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Optimization, Design and Avoiding Pitfalls in Manual Multiplex Fluorescent Immunohistochemistry
Published on: July 26, 2019
Detection of cellular hypoxia by pimonidazole adduct immunohistochemistry in kidney disease: methodological pitfalls
Connie P C Ow1, Md Mahbub Ullah1, Jennifer P Ngo1
1Cardiovascular Disease Program, Biomedicine Discovery Institute and Department of Physiology, Monash University , Melbourne, Victoria , Australia.
Abstract:
Pimonidazole adduct immunohistochemistry is one of the few available methods for assessing renal tissue hypoxia at the cellular level. It appears to be prone to artifactual false positive staining under some circumstances. Here, we assessed the nature of this false positive staining and, having determined how to avoid it, reexamined the nature of cellular hypoxia in rat models of kidney disease. When a mouse-derived anti-pimonidazole primary antibody was used, two types of staining were observed. First, there was diffuse staining of the cytoplasm of tubular epithelial cells, which was largely absent when the primary antibody was omitted from the incubation protocol or in tissues known not to contain pimonidazole adducts. Second, there was staining of the apical membranes of tubular epithelial cells, debris within the lumen of renal tubules, including tubular casts, and the interstitium; this latter staining was present even when the primary antibody was omitted from the incubation protocol. Such false positive staining was particularly prominent in acutely injured kidneys. It could not be avoided by preincubation of sections with a mouse IgG blocking reagent. Furthermore, preadsorption of the secondary antibody against rat Ig abolished all staining; however, when a rabbit-derived polyclonal anti-pimonidazole primary antibody was used, the false positive staining was largely avoided. Using this method, we confirmed the presence of hypoxia, localized mainly to the tubular epithelium, in the acute phase of severe renal ischemia-reperfusion injury, adenine-induced chronic kidney disease, and polycystic kidney disease. We conclude that this new method provides improved detection of renal cellular hypoxia.
Insights
This study identifies and corrects artifacts in pimonidazole adduct immunohistochemistry, improving the detection of renal tissue hypoxia in kidney disease models. The refined method accurately visualizes cellular hypoxia in tubular epithelial cells.
Area of Science:
- Nephrology
- Pathology
- Immunohistochemistry
Background:
- Pimonidazole adduct immunohistochemistry assesses renal tissue hypoxia.
- This method can produce artifactual false-positive staining.
- Understanding and mitigating these artifacts is crucial for accurate hypoxia assessment.
Purpose of the Study:
- To investigate the nature of false-positive staining in pimonidazole adduct immunohistochemistry.
- To develop a reliable method for detecting cellular hypoxia in rat kidney disease models.
- To re-examine the patterns of renal cellular hypoxia in various kidney injury models.
Main Methods:
- Assessed pimonidazole adduct staining using mouse-derived and rabbit-derived primary antibodies.
- Investigated artifactual staining by omitting primary antibodies and using blocking reagents.
- Examined kidney tissues from rat models of renal ischemia-reperfusion injury, adenine-induced chronic kidney disease, and polycystic kidney disease.
Main Results:
- Two types of artifactual staining were identified: diffuse cytoplasmic and apical membrane/tubular lumen staining.
- Apical membrane/tubular lumen staining persisted without the primary antibody and was prominent in injured kidneys.
- Using a rabbit-derived primary antibody and secondary antibody preadsorption minimized artifacts, enabling accurate hypoxia detection.
- Confirmed hypoxia localized to tubular epithelium in acute renal injury models.
Conclusions:
- Developed a refined pimonidazole adduct immunohistochemistry method to avoid false-positive staining.
- The improved method accurately detects renal cellular hypoxia, particularly in tubular epithelium.
- This technique enhances the study of hypoxia in diverse kidney disease contexts.
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Hypoxia
Types of Hypoxia
There are four primary types of hypoxia, each resulting from a different cause:
1. Anemic hypoxia: This type occurs due to insufficient oxygen delivery caused by a lack of red blood cells (RBCs) or RBCs with abnormal or...

