Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Elanor N. Wainwright is active.

Publication


Featured researches published by Elanor N. Wainwright.


Genome Research | 2010

A global role for KLF1 in erythropoiesis revealed by ChIP-seq in primary erythroid cells

Michael R. Tallack; Tom Whitington; Wai Shan Yuen; Elanor N. Wainwright; Janelle R. Keys; Brooke Gardiner; Ehsan Nourbakhsh; Nicole Cloonan; Sean M. Grimmond; Timothy L. Bailey; Andrew C. Perkins

KLF1 regulates a diverse suite of genes to direct erythroid cell differentiation from bipotent progenitors. To determine the local cis-regulatory contexts and transcription factor networks in which KLF1 operates, we performed KLF1 ChIP-seq in the mouse. We found at least 945 sites in the genome of E14.5 fetal liver erythroid cells which are occupied by endogenous KLF1. Many of these recovered sites reside in erythroid gene promoters such as Hbb-b1, but the majority are distant to any known gene. Our data suggests KLF1 directly regulates most aspects of terminal erythroid differentiation including production of alpha- and beta-globin protein chains, heme biosynthesis, coordination of proliferation and anti-apoptotic pathways, and construction of the red cell membrane and cytoskeleton by functioning primarily as a transcriptional activator. Additionally, we suggest new mechanisms for KLF1 cooperation with other transcription factors, in particular the erythroid transcription factor GATA1, to maintain homeostasis in the erythroid compartment.


Biology of Reproduction | 2013

SOX9 Regulates MicroRNA miR-202-5p/3p Expression During Mouse Testis Differentiation

Elanor N. Wainwright; Joan S. Jorgensen; Youngha Kim; Vy Truong; Stefan Bagheri-Fam; Tara Davidson; Terje Svingen; Selene L. Fernandez-Valverde; Kathryn S. McClelland; Ryan J. Taft; Vincent R. Harley; Peter Koopman; Dagmar Wilhelm

ABSTRACT MicroRNAs are important regulators of developmental gene expression, but their contribution to fetal gonad development is not well understood. We have identified the evolutionarily conserved gonadal microRNAs miR-202-5p and miR-202-3p as having a potential role in regulating mouse embryonic gonad differentiation. These microRNAs are expressed in a sexually dimorphic pattern as the primordial XY gonad differentiates into a testis, with strong expression in Sertoli cells. In vivo, ectopic expression of pri-miR-202 in XX gonads did not result in molecular changes to the ovarian determination pathway. Expression of the primary transcript of miR-202-5p/3p remained low in XY gonads in a conditional Sox9-null mouse model, suggesting that pri-miR-202 transcription is downstream of SOX9, a transcription factor that is both necessary and sufficient for male sex determination. We identified the pri-miR-202 promoter that is sufficient to drive expression in XY but not XX fetal gonads ex vivo. Mutation of SOX9 and SF1 binding sites reduced ex vivo transactivation of the pri-miR-202 promoter, demonstrating that pri-miR-202 may be a direct transcriptional target of SOX9/SF1 during testis differentiation. Our findings indicate that expression of the conserved gonad microRNA, miR-202-5p/3p, is downstream of the testis-determining factor SOX9, suggesting an early role in testis development.


Biology of Reproduction | 2013

MicroRNAs-140-5p/140-3p Modulate Leydig Cell Numbers in the Developing Mouse Testis

Joanna Rakoczy; Selene L. Fernandez-Valverde; Evgeny A. Glazov; Elanor N. Wainwright; Tempei Sato; Shuji Takada; Alexander N. Combes; Darren Korbie; David Miller; Sean M. Grimmond; Melissa H. Little; Hiroshi Asahara; John S. Mattick; Ryan J. Taft; Dagmar Wilhelm

ABSTRACT MicroRNAs (miRNAs) have been shown to play key regulatory roles in a range of biological processes, including cell differentiation and development. To identify miRNAs that participate in gonad differentiation, a fundamental and tightly regulated developmental process, we examined miRNA expression profiles at the time of sex determination and during the early fetal differentiation of mouse testes and ovaries using high-throughput sequencing. We identified several miRNAs that were expressed in a sexually dimorphic pattern, including several members of the let-7 family, miR-378, and miR-140-3p. We focused our analysis on the most highly expressed, sexually dimorphic miRNA, miR-140-3p, and found that both miR-140-3p and its more lowly expressed counterpart, the previously annotated guide strand, miR-140-5p, are testis enriched and expressed in testis cords. Analysis of the miR-140-5p/miR-140-3p-null mouse revealed a significant increase in the number of Leydig cells in the developing XY gonad, strongly suggesting an important role for miR-140-5p/miR-140-3p in testis differentiation in mouse.


Current Topics in Developmental Biology | 2010

The game plan: cellular and molecular mechanisms of mammalian testis development.

Elanor N. Wainwright; Dagmar Wilhelm

In mammals, biological differences between males and females, which influence many aspects of their physical, social, and psychological environments, are solely determined genetically. In the presence of a Y chromosome, the gonadal primordium will differentiate into a testis, whereas in the absence of the Y chromosome an ovary will develop. Testis and ovary subsequently direct the differentiation of all secondary sex characteristics down the male and female pathway, respectively. The male-determining factor on the Y chromosome, SRY, was identified some 20 years ago. Since then, significant progress has been made toward understanding the molecular and cellular pathways that result in the formation of a testis. Here, we review what is known about testis differentiation in mice and humans, with reference to other species where appropriate.


Developmental Biology | 2015

ROBO2 restricts the nephrogenic field and regulates Wolffian duct–nephrogenic cord separation

Elanor N. Wainwright; Dagmar Wilhelm; Alexander N. Combes; Melissa H. Little; Peter Koopman

ROBO2 plays a key role in regulating ureteric bud (UB) formation in the embryo, with mutations in humans and mice leading to supernumerary kidneys. Previous studies have established that the number and position of UB outgrowths is determined by the domain of metanephric mesenchymal Gdnf expression, which is expanded anteriorly in Robo2 mouse mutants. To clarify how this phenotype arises, we used high-resolution 3D imaging to reveal an increase in the number of nephrogenic cord cells, leading to extension of the metanephric mesenchyme field in Robo2-null mouse embryos. Ex vivo experiments suggested a dependence of this effect on proliferative signals from the Wolffian duct. Loss of Robo2 resulted in a failure of the normal separation of the mesenchyme from the Wolffian duct/ureteric epithelium, suggesting that aberrant juxtaposition of these two compartments in Robo2-null mice exposes the mesenchyme to abnormally high levels of proliferative stimuli. Our data suggest a new model in which SLIT-ROBO signalling acts not by attenuating Gdnf expression or activity, but instead by limiting epithelial/mesenchymal interactions in the nascent metanephros and restricting the extent of the nephrogenic field. These insights illuminate the aetiology of multiplex kidney formation in human individuals with ROBO2 mutations.


PLOS ONE | 2015

Rapid screening of gene function by systemic delivery of morpholino oligonucleotides to live mouse embryos

Kathryn S. McClelland; Elanor N. Wainwright; Josephine Bowles; Peter Koopman

Traditional gene targeting methods in mice are complex and time consuming, especially when conditional deletion methods are required. Here, we describe a novel technique for assessing gene function by injection of modified antisense morpholino oligonucleotides (MOs) into the heart of mid-gestation mouse embryos. After allowing MOs to circulate through the embryonic vasculature, target tissues were explanted, cultured and analysed for expression of key markers. We established proof-of-principle by partially phenocopying known gene knockout phenotypes in the fetal gonads (Stra8, Sox9) and pancreas (Sox9). We also generated a novel double knockdown of Gli1 and Gli2, revealing defects in Leydig cell differentiation in the fetal testis. Finally, we gained insight into the roles of Adamts19 and Ctrb1, genes of unknown function in sex determination and gonadal development. These studies reveal the utility of this method as a means of first-pass analysis of gene function during organogenesis before committing to detailed genetic analysis.


Developmental Biology | 2014

Primary cilia function regulates the length of the embryonic trunk axis and urogenital field in mice

Elanor N. Wainwright; Terje Svingen; Ee Ting Ng; Carol Wicking; Peter Koopman

The issues of whether and how some organs coordinate their size and shape with the blueprint of the embryo axis, while others appear to regulate their morphogenesis autonomously, remain poorly understood. Mutations in Ift144, encoding a component of the trafficking machinery of primary cilia assembly, result in a range of embryo patterning defects, affecting the limbs, skeleton and neural system. Here, we show that embryos of the mouse mutant Ift144(twt) develop gonads that are larger than wild-type. Investigation of the early patterning of the urogenital ridge revealed that the anterior-posterior domain of the gonad/mesonephros was extended at 10.5 dpc, with no change in the length of the metanephros. In XY embryos, this extension resulted in an increase in testis cord number. Moreover, we observed a concomitant extension of the trunk axis in both sexes, with no change in the length of the tail domain or somite number. Our findings support a model in which: (1) primary cilia regulate embryonic trunk elongation; (2) the length of the trunk axis determines the size of the urogenital ridges; and (3) the gonad domain is partitioned into a number of testis cords that depends on the available space, rather than being divided a predetermined number of times to generate a specific number of cords.


Archive | 2014

The role of signalling pathways in urogenital ridge differentiation

Elanor N. Wainwright


Genome Research | 2010

A global role for KLF1 in erythropoiesis revealed by ChIP-seq in primary erythroid cells (Genome Research (2010) 20, (1052-1063))

Michael R. Tallack; Tom Whitington; Wai Shan Yuen; Elanor N. Wainwright; Janelle R. Keys; Brooke Gardiner; Ehsan Nourbakhsh; Nicole Cloonan; Sean M. Grimmond; Timothy L. Bailey; Andrew C. Perkins


Genome Research | 2010

A global role for KLF1 in erythropoiesis revealed by ChIP-seq in primary erythroid cells (vol 20, pg 1052, 2010)

Michael R. Tallack; Tom Whitington; Wai Shan Yuen; Elanor N. Wainwright; Janelle R. Keys; Brooke Gardiner; Ehsan Nourbakhsh; Nicole Cloonan; Sean M. Grimmond; Timothy L. Bailey; Andrew C. Perkins

Collaboration


Dive into the Elanor N. Wainwright's collaboration.

Top Co-Authors

Avatar

Peter Koopman

University of Queensland

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Nicole Cloonan

QIMR Berghofer Medical Research Institute

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Tom Whitington

University of Queensland

View shared research outputs
Researchain Logo
Decentralizing Knowledge