size of recruited patients;
subanalysis of the patients with striae into mild, moderate and severe provided more
robust results, evaluation of the striae and CS scar using simple scoring systems,
and the recruited population was of the same ethnicity. However, we did not have any
previous medical records about the operative notes of the previous deliveries since
most of them delivered in private sittings outside the hospital previously. We did
not consider the inter-pregnancy interval as a risk factor for adhesion formation.
Also, we did not evaluate the color of the striae. We did not evaluate the impact of
the dense adhesions on the difficulty of the cesarean delivery.
Background
Intra-abdominal adhesions contribute significantly to surgical morbidity
in addition to infertility. Cesarean section (CS) is considered one of the most
commonly practiced surgical procedure by obstetricians. This raised the assumption
that the prediction of intraabdominal adhesions would lead to decreased morbidity
[ 1 ]. Intraabdominal adhesions occur
at a 7% rate after one CS up to 68% with repeated cesareans [ 2 ].
Striae are linear skin changes in areas of skin stretching that cause
bothering disfigurement. This occurs because of dermal damage. This stretching
occurs due to pregnancy, as well as obesity and Cushing syndrome [ 3 ]. By examination, they appear as pink– purple
and, finally, depressed white lines. Histologically, these areas are characterized
by a decreased extracellular matrix as well as decreased collagen [ 4 ].
The epidermis at the site of the abdominal scars demonstrates delicate
well-organized collagen bundles arranged parallel to each other [ 5 ]. However, scars do not heal similarly, raising
the suggestion of a possible relationship to intra-abdominal adhesions [ 6 ].
The similarity in the formation of these changes raised the possibility
of using abdominal striae and scar appearance as predictive tools for the severity
of intra-abdominal adhesions. Because of the conflicting results about the role of
abdominal striae and cesarean scar characters in the prediction of intra- abdominal
adhesions [ 7 – 12 ], the current
study was conducted.
Conclusion
Abdominal striae and CS scar were significant predictors for
intraperitoneal adhesions. Women with severe striae had thick intraperitoneal
adhesions. Women with intraperitoneal adhesions had more vascular, hyperpigmented,
less pliable and elevated scars.
Discussion
Nearly half of the studied population had abdominal striae. There were
discrepancies in the prevalence of abdominal striae in the previous studies with
rates of 65.7, 67.7% among Egyptian women [ 7 , 16 ] and 80, and
57.9% among Turkish women [ 8 ,
17 ]. This would be rendered to
different sample sizes as well as different races among the studied
populations.
The subanalysis performed for the study group demonstrated significant
differences in the demographic characters. In the cohort evaluated in a recent
study, there were no differences in the demographic data of the recruited population
[ 7 ]. However, in the cohort
evaluated by another researcher, a significant difference was reported between the
three groups in age, BMI, weight gain during pregnancy, and fetal weight
[ 16 ]. Such differences would be
rendered to different patient grouping (no/mild striae as a group and severe striae
as the other one in the former, and no, mild and severe striae in the
latter).
Thick intraperitoneal adhesions were noted significantly in women with
severe striae. This was following the results reported by Abbas et al.; however,
they reported that 90% of women with severe striae had thick adhesions with mean
Davey score of 4.25 ± 3.36 [ 7 ]. Another
study reported close results to the current one (50% of patients with severe striae
had dense adhesions) [ 8 ]. This
difference would be explained by the different samples included besides; both
studies divided patients into two groups only.
In contention with the current study, there was no difference in
peritoneal adhesions in women with or without striae [ 9 , 10 ]. However,
another study reported higher rates of intraperitoneal adhesions in women with no or
mild striae than those with severe striae (67.3, 65.9, and 36.3%, respectively)
[ 17 ]. This was explained by the
frequent presence of dysfunctional fibroblasts in striae and adhesions. Fibroblasts
have an essential role in collagen production in the adhesions; accordingly adhesion
formation decreases [ 17 ]. Besides, the
different tools for evaluation of the striae would result in variable results,
especially when incorporating the striae color, which was not evaluated in the
current study.
The current study reported intraperitoneal adhesions occurring in 194/
408 (47.5%) of the studied population. This was lower than reported by others (59.6
and 54.3%) [ 16 , 17 ]. However, too much higher rates of
intraperitoneal adhesions were reported by Abbas et al. and Khalifi et al. (87 and
73.5%, respectively) [ 7 , 18 ]. This disparity in results would be rendered
to differences in surgeons, techniques, and suture materials used in the
operations.
Women with severe striae and those with intraperitoneal adhesions had
more vascularized, hyperpigmented, less pliable and elevated CS scars. This
contradicted the results reported by previous research, which stated that flat
unpigmented scars were more prominent in women with striae. They explained this by
the overexpression of transforming growth factor- Beta. It leads to deficient
elastin production, which is a causative factor in the formation of abdominal striae
[ 9 ].
To achieve perfect scar remodeling, collagen fibers are organized in a
parallel fashion. While, in elevated scars, increased collagen production is noted.
This was thought to arise from variability in transforming growth factor-beta, which
plays an essential role in the formation of hypertrophic scars as well as
intraperitoneal adhesions [ 17 ]. Scar
width and appearance showed significant association with dense intraperitoneal
adhesions ( p -value 0.001, and 0.002 respectively)
[ 10 ]. Depressed hypopigmented scars
were also associated with adhesions, which were assumed to arise from the inward
traction from the adhesion bands [ 19 ,
20 ]. Besides, in a meta-analysis of
numerous studies, they reported that flat scars were indicative of absent adhesions
while depressed ones were associated with adhesions [ 11 ]. Conflicting results exist as elevated scars were found to be
associated with more adhesions all over the abdomen than flat or depressed ones
[ 12 ].
The Davey’s and Vancouver scores showed a highly significant predictive
performance in the prediction of intraperitoneal adhesions. This was similar to the
results reported previously, where Davey score of 2 was considered a significant
risk factor in predicting intraperitoneal adhesions. Also, the best cut off was ≥3
with reported sensitivity and specificity of 64 and 51.3%, respectively
[ 7 ] with higher results reported by
the current study at a cut off ≥1. However, Abdelaal et al. reported that abdominal
striae were not considered a predictor for abdominal adhesions while the number of
previous CS did [ 16 ].
The role of the scar characters in relation to intraperitoneal
adhesions needs to be evaluated deeply. Further studies evaluating the impact of
intra- abdominal adhesions on the difficulty of the cesarean delivery are
recommended. This would be represented by the total duration of the operation,
need for blood transfusion, and possible visceral injury.
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