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Polarized Ends of Human Macula Densa Cells: Ultrastructural Investigation and Morphofunctional Correlations
Angela Maria Cangiotti1, Teresa Lorenzi2, Maria Cristina Zingaretti2,1
1Electron Microscopy Unit, United Hospitals, via Tronto 10/a, Torrette, Ancona, 60020, Italy.
Abstract:
The morphology of the kidney macula densa (MD) has extensively been investigated in animals, whereas human studies are scanty. We studied the fine structure of human MD cells focusing on their apical and basal ends and correlating structure and function. The MD region was examined by transmission electron microscopy in six renal biopsies from patients with kidney disease. Ultrastructural analysis of MD cells was performed on serial sections. MD cells show two polarized ends. The apical portion is characterized by a single, immotile cilium associated with microvilli; apically, cells are joined by adhering junctions. In the basal portion, the cytoplasm contains small, dense granules and numerous, irregular cytoplasmic projections extending to the adjacent extraglomerular mesangium. The projections often contain small, dense granules. A reticulated basement membrane around MD cells separates them from the extraglomerular mesangium. Although the fact that tissue specimens came from patients with kidney disease mandates extreme caution, ultrastructural examination confirmed that MD cells have sensory features due to the presence of the primary cilium, that they are connected by apical adhering junctions forming a barrier that separates the tubular flow from the interstitium, and that they present numerous basal interdigitations surrounded by a reticulated basement membrane. Conceivably, the latter two features are related to the functional activity of the MD. The small, dense granules in the basal cytoplasm and in cytoplasmic projections are likely related to the paracrine function of MD cells. Anat Rec, 301:922-931, 2018. © 2017 Wiley Periodicals, Inc.
Insights
Human kidney macula densa (MD) cells possess sensory and barrier functions, with basal projections potentially involved in paracrine signaling. These findings offer insights into kidney disease mechanisms.
Area of Science:
- Nephrology
- Cell Biology
- Histology
Background:
- Human kidney macula densa (MD) morphology is understudied compared to animal models.
- Understanding MD cell structure is crucial for correlating form and function in kidney physiology.
Purpose of the Study:
- To investigate the fine structure of human macula densa (MD) cells using transmission electron microscopy.
- To correlate the ultrastructure of MD cells with their potential sensory and secretory functions.
Main Methods:
- Examination of six human renal biopsies from patients with kidney disease using transmission electron microscopy.
- Detailed ultrastructural analysis of serial sections of macula densa (MD) cells.
Main Results:
- Human MD cells exhibit apical polarity with a primary cilium and microvilli, connected by adhering junctions forming a barrier.
- Basal portions feature cytoplasmic projections and dense granules, suggesting paracrine activity, separated from the mesangium by a reticulated basement membrane.
- The primary cilium indicates sensory capabilities, while junctions and interdigitations suggest roles in tubular flow regulation and paracrine signaling.
Conclusions:
- Human MD cells possess distinct apical sensory and basal signaling features.
- Apical junctions form a critical barrier, and basal interdigitations with associated granules likely mediate paracrine functions.
- These structural characteristics are vital for understanding MD cell roles in kidney function and disease.
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