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FDXR variants cause adrenal insufficiency and atypical sexual development
Emanuele Pignatti, Jesse Slone, María Ángeles Gómez Cano, Teresa Margaret Campbell, Jimmy Vu, Kay-Sara Sauter, Amit V. Pandey, Francisco Martínez-Azorín, Marina Alonso-Riaño, Derek E. Neilson, Nicola Longo, Therina du Toit, Clarissa D. Voegel, Taosheng Huang, Christa E. Flück
Emanuele Pignatti, Jesse Slone, María Ángeles Gómez Cano, Teresa Margaret Campbell, Jimmy Vu, Kay-Sara Sauter, Amit V. Pandey, Francisco Martínez-Azorín, Marina Alonso-Riaño, Derek E. Neilson, Nicola Longo, Therina du Toit, Clarissa D. Voegel, Taosheng Huang, Christa E. Flück
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Research Article Endocrinology Genetics

FDXR variants cause adrenal insufficiency and atypical sexual development

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Abstract

Genetic defects affecting steroid biosynthesis cause cortisol deficiency and differences of sex development; among these defects are recessive mutations in the steroidogenic enzymes CYP11A1 and CYP11B, whose function is supported by reducing equivalents donated by ferredoxin reductase (FDXR) and ferredoxin. So far, mutations in the mitochondrial flavoprotein FDXR have been associated with a progressive neuropathic mitochondriopathy named FDXR-related mitochondriopathy (FRM), but cortisol insufficiency has not been documented. However, patients with FRM often experience worsening or demise following stress associated with infections. We investigated 2 female patients with FRM carrying the potentially novel homozygous FDXR mutation p.G437R with ambiguous genitalia at birth and sudden death in the first year of life; they presented with cortisol deficiency and androgen excess compatible with 11-hydroxylase deficiency. In addition, steroidogenic FDXR-variant cell lines reprogrammed from 3 patients with FRM fibroblasts displayed deficient mineralocorticoid and glucocorticoid production. Finally, Fdxr-mutant mice allelic to the severe p.R386W human variant showed reduced progesterone and corticosterone production. Therefore, our comprehensive studies show that human FDXR variants may cause compensated but possibly life-threatening adrenocortical insufficiency in stress by affecting adrenal glucocorticoid and mineralocorticoid synthesis through direct enzyme inhibition, most likely in combination with disturbed mitochondrial redox balance.

Authors

Emanuele Pignatti, Jesse Slone, María Ángeles Gómez Cano, Teresa Margaret Campbell, Jimmy Vu, Kay-Sara Sauter, Amit V. Pandey, Francisco Martínez-Azorín, Marina Alonso-Riaño, Derek E. Neilson, Nicola Longo, Therina du Toit, Clarissa D. Voegel, Taosheng Huang, Christa E. Flück

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Figure 2

Cells from FDXR patient display low CYP11B1 and CYP11B2 enzymatic activity.

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Cells from FDXR patient display low CYP11B1 and CYP11B2 enzymatic activi...
(A) Classical steroids and steroidogenic pathways, all initiated from cholesterol (top left), occurring in the human adrenal cortex. In red, the official names of the 3 FDXR-dependent mitochondrial steroidogenic enzymes, namely CYP11A1 (also known as Cholesterol side-chain cleavage enzyme), CYP11B2 (Aldosterone Synthase), and CYP11B1 (Steroid 11β-hydroxylase). (B) Steroid amounts in culture media conditioned by reprogrammed fibroblasts from FDXR patients compared with control values (representing steroid amounts in culture media conditioned by reprogrammed fibroblasts from a single nonaffected individual; i.e., Control). Steroids are split among 3 graphs according to their belonging to a specific steroid class. Arrows containing the names of enzymes indicate the enzymatic reaction carried out by the enzyme. Asterisks reflect discoveries found using a multiple unpaired t test assuming individual variance for each steroid. *P < 0.05. (C) The endpoint or most representative steroids for each pathway on the left, on a linear scale. Statistical analysis was conducted using a 1-way ANOVA followed by Dunnett’s multiple comparisons test. All values in B and C are normalized by GAPDH transcripts contained within the cell monolayer, used as a proxy for cell number, as reported in Supplemental Figure 1D. Below quantification level (BQL) indicates the samples in which steroid levels were not measurable above the lowest quantification limit using LC-MS. DHEA, Dehydroepiandrosterone; 11-DOC, 11-deoxycorticosterone. ****Padj < 0.0001.

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