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The adrenal gland, a crucial component of the hypothalamo-pituitary-adrenal axis, secretes steroids and coordinates steroid homeostasis and the bodily response to stress. The adrenal gland comprises the outer cortex, which secretes steroids in a zone-specific manner, and inner medulla, which synthesizes catecholamines. The interrenal gland in teleosts is the counterpart of the adrenal gland in mammals and is composed of steroidogenic interrenal and chromaffin cells, which are functional equivalents of the adrenal cortex and medulla, respectively1-3. Studies conducted using the zebrafish model have reported that both steroidogenic and chromaffin cell lineages are formed by molecular and cellular mechanisms highly resembling those in mammals1,2. Therefore, the zebrafish is a potentially powerful model for studying genetic disorders, neuroendocrine control, and systems biology of the hypothalamo-pituitary-adrenal (interrenal) axis.
In the adrenal gland, 3β-Hsd catalyzes the conversion of progesterone from pregnenolone, 17α-hydroxyprogesterone from 17α-hydroxypregnelolone, and androstenedione from dehydroepiandrosterone4,5. 3β-Hsd is essential for biosynthesizing all classes of hormonal steroids, namely progesterone, glucocorticoids, mineralocorticoids, androgens, and estrogens. The two human 3β-Hsd isozymes HSD3B1 and HSD3B2 are differentially expressed6. HSD3B1 is expressed in the placenta and peripheral tissues, whereas HSD3B2 is expressed in the adrenal cortex and gonads. Human HSD3B1 and HSD3B2 are co-orthologs of zebrafish hsd3b1, which is expressed at the interrenal tissue and adult gonads; zebrafish hsd3b2 is a maternally expressed gene whose transcripts disappear before organogenesis7. The protocol of the whole-mount 3β-Hsd enzymatic activity assay for zebrafish was developed by modifying Levy's method, as described by Milano et al., on frozen sections of eight teleost species8. Because of the tissue permeability and optical transparency of the developing zebrafish, whole-mount 3β-Hsd histochemistry can be successfully used for the fixed zebrafish embryo and larvae and specifically delineate the differentiated interrenal tissues.
This sensitive and rapid assay has been applied to various mutants and morphants demonstrating different types of interrenal dysmorphogenesis. The interrenal 3β-Hsd activity is absent in the embryo where specification of the interrenal tissue is disrupted through a specific knockdown of the Ff1b transcription factor and is decreased as the interrenal differentiation is affected by a knockdown of the Ff1b coregulator Prox19,10. Notably, the 3β-Hsd activity can be detected in mutants with severe early stage defects, such as one-eyed pinhead and squint, where the 3β-Hsd histochemistry delineates how the interrenal cell migration is affected11. The differentiation of the interrenal tissue is not compromised even in the complete absence of blood and vasculature. Therefore, how endothelium-derived signals shape the developing interrenal organ can be determined12,13. Overall, this histochemical assay has been successfully used for studying specification, differentiation, and migration of steroidogenic cells in the zebrafish model. Therefore, it should be an efficient and a reliable tool for any genetic or chemical screens targeting adrenal and interrenal organ disorders.