Literature DB >> 28428364

Role of estrogen receptor signaling in skeletal response to leptin in female ob/ob mice.

Russell T Turner1,2, Kenneth A Philbrick1, Amida F Kuah1, Adam J Branscum3, Urszula T Iwaniec4,2.   

Abstract

Leptin, critical in regulation of energy metabolism, is also important for normal bone growth, maturation and turnover. Compared to wild type (WT) mice, bone mass is lower in leptin-deficient ob/ob mice. Osteopenia in growing ob/ob mice is due to decreased bone accrual, and is associated with reduced longitudinal bone growth, impaired cancellous bone maturation and increased marrow adipose tissue (MAT). However, leptin deficiency also results in gonadal dysfunction, disrupting production of gonadal hormones which regulate bone growth and turnover. The present study evaluated the role of increased estrogen in mediating the effects of leptin on bone in ob/ob mice. Three-month-old female ob/ob mice were randomized into one of the 3 groups: (1) ob/ob + vehicle (veh), (2) ob/ob + leptin (leptin) or (3) ob/ob + leptin and the potent estrogen receptor antagonist ICI 182,780 (leptin + ICI). Age-matched WT mice received vehicle. Leptin (40 µg/mouse, daily) and ICI (10 µg/mouse, 2×/week) were administered by subcutaneous injection for 1 month and bone analyzed by X-ray absorptiometry, microcomputed tomography and static and dynamic histomorphometry. Uterine weight did not differ between ob/ob mice and ob/ob mice receiving leptin + ICI, indicating that ICI successfully blocked the uterine response to leptin-induced increases in estrogen levels. Compared to leptin-treated ob/ob mice, ob/ob mice receiving leptin + ICI had lower uterine weight; did not differ in weight loss, MAT or bone formation rate; and had higher longitudinal bone growth rate and cancellous bone volume fraction. We conclude that increased estrogen signaling following leptin treatment is dispensable for the positive actions of leptin on bone and may attenuate leptin-induced bone growth.
© 2017 Society for Endocrinology.

Entities:  

Keywords:  bone formation and resorption; estrogen; leptin; marrow adipose tissue; skeletal biology

Mesh:

Substances:

Year:  2017        PMID: 28428364      PMCID: PMC5527997          DOI: 10.1530/JOE-17-0103

Source DB:  PubMed          Journal:  J Endocrinol        ISSN: 0022-0795            Impact factor:   4.286


  52 in total

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3.  Some effects of ovariectomy and estrogen replacement on body composition in the rat.

Authors:  R G Clark; M F Tarttelin
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5.  Aromatase activity of membrane fractions of human adipose tissue stromal cells and adipocytes.

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4.  Effects of hypothalamic leptin gene therapy on osteopetrosis in leptin-deficient mice.

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Review 5.  Leptin action in normal and pathological pregnancies.

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