Related Experiment Video
Updated: Jun 2, 2026

Isolation, Fixation, and Immunofluorescence Imaging of Mouse Adrenal Glands
Published on: October 2, 2018
Expression of P-450(c11beta) in adrenal aldosterone-producing adenomas and nodular hyperplasia tissues
Yujiang Fang1, Lei Zhao, Shuang Chen
1Department of Internal Medicine, University of Missouri, Columbia, USA. fangy@health.missouri.edu
Background:
Our previous study suggests that decreased P-450(c17alpha) expression correlated with the overproduction of aldosterone in APA and nodular hyperplasia in patients with primary aldosteronism. This study was performed to further investigate if P-450(c11beta) contributes to the overproduction of aldosterone in APA and nodular hyperplasia tissues.
Methods:
Total RNA and protein were extracted from 7 cases of APA tissue, 3 nodular hyperplasia tissues, 7 normal adrenal glands. P-450(c11beta) mRNA was examined by dot blot and confirmed by Northern blot analysis and by realtime PCR. Protein expression level of P-450(c11beta) was also investigated by immunohistochemical staining and confirmed by Western blot.
Results:
The relative expression level of P-450(c11beta) mRNA to beta-actin in APA, nodular hyperplasia and the normal adrenal gland group are 47 +/- 22%, 55 +/- 13%, 64 +/- 16% respectively by dot blot and are 94 +/- 18%, 101 +/- 20%, 112 +/- 62% respectively by Northern blot. These results are further confirmed by realtime PCR. This result was also supported by the relative protein expression level of P-450(c11beta) to beta-actin which are 118 +/- 15%, 107 +/- 32%, 108 +/- 22% respectively evaluated by Western blot. There was no significant difference in protein expression level of P-450(c11beta) among the normal adrenal gland tissues, APA and adrenal nodular hyperplasia tissue, either (P > 0.05).
Conclusions:
These results suggest that P-450(c11beta) is not a key contributor to the overproduction of aldosterone in APA and nodular hyperplasia and can not be considered as a potential marker to differentiate between them in patients with primary aldosteronism.
Related Concept Videos
Adrenal Gland Disorders
Adrenal insufficiency, characterized by insufficient cortisol and aldosterone production, leads to conditions like Addison's disease. This disorder, affecting the adrenal cortex, exhibits symptoms such as skin bronzing, dehydration, low blood pressure, fatigue, and weight loss. Congenital adrenal hyperplasia, a genetic ailment causing...
Hormones of the Adrenal Glands
The adrenal cortex, a powerhouse of hormone synthesis, generates over two dozen corticosteroid hormones. The zona glomerulosa produces mineralocorticoids, exemplified by aldosterone, influencing the electrolyte composition of body fluids. The synthesis of glucocorticoids such as cortisol and corticosterone...
Adrenergic Receptors: β Subtype
Isoprenaline > Adrenaline > Noradrenaline
Neurotransmitter binding to these receptors causes activation of adenylyl cyclase resulting in increased concentrations of cAMP and modulation of calcium ion channels within the cell. They are further classified into β1, β2, and β3 subtypes.
β1-adrenoceptors: β1-adrenoceptors have equal affinities for...
Anatomy of the Adrenal Glands
These glands possess a distinctive yellow tinge due to the stored cholesterol and fatty acids required for hormone synthesis. They are encased in a fibrous capsule and cushioned by fat.
The adrenal gland comprises two distinct regions...
Cushing Syndrome II: Pathophysiology
Adrenergic Receptors: ɑ Subtype
Adrenaline ≥ Noradrenaline >> Isoprenaline
α-adrenoceptors are further divided into α1 and α2-adrenoceptors.
α1-Adrenoceptors: These receptors are located postsynaptically on the effector organs and cause constriction of smooth muscle mediated by activation of phospholipase C—inositol-1,4,5-trisphosphate...
