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    <description>Ibrahim Medical College Journal of Medical Science</description>

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                <title><![CDATA[Pregnancy with pleural
effusion – challenges in diagnosis and management]]></title>

                                    <author><![CDATA[Shahana Shermin*]]></author>
                                    <author><![CDATA[Samsad Jahan]]></author>
                                    <author><![CDATA[Ruma Sen Gupta]]></author>
                                    <author><![CDATA[Aysha Noor]]></author>
                
                <link data-url="https://imcjms.com/registration/journal_full_text/615">
    https://imcjms.com/registration/journal_full_text/615
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                <pubDate>Tue, 22 Sep 2026 10:09:26 +0000</pubDate>
                <category><![CDATA[Clinical Case Report]]></category>
                <comments><![CDATA[July 2026; Vol. 20(2):003]]></comments>
                <description>Abstract
Tuberculosis (TB) remains a major public health threat in
Bangladesh. Pregnant women face a heightened risk of contracting TB, which can
lead to a more severe clinical trajectory and severely compromise both maternal
and fetal outcomes. Approximately two-thirds of pregnant women with TB are
asymptomatic, largely due to latent infection. Diagnosis is difficult because
constitutional TB symptoms mimic normal physiological changes during pregnancy,
radio-imaging options are restricted, and invasive diagnostic procedures are
often delayed. Here we report a case of tuberculosisin a pregnant woman who
presented with a short history of breathlessness and cough with low-grade
fever, and progressive breathlessness that swiftly evolved into severe
respiratory distress. A chest X-ray confirmed a right-sided pleural effusion.
Although sputum smears were negative for Acid-Fast Bacilli (AFB) and GeneXpert,
pleural fluid thoracocentesis revealed marked lymphocytosis (98%) and elevated
adenosine deaminase (ADA) levels. This critical finding secured the diagnosis
of tuberculous pleural effusion (TPE) on the 6th day of the puerperium.
Tuberculous pleuritis during pregnancy is a rare, life-threatening condition
that presents significant diagnostic hurdles due to its non-specific and
delayed presentation. However, in regions with a high TB burden, clinicians
must maintain a high index of clinical suspicion for tuberculosis in any
pregnant woman presenting with unexplained pleural effusion. 
July 2026; Vol. 20(2):003.&amp;nbsp;
DOI: https://doi.org/10.55010/imcjms.20.012
*Correspondence:
Shahana Shermin, Assistant Professor, Dept.
of Obstetrics &amp;amp; Gynaecology, Ibrahim Medical College &amp;amp; BIRDEM General
Hospital, 1/A Segunbagicha Road, Dhaka-1000, Bangladesh. E-mail:
shahana.shermin@yahoo.com.
© 2026 The Author(s). This is an open access article distributed under
the terms of the Creative Commons Attribution License(CC BY 4.0)
&amp;nbsp;
Introduction
Tuberculosis (TB) is a public health concern in our
country. Bangladesh faces a high tuberculosis burden, ranking among the top 30
countries globally, with an estimated incidence rate of 221 per 100,000
population with roughly 78,000 cases estimated to be undetected as of 2023
[1]. Notably, out of the 10.7 million new TB cases reported in 2024, nearly 35%
occurred in women of reproductive age [2]. Consequently, pregnant women
represent a highly vulnerable demographic. Tuberculosis in pregnant state is
described as a “double edged sword”, as it adversely affects maternal and fetal
condition while pregnancy also has worsening effects on the progression of
tuberculosis [3]. Screening and diagnosis are further complicated by
physiological and immunological adaptations during pregnancy, leading to
frequent diagnostic delays [2]. The gestational suppression of the T-helper 1
(Th1) proinflammatory response – essential for maintaining maternal-fetal
tolerance – simultaneously heightens susceptibility to new TB infections and
latent reactivation. This immunological shift is also responsible for masking
symptoms, making TB diagnosis delayed and more difficult [4]. Consequently, a
large proportion of pregnant women remain asymptomatic or present with subtle
symptoms (such as fatigue, night sweats, and dyspnea) that are easily mistaken
for typical pregnancy-related fatigue and shortness of breath [5].
Diagnosing TB becomes even more challenging when the
disease presents as Extrapulmonary Tuberculosis (EPTB). EPTB frequently
manifests with atypical features, creating critical delays in intervention.
Tuberculous pleural effusion (TPE) is the second most common form of
extrapulmonary tuberculosis, accounting for approximately 15-25% of all EPTB
cases [6,7]. It is even more difficult to diagnose TPE due to the low count of
tubercle bacilli in pleural fluid. While pleural biopsy remains the definitive
test for confirmation, it is invasive and conventional microbiological fluid
analyses fail to yield positive results in the vast majority of cases [8]. In
contrast, measuring pleural fluid Adenosine Deaminase (ADA) offers high
sensitivity and specificity for early TPE detection, even when bacterial
density is negligible. Today, pleural fluid ADA is a essential frontline tool
in evaluating unexplained effusions in TB-endemic regions [6]. 
Here, we report a rare, diagnostically elusive case of tuberculous
pleural effusion in a pregnant woman who presented with non-specific symptoms
and a negative AFB smear, where elevated pleural fluid ADA served as the sole
definitive key to the diagnosis. 
&amp;nbsp;
Case
presentation
A 27-year-old housewife, para 1, gravida
2nd, presented at the Obstetrics &amp;amp; Gynaecology outpatient
department of BIRDEM General Hospital at her 36+5 weeks of gestation
with the complaints of a 2-day history of progressive
breathlessness, cough, and intermittent fever with an evening rise, without
chills or rigors. She had no prior history of asthma, tuberculosis, or known
exposure to active TB cases. On examination
she was mildly anaemic, non-icteric, with no oedema and no groups of (including
supraclavicular) lymph nodes were palpable. Her temperature was 100°F, pulse 90
b/min and blood pressure 110/70 mmHg. SPO2 was 91% in room air in
lying position. She had tachypnoea (respiratory rate 24 breaths/min), chest
expansion was restricted on right side with dullness
on percussion, and decreased breath sounds over the right lung field. Three
hours post-admission, the patient developed lower abdominal pain accompanied by
per-vaginal watery discharge. Obstetric examination revealed active fetal
movements, 2 uterine contractions per 10 minutes, and a normal baseline fetal
heart rate (FHR) of 145 bpm. Vaginal examination showed a soft cervix with a
closed os, station -2, and the presence of bloody show
was present. A preliminary diagnosis of 2nd gravida
at 36⁺⁵ weeks in early labour complicated by right-sided pleural effusion was
established. Initial laboratory workup revealed ESR
80 in first 10 min, Hb% 9.5 gm/dl, WBC 9,800 cmm/mL with normal differential
count. Over the next 5 hours, labour progression stalled while
the mother&#039;s respiratory distress rapidly intensified. Concurrently,
cardiotocography (CTG) demonstrated a non-reassuring trace with fetal
tachycardia (180–186 bpm) and decreased fetal movement. Due to acute fetal
distress, an emergency Lower Uterine Cesarean Section (LUCS) was performed. The amniotic fluid was found to be deeply meconium-stained.
A male infant weighing 2.5 kg was delivered with APGAR scores of 4 at 1 minute
and 6 at 5 minutes, requiring immediate admission to the Neonatal Intensive
Care Unit (NICU).
On the first postoperative day, the patient suffered
severe acute respiratory distress. Clinical examination showed a soft abdomen,
a well-contracted uterus at the umbilical level, present bowel sounds, and
normal lochia. A bedside chest X-ray confirmed a significant right-sided
pleural effusion. 
A
pulmonology consultation was obtained, and therapeutic/diagnostic
thoracocentesis was performed, yielding approximately 1,000 mL of fluid. Protein content was 2.0 g/dL (normal 1-2 g/dL), lactate
dehydrogenase (LDH) 120 IU/L (&amp;lt;50 IU/L), adenosine deaminase (ADA) 50 IU/L
(40 IU/L) with mild neutrophilia (55%). Sputum was negative for acid fast
bacilli (AFB) and Gene Xpert. Despite fluid drainage, the patient’s condition
worsened, with SpO2 dropping even with supplemental oxygen via a
high-flow mask (8 L/min), necessitating transfer to the Intensive Care Unit
(ICU). Thoracocentesis was repeated on 5th post operative day and
the tests were repeated. On repeat analysis, all the parameters were
significantly raised; protein content was raised to 3.6 g/dL, LDH 240 IU/L, ADA
72 IU/L, WBC 11,000 cmm/mL with marked lymphocytosis (98%). Sputum and second
sample of pleural fluid were still negative for AFB and Gene Xpert on repeated
smear. Due to her financial constraints advanced diagnostic tests such as QuantiFERON
TB Gold, Interferon-Gamma Release Assays (IGRA), or a thoracic CT scan could
not be performed. Relying on mycobacterial cultures was impractical given their
long turnaround time. However, a pleural fluid ADA of &amp;gt;40 IU/L with
lymphocyte predominance gives a strong suspicion of tuberculous aetiology and
an indication to start anti-TB therapy [7]. Following pulmonology guidelines, standard anti-tubercular therapy
(ATT) was initiated: a 2-month intensive phase of Rifampicin, Isoniazid,
Ethambutol, and Pyrazinamide, followed by a 4-month continuation phase of
Rifampicin and Isoniazid [9].
As patient was sputum negative, strict
airborne isolation was not required. However, comprehensive counseling was
provided regarding medication adherence, hand hygiene, cough etiquette, and
mask usage while handling the baby. The patient exhibited a dramatic recovery.
Within 2 weeks of ATT initiation, she became completely afebrile, her dyspnea
resolved, and her general condition improved significantly. At her 3-week
follow-up, breastfeeding was successfully initiated, and both mother and infant
were in good health.
&amp;nbsp;
Discussion
Tuberculous pleural effusion (TPE) is a paucibacillary (low bacterial count)
mycobacterial infection within the pleural space followed by a T-cell mediated
hypersensitivity reaction [10]. Patients commonly
present with nonspecific symptoms, such as fever, non-productive cough,
pleuritic chest pain, and dyspnea [6]. A recent study
including 304 patients of TPE showed fever (76%) cough (75%, with expectoration
in 40%), chest pain (61%) and respiratory distress (49%), fatigue (41%) and
night sweats (38%) as the presenting symptoms [11]. Our patient also had fever, cough and dyspnea, but had
no chest pain.
Pathophysiologically, TPE begins with
a rapid, transient neutrophilic influx, followed by a sustained lymphocytic
reaction, pleural granuloma formation, and localized ADA release. This might be responsible for decreased positive
pleural fluid culture with time, as the effusion becomes lymphocyte
predominant, and viable mycobacteria are sequestered [8]. Onyenekwu et al. reported that most patients with TB
pleural effusions present without an elevation in the peripheral white blood
cell count during the acute febrile illness [12]. 
Pleural fluid in our patient was negative for acid-fast bacilli (AFB) in repeated samples. The diagnosis of TPE and distinguishing it from other
causes of pleural effusion is challenging and often delayed, especially if
clinicians still depend primarily on the demonstration of Mycobacterium
tuberculosis (MTB) on Ziehl Neelsen (ZN) staining or positive culture in
pleural tissue or fluid samples for the definite diagnosis [13]. Pleural fluid examination with ZN stain
requires an AFB density of &amp;gt;10,000/ml
to be positive. So, ZN staining has very poor sensitivity due to the low
bacterial count in pleural fluid in TPE and culture is time-consuming [14]. AFB
smears from pleural fluid are rarely positive, with reported positivity rates
of less than 5-15% [6,15]. Though MTB
culture requires much less viable material, it is time consuming (2 weeks in
liquid media compared to 6 weeks for traditional solid media) and is also
poorly sensitive, with positivity rates of as low as &amp;lt;20% [6,8]. In a case
reported byAhuja et al., the pleural fluid culture tested positive for AFB, but
it took 4 weeks [16]. Only then anti-TB
therapy was started and she made a rapid recovery with liberation from
mechanical ventilation in the intensive care unit. 
On X-ray chest, this patient had right sided pleural
effusion without any parenchymal involvement. So, it was difficult to assume
the cause of the effusion from the radiograph. Actually, there are no specific
or distinguished pleural radiologic findings that can confirm TPE [7]. Rate of parenchymal
involvement in TPE is quite low, reported to be 30-38% in a number of previous
studies [7,17]. Tuberculous
pleural effusions are unilateral in most of the cases, as seen in this case,
with no predilection for either the left or right hemithorax and usually
occupies less than two-thirds of the hemithorax in 80% of cases [18]. Thoracic ultrasound is better in
characterizing the nature of the effusion and also helps in guided
thoracocentesis and closed pleural biopsies [8]. Ahuja et al.
reported a similar case where early use of bedside lung ultrasonography (USG)
was instrumental in the successful management of their patient who was admitted
in critical care unit with TPE and was in shock [16].
Computed tomographic (CT) scan of the chest is currently the best imaging
modality to visualize both pleura and lung parenchyma in TB pleural effusions [8].Parenchymal involvement rates with TPE are
consistently higher when CT chest studies are performed [7]. We did not have the facility of bedside USG and CT scan
was not considered due to financial constraints of the patient.
Alternative methods
which have better sensitivity and need much less time include pleural biopsy
via thoracoscopy, pleural fluid adenosine deaminase assay (ADA) and
tuberculosis antibody (TB-antibody) test [19]. While pleural
biopsy has higher diagnostic sensitivity, it is invasive and not always
feasible. In this context, high adenosine deaminase (ADA) measurement in
pleural fluid has emerged as a valuable diagnostic tool in recent years [6]. 
Pleural fluid analysis for biochemical
parameters is very important in determining the probable cause. The effusion is
uniformly exudative having protein concentrations invariably &amp;gt;5.0, and
&amp;gt;3.0 g/L in 50% to 77% of cases [8]. The pleural fluid lactate
dehydrogenase (LDH) level is elevated in approximately 75% of cases, with
levels commonly exceeding 500 IU/L [7]. In our reported case, protein
content of pleural fluid was 3.6 g/dL in second sample and LDH was also raised
(240 IU/L). But the breakthrough test was pleural fluid ADA level which was 72
IU/ L and guided us to the final diagnosis of
TPE. According to several large studies and a
recent meta-analysis, among the available biochemical markers, ADA, IFN-γ, and
IL-27 are the most promising and considering that ADA has advantages of low
cost and suitability for standardization, ADA is recommended for TPE diagnosis
[13].
Testing pleural fluid ADA level is very useful in establishing the
diagnosis of TPE especially when there is a moderate to high suspicion of TB in
patients with negative pleural fluid or biopsy cultures, and non-diagnostic
histology [20]. A wide range of
cut-off values are in use but in the majority of studies the most accurate
threshold was found to range between 40 and 60 U/L [13,19]. In a comprehensive meta-analysis, Aggarwal et al.
showed that pleural fluid ADA has a sensitivity of 92% and specificity of 90%
for the diagnosis of TPE [21]. Liang et al. [22] also reported almost
similar sensitivity and specificity. Vorster et al. [8] suggested that in populations with a
high prevalence of TB and clinical suspicion of TB effusion, elevated ADA level
might be considered as a confirmatory test justifying prompt treatment initiation. In
high-burden areas it is often used routinely in the investigation of
undiagnosed pleural effusions, or to supplement standard pleural fluid analysis
where a tuberculous effusion is suspected [7,8]. In a prospective analysis of 100 patients in a
teaching hospital of Nepal, diagnosis of TB pleural effusion was made based on
pleural fluid ADA cut-off value of 42.19 U/L and almost all patients diagnosed
to have TB pleural effusion responded completely to anti-tubercular treatment [23]. In countries like
ours, where the BCG vaccination is used nationally the Mantoux test has limited
utility. So, this relatively non-invasive, inexpensive and quick diagnostic
test has now become an important tool against challenging situations as seen in
our case. Alsaeed et al. has reported a similar case
of TPE with only evidence of high ADA and negative AFB smear, TB polymerase
chain reaction (PCR), and M. tuberculosis culture [6]. Several authors
have reported that in the early phase of the disease, levels of pleural fluid
ADA may be low giving rise to a false negative result. However, ADA level
invariably is found elevated when thoracocentesis is repeated a few days later [24]. We did also
find rising ADA level in the second sample taken at 5 days interval. 
The predominant nucleated cell type
also varies depending on timing of collection of the pleural fluid. Pleural fluid findings are known to evolve from early
neutrophil to lymphocytic predominance in TB effusions, and the value of repeat
thoracocentesis has been shown to significantly increase the diagnostic yield. Fluid
collected in the first few days may exhibit a neutrophil predominant effusion,
while lymphocytes tend to dominate (&amp;gt;75%) later
on [7,8]. In our case, there was
mild neutrophilia (55%) in the first sample and in the second sample lymphocyte
was 98%. Lo Cascio et al. [7] have shown that pleural fluid from most of the TPE cases have
more than 50% lymphocytes, with some having more than 90%. When lymphocyte count is &amp;gt;75% or a
lymphocyte neutrophil ratio is 0.75 or greater in combination with raised ADA,
the sensitivity, specificity, positive predictive value, negative predictive
value, and efficiency for the identification of TB were reported at 88%, 95%,
95%, 88%, and 92%, respectively [8]. In a high-burden
and resource constrained setting it may therefore be appropriate to repeat
thoracocentesis before proceeding to pleural biopsy.
Vorster et al.
commented that the medical treatment for TB pleural effusion is the same as for
pulmonary TB with a variable rate of resolution [8]. Fever usually
resolves within 2 weeks with reabsorption of the pleural fluid within 6
weeks. By using the raised ADA level as a diagnostic tool, we could start
prompt anti-TB treatment and our patient also became afebrile within 2 weeks. 
&amp;nbsp;
Conclusion
Tuberculous pleuritis in pregnancy is
a rare, complex clinical condition characterized by deceptive, non-specific
symptoms and limited diagnostic options. In high-prevalence settings,
clinicians must maintain a high index of suspicion for TB whenever evaluating
unexplained pleural effusions in pregnant or postpartum women. High ADA levels in pleural fluid with a lymphocytic
exudate provide a strong basis for prompt anti-TB therapy, preventing
catastrophic maternal-fetal morbidity even when traditional smears and cultures
remain inconclusive. 
&amp;nbsp;
Consent to
participate and publish
The patient has given consent for publication.
&amp;nbsp;
Conflict
of interest
The authors declare no competing financial or non-financial interests
in relation to this work.
&amp;nbsp;
Funding Sources
The author(s) received no external funding was
received for this study.
&amp;nbsp;
Author contributions
SS Designed the report, prepared,
reviewed, did literature search and drafted the manuscript. SJ reviewed the
manuscript, RSG helped in literature search and reviewed manuscript, and AN
helped in patient selection and management.
&amp;nbsp;
Acknowledgments 
We are particularly thankful to the
consultants of the department of Respiratory Medicine, BIRDEM General Hospital,
for their immense cooperation in timely diagnosis and prompt management of this
case. 
&amp;nbsp;
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&amp;nbsp;
&amp;nbsp;
Cite this article
as:
Shermin
S, Jahan S, Gupta RS, Noor A.
Pregnancy with pleural effusion – challenges in diagnosis
and management. IMC J Med Sci. 2026; 20(2):003. DOI:https://doi.org/10.55010/imcjms.20.012</description>

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