ABSTRACT Transgender individuals are increasingly seeking gender-affirming therapy. For children and adolescents, this typically involves puberty suppression followed by hormone treatment. However, potential long-term adverse effects on the growing skeleton remain poorly characterized, largely due to the lack of appropriate preclinical animal models. Existing models often rely on surgical puberty suppression and, in the case of estradiol (E2) administration, cause a high bone mass-phenotype that is not observed in the clinical setting. To address this, we developed a novel preclinical mouse model that mimics the medical approach used in transgirls and analyzed the effects of gender-affirming therapy on bone. Four-week-old male mice were treated with the gonadotropin-releasing hormone analogue degarelix (DGX) for pharmacological puberty suppression. After 4 weeks, E2 was administered at different doses, and bone properties were analyzed after an additional 8 weeks. DGX treatment effectively suppressed sex steroid signaling, leading to reduced bone mass and strength, which were dose-dependently restored by E2. While high E2 doses resulted in an excessive increase in bone mass, thereby precluding further mechanistic study, lower doses resulted in a bone phenotype resembling that of native females. At the cellular level, DGX-mediated puberty suppression resulted in increased bone resorption that exceeded bone formation, and also caused an accumulation of marrow adipocytes. Subsequent low-dose E2 administration reduced bone resorption, stimulated bone formation, and prevented the increase in bone marrow adiposity. In summary, we established and validated a mouse model that accurately mimics gender-affirming therapy initiated during early puberty and enables the study of its effects on bone.
Verlinden et al. (Tue,) studied this question.