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Dive into the research topics where Julie F. McManus is active.

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Featured researches published by Julie F. McManus.


The FASEB Journal | 2008

Impaired skeletal muscle development and function in male, but not female, genomic androgen receptor knockout mice

Helen E. MacLean; W.S. Maria Chiu; Amanda J. Notini; Anna-Maree Axell; Rachel A. Davey; Julie F. McManus; Cathy Ma; David R. Plant; Gordon S. Lynch; Jeffrey D. Zajac

To identify mechanisms of anabolic androgen action in muscle, we generated male and female genomic androgen receptor (AR) knockout (ARKO) mice, and characterized muscle mass, contractile function, and gene expression. Muscle mass is decreased in ARKO males, but normal in ARKO females. The levator ani muscle, which fails to develop in normal females, is also absent in ARKO males. Force production is decreased from fast‐twitch ARKO male muscle, and slow‐twitch muscle has increased fatigue resistance. Microarray analysis shows up‐regulation of genes encoding slow‐twitch muscle contractile proteins. Realtime PCR confirms that expression of genes encoding polyamine biosynthetic enzymes, ornithine decarboxylase (Odc1), and S‐adenosylmethionine decarboxylase (Amd1), is reduced in ARKO muscle, suggesting androgens act through regulation of polyamine biosynthesis. Altered expression of regulators of myoblast progression from proliferation to terminal differentiation suggests androgens also promote muscle growth by maintaining myoblasts in the proliferate state and delaying differentiation (increased Cdkn1c and Igf2, decreased Itg1bp3). A similar pattern of gene expression is observed in orchidectomized male mice, during androgen withdrawal‐dependent muscle atrophy. In conclusion, androgens are not required for peak muscle mass in females. In males, androgens act through the AR to regulate multiple gene pathways that control muscle mass, strength, and fatigue resistance.—MacLean, H. E., Maria Chiu, W. S., Notini, A. J., Axell, A.‐M., Davey, R. A., McManus, J. F., Ma, C., Plant, D. R., Lynch, G. S., Zajac, J. D. Impaired skeletal muscle development and function in male, but not female, genomic androgen receptor knockout mice. FASEB J. 22, 2676–2689 (2008)


Journal of Bone and Mineral Research | 2007

Osteoblast deletion of exon 3 of the androgen receptor gene results in trabecular bone loss in adult male mice.

Amanda J. Notini; Julie F. McManus; Alison J. Moore; Mary L. Bouxsein; Mark Jimenez; W.S. Maria Chiu; Vaida Glatt; Barbara E. Kream; David J. Handelsman; Howard A. Morris; Jeffrey D. Zajac; Rachel A. Davey

The mechanism of androgen action on bone was studied in male mice with the AR deleted in mature osteoblasts. These mice had decreased trabecular bone volume associated with a decrease in trabecular number, suggesting that androgens may act directly on osteoblasts to maintain trabecular bone.


Journal of Bone and Mineral Research | 2009

Mineralization and bone resorption are regulated by the androgen receptor in male mice.

Cherie Ying Chiang; Maria Chiu; Alison J. Moore; Paul H. Anderson; Ali Ghasem-Zadeh; Julie F. McManus; Cathy Ma; Ego Seeman; Thomas L. Clemens; Howard A. Morris; Jeffrey D. Zajac; Rachel A. Davey

Androgens play a key role in skeletal growth and bone maintenance; however, their mechanism of action remains unclear. To address this, we selectively deleted the androgen receptor (AR) in terminally differentiated, mineralizing osteoblasts using the Cre/loxP system in mice (osteocalcin‐Cre AR knockouts [mOBL‐ARKOs]). Male mOBL‐ARKOs had decreased femoral trabecular bone volume compared with littermate controls because of a reduction in trabecular number at 6, 12, and 24 wk of age, indicative of increased bone resorption. The effects of AR inactivation in mineralizing osteoblasts was most marked in the young mutant mice at 6 wk of age when rates of bone turnover are high, with a 35% reduction in trabecular bone volume, decreased cortical thickness, and abnormalities in the mineralization of bone matrix, characterized by increased unmineralized bone matrix and a decrease in the amount of mineralizing surface. This impairment in bone architecture in the mOBL‐ARKOs persisted throughout adulthood despite an unexpected compensatory increase in osteoblast activity. Our findings show that androgens act through the AR in mineralizing osteoblasts to maintain bone by regulating bone resorption and the coordination of bone matrix synthesis and mineralization, and that this action is most important during times of bone accrual and high rates of bone remodeling.


Journal of Bone and Mineral Research | 2008

Calcitonin Receptor Plays a Physiological Role to Protect Against Hypercalcemia in Mice

Rachel A. Davey; Andrew G. Turner; Julie F. McManus; W.S. Maria Chiu; Francisca Tjahyono; Alison J. Moore; Gerald J. Atkins; Paul H. Anderson; Cathy Ma; Vaida Glatt; Helen E. MacLean; Cristina Vincent; Mary L. Bouxsein; Howard A. Morris; David M. Findlay; Jeffrey D. Zajac

It is well established that calcitonin is a potent inhibitor of bone resorption; however, a physiological role for calcitonin acting through its cognate receptor, the calcitonin receptor (CTR), has not been identified. Data from previous genetically modified animal models have recognized a possible role for calcitonin and the CTR in controlling bone formation; however, interpretation of these data are complicated, in part because of their mixed genetic background. Therefore, to elucidate the physiological role of the CTR in calcium and bone metabolism, we generated a viable global CTR knockout (KO) mouse model using the Cre/loxP system, in which the CTR is globally deleted by >94% but <100%. Global CTRKOs displayed normal serum ultrafiltrable calcium levels and a mild increase in bone formation in males, showing that the CTR plays a modest physiological role in the regulation of bone and calcium homeostasis in the basal state in mice. Furthermore, the peak in serum total calcium after calcitriol [1,25(OH)2D3]‐induced hypercalcemia was substantially greater in global CTRKOs compared with controls. These data provide strong evidence for a biological role of the CTR in regulating calcium homeostasis in states of calcium stress.


Journal of Bone and Mineral Research | 2004

Genetically modified animal models as tools for studying bone and mineral metabolism

Rachel A. Davey; Helen E. MacLean; Julie F. McManus; David M. Findlay; Jeffrey D. Zajac

Genetic modification of mice is a powerful tool for the study of bone development and metabolism. This review discusses the advantages and disadvantages of various approaches used in bone‐related research and the contributions these studies have made to bone biology.


Physiological Genomics | 2008

A floxed allele of the androgen receptor gene causes hyperandrogenization in male mice

Helen E. MacLean; W.S. Maria Chiu; Cathy Ma; Julie F. McManus; Rachel A. Davey; Rhoda Cameron; Amanda J. Notini; Jeffrey D. Zajac

We previously generated a conditional floxed mouse line to study androgen action, in which exon 3 of the androgen receptor (AR) gene is flanked by loxP sites, with the neomycin resistance gene present in intron 3. Deletion of exon 3 in global AR knockout mice causes androgen insensitivity syndrome, characterized by genotypic males lacking normal masculinization. We now report that male mice carrying the floxed allele (AR(lox)) have the reverse phenotype, termed hyperandrogenization. AR(lox) mice have increased mass of androgen-dependent tissues, including kidney, (P < 0.001), seminal vesicle (P < 0.001), levator ani muscle (P = 0.001), and heart (P < 0.05). Serum testosterone is not significantly different. Testis mass is normal, histology shows normal spermatogenesis, and AR(lox) males are fertile. AR(lox) males also have normal AR mRNA levels in kidney, brain, levator ani, liver, and testis. This study reaffirms the need to investigate the potential phenotypic effects of floxed alleles in the absence of cre in tissue-specific knockout studies. In addition, this androgen hypersensitivity model may be useful to further investigate the effects of subtle perturbations of androgen action in a range of androgen-responsive systems in the male.


Reproduction, Fertility and Development | 2008

Oestradiol-induced spermatogenesis requires a functional androgen receptor

Patrick Lim; Charles M. Allan; Amanda J. Notini; Anna-Maree Axell; Jennifer A. Spaliviero; Mark Jimenez; Rachel A. Davey; Julie F. McManus; Helen E. MacLean; Jeffrey D. Zajac; David J. Handelsman

Spermatogenesis requires androgen but, paradoxically, oestradiol (E2) treatment stimulates spermatogenic development in gonadotrophin- and androgen-deficient hypogonadal (hpg) mice. The mechanisms of E2-induced spermatogenesis were investigated by determining intratesticular E2 levels and testis cell populations in E2-treated hpg male mice, and E2 spermatogenic actions were determined in androgen receptor-knockout (ARKO) mice. Despite increased serum E2 concentrations (150-300 pmol L(-1)), intratesticular E2 concentrations declined fivefold (P < 0.001) in E2-treated v. untreated hpg male mice. Serum FSH reached 40% of normal and total testicular numbers of known FSH-responsive Sertoli, spermatogonia and meiotic spermatocyte populations were significantly (P < 0.001) elevated 1.7-, 4- and 13-fold, respectively. However, E2 administration also increased androgen-dependent pachytene spermatocytes and post-meiotic spermatids to levels comparable with testosterone-treated hpg testes. Selective investigation of androgen receptor involvement used E2-treated ARKO mice, which were found to exhibit increased (1.6-fold; P < 0.05) intratesticular E2 concentrations and suppression of the elevated serum gonadotrophins, although FSH remained twofold higher than normal. However, testis size and total Sertoli, spermatogonia and spermatocyte numbers were not increased in E2-treated ARKO male mice. Therefore, E2-stimulated murine spermatogenic development occurs with markedly suppressed and not elevated intratesticular E2 levels and displays an absolute requirement for functional androgen receptors. We propose that this paradoxical E2 spermatogenic response is explained by predominantly extratesticular E2 actions, increasing FSH to combine with residual androgen activity in hpg testes to stimulate pre- to post-meiotic development.


Journal of Molecular Endocrinology | 2005

Genomic actions of the androgen receptor are required for normal male sexual differentiation in a mouse model

Amanda J. Notini; Rachel A. Davey; Julie F. McManus; Katherine Bate; Jeffrey D. Zajac


Genesis | 2004

Transgenic mice that express Cre recombinase in osteoclasts

W.S.M. Chiu; Julie F. McManus; Amanda J. Notini; A. I. Cassady; Jeffrey D. Zajac; Rachel A. Davey


Archive | 2015

Lessons Learned from AR-Knockout Mice Lacking AR in Selective Cells Androgen Receptor (AR) Physiological Roles in Male and Female Reproductive Systems:

Rhoda Cameron; Amanda J. Notini; Jeffrey D. Zajac; Helen E. MacLean; W.S. Maria Chiu; Cathy Ma; Julie F. McManus; Rachel A. Davey; Patricia K. Russell; Michele V. Clarke; Jarrod P Skinner; Tammy P S Pang; Chawnshang Chang; Soo Ok Lee; Ruey-Sheng Wang; Shuyuan Yeh; Ta-Min Chang

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Cathy Ma

University of Melbourne

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Alison J. Moore

Institute of Medical and Veterinary Science

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Howard A. Morris

University of South Australia

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Vaida Glatt

Queensland University of Technology

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