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<article xmlns:xlink="http://www.w3.org/1999/xlink" article-type="research-article" dtd-version="1.2" xml:lang="en"><front><journal-meta><journal-id journal-id-type="publisher-id">jsocmed</journal-id><journal-title-group><journal-title>Journal of Society Medicine</journal-title></journal-title-group><issn pub-type="epub">2964-5565</issn><publisher><publisher-name>CoinReads Media Prima</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="doi">10.71197/jsocmed.v5i6.285</article-id><article-categories><subj-group subj-group-type="heading"><subject>Case Reports</subject></subj-group></article-categories><title-group><article-title>Lymph Node Enlargement as a Manifestation of Systemic Venous Congestion in Patients with High VExUS Scores: A Case Series</article-title></title-group><contrib-group><contrib contrib-type="author"><name><surname>Taufiqurrahman</surname><given-names>Rizki</given-names></name><xref ref-type="aff" rid="aff1"/></contrib><contrib contrib-type="author"><name><surname>Darmawan</surname><given-names>Edi</given-names></name><xref ref-type="aff" rid="aff2"/></contrib><contrib contrib-type="author"><name><surname>Dalimunthe</surname><given-names>Sutan Syarief Muda</given-names></name><xref ref-type="aff" rid="aff3"/></contrib><contrib contrib-type="author"><name><surname>Lubis</surname><given-names>Bastian</given-names></name><xref ref-type="aff" rid="aff4"/></contrib><contrib contrib-type="author"><name><surname>Lubis</surname><given-names>Andriamuri Primaputra</given-names></name><xref ref-type="aff" rid="aff5"/></contrib><contrib contrib-type="author"><name><surname>Nadea</surname><given-names>Rommy Fransiscus</given-names></name><xref ref-type="aff" rid="aff6"/></contrib><contrib contrib-type="author"><name><surname>Permana</surname><given-names>Septian Adi</given-names></name><xref ref-type="aff" rid="aff7"/></contrib></contrib-group><aff id="aff1"><institution>Department of Anesthesiology and Intensive Care, RSUD dr. H. Yuliddin Away, Aceh Selatan</institution>, <country>Indonesia</country></aff><aff id="aff2"><institution>RSUD dr. Zainoel Abidin, Banda Aceh</institution>, <country>Indonesia</country></aff><aff id="aff3"><institution>RSUD H. Oka Zulkarnaen, Batu Bara, North Sumatra</institution>, <country>Indonesia</country></aff><aff id="aff4"><institution>Department of Anesthesiology and Intensive Care, RSUP H. Adam Malik, Medan, North Sumatra</institution>, <country>Indonesia</country></aff><aff id="aff5"><institution>Department of Anesthesiology and Intensive Care, RSUP H. Adam Malik, Medan, North Sumatra</institution>, <country>Indonesia</country></aff><aff id="aff6"><institution>Department of Anesthesiology and Intensive Care, RSUP H. Adam Malik, Medan, North Sumatra</institution>, <country>Indonesia</country></aff><aff id="aff7"><institution>RSUD dr. Moewardi, Surakarta, Central Java</institution>, <country>Indonesia</country></aff><pub-date pub-type="epub"><year>2026</year><month>6</month><day>30</day></pub-date><volume>5</volume><issue>6</issue><fpage>234</fpage><lpage>240</lpage><history><date date-type="received"><day>13</day><month>4</month><year>2026</year></date><date date-type="accepted"><day>29</day><month>6</month><year>2026</year></date></history><permissions><copyright-year>2026</copyright-year><license license-type="open-access" xlink:href="https://creativecommons.org/licenses/by/4.0"><license-p>This is an open access article distributed under the Creative Commons Attribution 4.0 International License.</license-p></license></permissions><abstract><p><bold>Introduction: </bold>Fluid overload in critically ill patients increases central venous pressure (CVP) and induces systemic venous congestion, a recognized contributor to organ dysfunction. The Venous Excess Ultrasound Score (VExUS) is a bedside ultrasonographic method that grades venous congestion by integrating inferior vena cava (IVC) diameter with hepatic, portal, and renal venous Doppler patterns. Because the major lymphatic vessels drain into the central venous circulation through the thoracic duct, sustained elevation of CVP may also impede lymphatic outflow and cause reactive enlargement of regional lymph nodes. To describe supraclavicular lymph node enlargement as a clinical manifestation of systemic venous congestion in critically ill patients with high VExUS scores.</p><p><bold>Methods</bold>: This case series included five mechanically ventilated patients with respiratory failure and fluid overload admitted to the intensive care unit of H. Adam Malik General Hospital, Medan. Bedside ultrasonography assessed the IVC diameter and hepatic, portal, and renal venous Doppler to determine the VExUS grade, together with the evaluation of the subclavian vein and supraclavicular lymph nodes.</p><p><bold>Results</bold>: The five patients (aged 57–77 years) had a mean IVC diameter of 2.14 ± 0.21 cm. Four patients had a VExUS grade of 3, and one had a grade of 2. All patients demonstrated supraclavicular lymph node enlargement (10.3–17.6 mm), with larger nodes tending to occur in patients with higher VExUS grades.</p><p><bold>Conclusion</bold>: Supraclavicular lymph node enlargement may represent a reactive manifestation of systemic venous congestion in critically ill patients with high VExUS scores and could serve as an adjunctive parameter for assessing fluid overload in the intensive care unit setting.</p></abstract></article-meta></front><body>
<sec id="introduction">
  <title>INTRODUCTION</title>
  <p>Fluid overload is common in critically ill patients and, when
  sustained, raises central venous pressure (CVP) and promotes systemic
  venous congestion, which is increasingly recognized as an important
  driver of organ dysfunction, particularly acute kidney injury [1,2].
  The Venous Excess Ultrasound Score (VExUS) is a bedside
  ultrasonographic tool that provides a comprehensive, semi-quantitative
  assessment of venous congestion by combining the inferior vena cava
  (IVC) diameter with the Doppler waveform patterns of the hepatic,
  portal, and renal veins [3]. Higher VExUS grades have been associated
  with worse clinical outcomes, especially renal dysfunction, and have
  been proposed to guide decongestive (de-resuscitation) therapy in the
  intensive care unit [4].</p>
  <p>Systemic venous congestion arising from fluid overload is not
  confined to the intra-abdominal venous compartments evaluated by
  VExUS; it also extends to the thoracic venous compartment, including
  the subclavian and internal jugular veins. Importantly, the major
  lymphatic vessels return lymph to the systemic circulation at the
  junction of the subclavian and internal jugular veins via the thoracic
  duct. Consequently, an increase in CVP can increase the outflow
  resistance of the lymphatic system, impede lymphatic drainage, and
  lead to lymphatic stasis and tissue congestion [5]. Although the
  pathophysiological link between venous congestion and impaired
  lymphatic drainage is recognized, its clinical manifestation as
  enlargement of regional lymph nodes has rarely been reported,
  particularly in critically ill patients in the intensive care unit.
  Therefore, we described supraclavicular lymph node enlargement as a
  clinical manifestation of systemic venous congestion in critically ill
  patients with high VExUS scores and explored its potential value as an
  adjunctive bedside marker of fluid overload.</p>
</sec>
<sec id="method">
  <title>METHOD</title>
  <p>Bedside ultrasonography was performed in five patients admitted
  with fluid overload to the intensive care unit (ICU) of H. Adam Malik
  General Hospital, Medan. All patients underwent bedside
  ultrasonographic assessment of systemic venous congestion, comprising
  measurement of IVC diameter and collapsibility and Doppler
  interrogation of the hepatic, portal, and renal veins for VExUS
  grading according to the standard protocol [9]. In addition, physical
  examination and ultrasonography of the veins and lymph nodes were
  performed, focusing on the supraclavicular region, to evaluate venous
  and lymph node enlargement.</p>
  <p>Written informed consent was obtained from each patient or their
  legal surrogate for the ultrasonographic examination and for the use
  of anonymized images and clinical data for publication. The report was
  prepared in accordance with the CARE (CAse REport) guidelines. As a
  descriptive case series of routinely acquired bedside imaging, no
  inferential statistical testing was performed; continuous variables
  are presented as mean ± standard deviation (SD) and range.</p>
</sec>
<sec id="results">
  <title>RESULTS</title>
  <p>This case series evaluated systemic venous congestion using VExUS
  in five critically ill patients with respiratory failure. All patients
  were elderly: four men aged 57–77 years and one woman aged 60 years.
  The primary diagnoses were respiratory failure with sepsis (Case 1),
  respiratory failure with pneumonia (Case 2), respiratory failure with
  sepsis and acute kidney injury (Case 3), and respiratory failure with
  chronic kidney disease (Cases 4 and 5). Patient characteristics are
  summarized in Table 1.</p>
  <p>Table 1. Clinical and ultrasonographic characteristics of the five
  patients</p>
  <table-wrap>
    <table>
      <colgroup>
        <col width="23%" />
        <col width="15%" />
        <col width="17%" />
        <col width="19%" />
        <col width="9%" />
        <col width="2%" />
        <col width="13%" />
      </colgroup>
      <thead>
        <tr>
          <th>Variable</th>
          <th align="center">Case 1</th>
          <th align="center">Case 2</th>
          <th align="center">Case 3</th>
          <th align="center">Case 4</th>
          <th align="center" colspan="2">Case 5</th>
        </tr>
      </thead>
      <tbody>
        <tr>
          <td>Age (years) / Sex</td>
          <td align="center">66 / M</td>
          <td align="center">62 / M</td>
          <td align="center">60 / F</td>
          <td align="center" colspan="2">77 / M</td>
          <td align="center">57 / M</td>
        </tr>
        <tr>
          <td>Diagnosis</td>
          <td align="center">RF + sepsis</td>
          <td align="center">RF + pneumonia</td>
          <td align="center">RF + sepsis + AKI</td>
          <td align="center" colspan="2">RF + CKD</td>
          <td align="center">RF + CKD</td>
        </tr>
        <tr>
          <td>IVC diameter (cm)</td>
          <td align="center">2.13</td>
          <td align="center">2.42</td>
          <td align="center">2.26</td>
          <td align="center" colspan="2">2.02</td>
          <td align="center">1.86</td>
        </tr>
        <tr>
          <td>VExUS grade</td>
          <td align="center">Grade 2</td>
          <td align="center">Grade 3</td>
          <td align="center">Grade 3</td>
          <td align="center" colspan="2">Grade 3</td>
          <td align="center">Grade 3</td>
        </tr>
        <tr>
          <td>Lymph node (mm)</td>
          <td align="center">12.4</td>
          <td align="center">13.6</td>
          <td align="center">17.6</td>
          <td align="center" colspan="2">10.3</td>
          <td align="center">11.7</td>
        </tr>
        <tr>
          <td>Subclavian vein (cm)</td>
          <td align="center">0.90</td>
          <td align="center">0.56</td>
          <td align="center">0.80</td>
          <td align="center" colspan="2">0.66</td>
          <td align="center">0.74</td>
        </tr>
      </tbody>
    </table>
  </table-wrap>
  <p>Note: RF, respiratory failure; AKI, acute kidney injury; CKD,
  chronic kidney disease; IVC, inferior vena cava; M, male; F,
  female.</p>
  <p>Descriptive analysis (Table 2) showed a mean IVC diameter of 2.14 ±
  0.21 cm, indicating a tendency toward inferior vena cava dilatation
  consistent with venous congestion; IVC dilatation (&gt;2 cm) was
  present in four of the five patients. VExUS grading indicated moderate
  systemic venous congestion in one patient (grade 2) and severe
  congestion in the remaining four (grade 3). All patients showed
  supraclavicular lymph node enlargement, with diameters ranging from
  10.3 to 17.6 mm (mean 13.12 ± 2.82 mm), exceeding the conventional
  upper limit for normal cervical lymph nodes (&lt;10 mm). The
  subclavian vein diameter ranged from 0.56 to 0.90 cm (mean 0.73 ± 0.13
  cm).</p>
  <p>Table 2. Descriptive statistics of the measured variables (n =
  5).</p>
  <table-wrap>
    <table style="width:100%;">
      <colgroup>
        <col width="33%" />
        <col width="16%" />
        <col width="16%" />
        <col width="16%" />
        <col width="16%" />
      </colgroup>
      <thead>
        <tr>
          <th>Variable</th>
          <th align="center">Mean</th>
          <th align="center">SD</th>
          <th align="center">Minimum</th>
          <th align="center">Maximum</th>
        </tr>
      </thead>
      <tbody>
        <tr>
          <td>Age (years)</td>
          <td align="center">64.4</td>
          <td align="center">7.9</td>
          <td align="center">57</td>
          <td align="center">77</td>
        </tr>
        <tr>
          <td>IVC diameter (cm)</td>
          <td align="center">2.14</td>
          <td align="center">0.21</td>
          <td align="center">1.86</td>
          <td align="center">2.42</td>
        </tr>
        <tr>
          <td>Lymph node (mm)</td>
          <td align="center">13.12</td>
          <td align="center">2.82</td>
          <td align="center">10.3</td>
          <td align="center">17.6</td>
        </tr>
        <tr>
          <td>Subclavian vein (cm)</td>
          <td align="center">0.73</td>
          <td align="center">0.13</td>
          <td align="center">0.56</td>
          <td align="center">0.90</td>
        </tr>
      </tbody>
    </table>
  </table-wrap>
  <p>Note : SD, standard deviation; IVC, inferior vena cava.</p>
  <fig id="F1"><label>Figure 1</label><caption><p>Relationship between inferior vena cava (IVC) diameter
  and VExUS grade. Patients with larger IVC diameters tended to have
  higher VExUS grades; IVC &amp;gt;2 cm occurred predominantly in grade
  3.</p></caption><graphic mimetype="image" mime-subtype="png" xlink:href="https://jsocmed.org/go/article/download/285/877/2769" /></fig>
  <p>Patients with larger IVC diameters tended to have higher VExUS
  grades, and an IVC diameter &gt;2 cm was found predominantly in
  patients with grade 3 congestion, reflecting severe systemic venous
  congestion. Owing to the small sample size (n = 5), this relationship
  represents a clinical trend rather than a statistically significant
  association.</p>
  <fig id="F2"><label>Figure 2</label><caption><p>Relationship between VExUS grade and supraclavicular
  lymph node diameter. Higher VExUS grades were associated with a
  tendency toward larger lymph node diameters.</p></caption><graphic mimetype="image" mime-subtype="png" xlink:href="https://jsocmed.org/go/article/download/285/877/2770" /></fig>
  <p>Patients with higher VExUS grades (grade 3) tended to have larger
  supraclavicular lymph node diameters than those with grade 2. Although
  lymph node size varied within the grade 3 group, an overall trend
  toward larger nodes was observed with more severe venous congestion.
  Taken together, increasing severity of systemic venous congestion was
  accompanied by supraclavicular lymph node enlargement, supporting the
  hypothesis that elevated CVP may impair lymphatic drainage and produce
  dilatation of peripheral lymph nodes in critically ill patients.</p>
  <fig id="F3"><label>Figure 3</label><caption><p>Bedside ultrasonography of the inferior vena cava (IVC)
  showing dilatation of the IVC.</p></caption><graphic mimetype="image" mime-subtype="jpeg" xlink:href="https://jsocmed.org/go/article/download/285/877/2771" /></fig>
  <fig id="F4"><label>Figure 4</label><caption><p>Supraclavicular region near the thoracic duct,
  demonstrating an enlarged lymph node.</p></caption><graphic mimetype="image" mime-subtype="jpeg" xlink:href="https://jsocmed.org/go/article/download/285/877/2772" /></fig>
  <fig id="F5"><label>Figure 5</label><caption><p>Hepatic vein Doppler waveform used for VExUS grading.</p></caption><graphic mimetype="image" mime-subtype="png" xlink:href="https://jsocmed.org/go/article/download/285/877/2773" /></fig>
  <fig id="F6"><label>Figure 6</label><caption><p>Portal vein Doppler waveform used for VExUS grading.</p></caption><graphic mimetype="image" mime-subtype="png" xlink:href="https://jsocmed.org/go/article/download/285/877/2774" /></fig>
  <fig id="F7"><label>Figure 7</label><caption><p>Renal (intrarenal) venous Doppler waveform used for VExUS
  grading.</p></caption><graphic mimetype="image" mime-subtype="png" xlink:href="https://jsocmed.org/go/article/download/285/877/2775" /></fig>
  <fig id="F8"><label>Figure 8</label><caption><p>VExUS grading protocol integrating the IVC diameter with
  hepatic, portal, and renal venous Doppler patterns.</p></caption><graphic mimetype="image" mime-subtype="jpeg" xlink:href="https://jsocmed.org/go/article/download/285/877/2776" /></fig>
</sec>
<sec id="discussion">
  <title>DISCUSSION</title>
  <p>In these five patients with fluid overload, VExUS demonstrated
  significant systemic venous congestion, as evidenced by inferior vena
  cava (IVC) dilatation and abnormal hepatic, portal, and renal venous
  Doppler patterns reflecting persistently elevated CVP [3,4].
  Pathophysiologically, elevated CVP affects not only the venous system
  and organ perfusion but also the lymphatic system, which drains
  directly into the central venous circulation [6]. The lymphatic system
  maintains interstitial fluid balance by returning fluids and proteins
  to the venous compartment. An increase in CVP raises the lymphatic
  outflow resistance, impairs drainage, and causes lymphatic stasis.
  This leads to interstitial fluid accumulation and an increased
  lymphatic load on regional lymph nodes, which may manifest as reactive
  lymph node enlargement [7].</p>
  <p>In our cases, the supraclavicular lymph nodes were enlarged without
  local signs of infection or malignancy, favoring a reactive process
  [8]. Concurrently, systemic venous congestion affected the thoracic
  venous compartment: CVP transmitted to the subclavian vein produced
  subclavian venous dilatation, which was identified by bedside
  ultrasonography. This dilatation reflects increased proximal venous
  pressure and may further impede lymphatic outflow, given that the
  thoracic duct drains at the junction of the subclavian and internal
  jugular veins [5]. The relationship between the VExUS-defined
  congestion severity and lymph node enlargement supports the hypothesis
  that systemic venous congestion contributes to lymphatic stasis and
  lymph node enlargement. Accordingly, subclavian venous and lymph node
  dilatation in ICU patients with fluid overload may be regarded as
  clinical manifestations of systemic venous congestion and secondary
  lymphatic dysfunction. VExUS may therefore be valuable not only for
  grading venous congestion and the associated risk of organ
  dysfunction, but also for identifying downstream lymphatic
  consequences [7].</p>
  <p>This study has several limitations. The small number of cases and
  case-series design precluded causal inference and inferential
  statistical analysis. Lymphatic evaluation relied solely on
  ultrasonography of the supraclavicular lymph nodes without
  quantitative assessment of lymphatic flow. Moreover, other factors
  that may influence lymph node size, such as systemic inflammatory
  responses, could not be fully excluded [8]. Larger prospective studies
  are needed to confirm the relationship between systemic venous
  congestion severity, impaired lymphatic drainage, and lymph node
  enlargement. Future studies should combine VExUS with invasive
  hemodynamic parameters and more specific lymphatic imaging to clarify
  the underlying mechanisms. Integrating assessment of venous congestion
  and the lymphatic system may provide a more comprehensive approach to
  the management of critically ill patients with fluid overload.</p>
</sec>
<sec id="conclusion">
  <title>CONCLUSION</title>
  <p>Supraclavicular lymph node enlargement may represent a reactive
  manifestation of systemic venous congestion in critically ill patients
  with high VexUS scores. The combination of VExUS and lymph node
  ultrasonography may offer a novel bedside approach for assessing fluid
  overload and guiding de-resuscitation therapy in the intensive care
  unit setting.</p>
</sec>
<sec id="declarations">
  <title>DECLARATIONS</title>
  <p>None</p>
</sec>
<sec id="consent-for-publication">
  <title>CONSENT FOR PUBLICATION</title>
  <p>The authors agree to the publication of this article in the Journal
  of Society Medicine.</p>
</sec>
<sec id="funding">
  <title>FUNDING</title>
  <p>This work did not receive any specific grant from any funding
  agency.</p>
</sec>
<sec id="competing-interests">
  <title>COMPETING INTERESTS</title>
  <p>All authors have reviewed and approved the final version of the
  manuscript and have agreed to its publication in the Journal of
  Society Medicine.</p>
</sec>
<sec id="authors-contributions">
  <title>AUTHORS’ CONTRIBUTIONS</title>
  <p>All authors contributed to the conception and design of the study,
  data collection, analysis, and interpretation of data, drafting, and
  revising the manuscript. All authors have reviewed and approved the
  final version of the manuscript and agree to be accountable for all
  aspects of the work.</p>
</sec>
<sec id="acknowledgments">
  <title>ACKNOWLEDGMENTS</title>
  <p>The authors thank the medical and nursing staff at RSUP H. Adam
  Malik Medan for their support during data collection. No external
  funding was received for this study.</p>
</sec>

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