Partial posterior urethral valves (PUV) constitute a milder but progressive subset of lower urinary tract obstruction (LUTO) that often evades early prenatal detection. Persistent sub-obstruction provokes an inflammatory response in the fetal kidney, resulting in echogenic parenchyma, reduced urine production, and evolving renal dysfunction. This study aimed to describe the role of fetal urine biochemistry in evaluating renal function and prognosis in partial PUV and to outline the underlying inflammatory and biochemical changes associated with progressive obstruction. Evidence regarding the pathophysiology of partial PUV, fetal renal inflammatory responses, next-generation sequencing (NGS) utility in congenital anomalies of the kidney and urinary tract (CAKUT), and fetal urine biochemical thresholds was synthesized. Key biochemical markers obtainable via vesicocentesis or amniotic fluid sampling were examined for renal functional assessment. Partial PUV induces sustained tubular injury accompanied by cytokine-mediated inflammation involving IL-6, TNF-α, and MCP-1, ultimately promoting interstitial fibrosis and nephron loss. Fetal urine biochemical parameters specifically sodium >100 mmol/L, chloride >90 mmol/L, osmolality >210 mOsm/kg, and β2-microglobulin >6 mg/L correlate with impaired tubular reabsorption and declining renal function. These abnormalities can appear before overt sonographic indicators of severe obstruction. When NGS results are normal, fetal urine biochemistry provides critical prognostic information and enhances prenatal counseling. Fetal urine biochemistry serves as a valuable functional biomarker for detecting early renal compromise in partial PUV. Integration of biochemical profiling into prenatal diagnostic pathways can improve prognostication, guide counseling, and may be applicable to other subtle forms of urinary tract obstruction due to its reproducible reflection of inflammatory and tubular injury processes.
Gupta et al. (Thu,) studied this question.