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Featured researches published by Zhendong Zhong.


Nature Medicine | 2011

Lrp5 functions in bone to regulate bone mass

Yajun Cui; Paul J. Niziolek; Bryan T. MacDonald; Cassandra R. Zylstra; Natalia Alenina; Dan R. Robinson; Zhendong Zhong; Susann Matthes; Christina M. Jacobsen; Ronald A. Conlon; Robert Brommage; Qingyun Liu; Faika Mseeh; David R. Powell; Qi M. Yang; Brian Zambrowicz; Han Gerrits; Jan A. Gossen; Xi He; Michael Bader; Bart O. Williams; Matthew L. Warman; Alexander G. Robling

The human skeleton is affected by mutations in low-density lipoprotein receptor-related protein 5 (LRP5). To understand how LRP5 influences bone properties, we generated mice with osteocyte-specific expression of inducible Lrp5 mutations that cause high and low bone mass phenotypes in humans. We found that bone properties in these mice were comparable to bone properties in mice with inherited mutations. We also induced an Lrp5 mutation in cells that form the appendicular skeleton but not in cells that form the axial skeleton; we observed that bone properties were altered in the limb but not in the spine. These data indicate that Lrp5 signaling functions locally, and they suggest that increasing LRP5 signaling in mature bone cells may be a strategy for treating human disorders associated with low bone mass, such as osteoporosis.


Development | 2014

Stroma provides an intestinal stem cell niche in the absence of epithelial Wnts

Zahra Kabiri; Gediminas Greicius; Babita Madan; Steffen Biechele; Zhendong Zhong; Hamed Zaribafzadeh; Edison; Jamal Aliyev; Yonghui Wu; Ralph M. Bunte; Bart O. Williams; Janet Rossant; David M. Virshup

Wnt/β-catenin signaling supports intestinal homeostasis by regulating proliferation in the crypt. Multiple Wnts are expressed in Paneth cells as well as other intestinal epithelial and stromal cells. Ex vivo, Wnts secreted by Paneth cells can support intestinal stem cells when Wnt signaling is enhanced with supplemental R-Spondin 1 (RSPO1). However, in vivo, the source of Wnts in the stem cell niche is less clear. Genetic ablation of Porcn, an endoplasmic reticulum resident O-acyltransferase that is essential for the secretion and activity of all vertebrate Wnts, confirmed the role of intestinal epithelial Wnts in ex vivo culture. Unexpectedly, mice lacking epithelial Wnt activity (PorcnDel/Villin-Cre mice) had normal intestinal proliferation and differentiation, as well as successful regeneration after radiation injury, indicating that epithelial Wnts are dispensable for these processes. Consistent with a key role for stroma in the crypt niche, intestinal stromal cells endogenously expressing Wnts and Rspo3 support the growth of PorcnDel organoids ex vivo without RSPO1 supplementation. Conversely, increasing pharmacologic PORCN inhibition, affecting both stroma and epithelium, reduced Lgr5 intestinal stem cells, inhibited recovery from radiation injury, and at the highest dose fully blocked intestinal proliferation. We conclude that epithelial Wnts are dispensable and that stromal production of Wnts can fully support normal murine intestinal homeostasis.


Trends in Endocrinology and Metabolism | 2013

LRP5 and LRP6 in development and disease.

Danese M. Joiner; Jiyuan Ke; Zhendong Zhong; H. Eric Xu; Bart O. Williams

Low-density lipoprotein-related receptors 5 and 6 (LRP5/6) are highly homologous proteins with key functions in canonical Wnt signaling. Alterations in the genes encoding these receptors or their interacting proteins are linked to human diseases, and as such they have been a major focus of drug development efforts to treat several human conditions including osteoporosis, cancer, and metabolic disease. Here, we discuss the links between alterations in LRP5/6 and disease, proteins that interact with them, and insights gained into their function from mouse models. We also highlight current drug development related to LRP5/6 as well as how the recent elucidation of their crystal structures may allow further refinement of our ability to target them for therapeutic benefit.


Cold Spring Harbor Perspectives in Biology | 2012

Wnt Signaling in Bone Development and Disease: Making Stronger Bone with Wnts

Jean B. Regard; Zhendong Zhong; Bart O. Williams; Yingzi Yang

The skeleton as an organ is widely distributed throughout the entire vertebrate body. Wnt signaling has emerged to play major roles in almost all aspects of skeletal development and homeostasis. Because abnormal Wnt signaling causes various human skeletal diseases, Wnt signaling has become a focal point of intensive studies in skeletal development and disease. As a result, promising effective therapeutic agents for bone diseases are being developed by targeting the Wnt signaling pathway. Understanding the functional mechanisms of Wnt signaling in skeletal biology and diseases highlights how basic and clinical studies can stimulate each other to push a quick and productive advancement of the entire field. Here we review the current understanding of Wnt signaling in critical aspects of skeletal biology such as bone development, remodeling, mechanotransduction, and fracture healing. We took special efforts to place fundamentally important discoveries in the context of human skeletal diseases.


Proceedings of the National Academy of Sciences of the United States of America | 2012

Wntless functions in mature osteoblasts to regulate bone mass

Zhendong Zhong; Cassandra R. Zylstra-Diegel; Cassie A. Schumacher; Jacob J. Baker; April C. Carpenter; Sujata Rao; Wei Yao; Min Guan; Jill A. Helms; Nancy E. Lane; Richard A. Lang; Bart O. Williams

Recent genome-wide association studies of individuals of Asian and European descent have found that SNPs located within the genomic region (1p31.3) encoding the Wntless (Wls)/Gpr177 protein are associated significantly with reduced bone mineral density. Wls/Gpr177 is a newly identified chaperone protein that specifically escorts Wnt ligands for secretion. Given the strong functional association between the Wnt signaling pathways and bone development and homeostasis, we generated osteoblast-specific Wls-deficient (Ocn-Cre;Wls-flox) mice. Homozygous conditional knockout animals were born at a normal Mendelian frequency. Whole-body dual-energy X-ray absorptiometry scanning revealed that bone-mass accrual was significantly inhibited in homozygotes as early as 20 d of age. These homozygotes had spontaneous fractures and a high frequency of premature lethality at around 2 mo of age. Microcomputed tomography analysis and histomorphometric data revealed a dramatic reduction of both trabecular and cortical bone mass in homozygous mutants. Bone formation in homozygotes was severely impaired, but no obvious phenotypic change was observed in mice heterozygous for the conditional deletion. In vitro studies showed that Wls-deficient osteoblasts had a defect in differentiation and mineralization, with significant reductions in the expression of key osteoblast differentiation regulators. In summary, these results reveal a surprising and crucial role of osteoblast-secreted Wnt ligands in bone-mass accrual.


Journal of Cellular Biochemistry | 2012

Lrp5 and Lrp6 play compensatory roles in mouse intestinal development.

Zhendong Zhong; Jacob J. Baker; Cassandra R. Zylstra-Diegel; Bart O. Williams

Low‐density lipoprotein receptor‐related proteins 5 and 6 (Lrp5 and Lrp6) are co‐receptors of Wnt ligands and play important roles in Wnt/β‐catenin signal transduction. Mice homozygous for a germline deletion of Lrp6 die at birth with several associated defects, while Lrp5‐deficient mice are viable. Here, we conditionally deleted Lrp5 and/or Lrp6 in the mouse gut (gut−/−) by crossing mice carrying floxed alleles of Lrp5 and Lrp6 to a strain expressing Cre recombinase from the villin promoter (villin‐Cre). The changes in morphology, differentiation, and Wnt signal transduction were validated using immunohistochemistry and other staining. Consistent with observations in mice carrying a homozygous germline deletion in Lrp5, intestinal development in Lrp5gut−/− mice was normal. In addition, mice homozygous for villin‐Cre‐induced deletion of Lrp6 (Lrp6gut−/−) were viable with apparently normal intestinal differentiation and function. However, mice homozygous for villin‐Cre inactivated alleles of both genes (Lrp5gut−/−; Lrp6gut−/−) died within 1 day of birth. Analysis of embryonic Lrp5gut−/−; Lrp6gut−/− intestinal epithelium showed a progressive loss of cells, an absence of proliferation, and a premature differentiation of crypt stem/precursor cells; no notable change in differentiation was observed in the embryos lacking either gene alone. Further immunohistochemical studies showed that expression of the Wnt/β‐catenin target, cyclin D1, was specifically reduced in the intestinal epithelium of Lrp5gut−/−; Lrp6gut−/− embryos. Our data demonstrate that Lrp5 and Lrp6 play redundant roles in intestinal epithelium development, and that Lrp5/6 might regulate intestinal stem/precursor cell maintenance by regulating Wnt/β‐catenin signaling. J. Cell. Biochem. 113: 31–38, 2012.


Wiley Interdisciplinary Reviews-Developmental Biology | 2014

WNT signaling in bone development and homeostasis.

Zhendong Zhong; Nicole J. Ethen; Bart O. Williams

The balance between bone formation and bone resorption controls postnatal bone homeostasis. Research over the last decade has provided a vast amount of evidence that WNT signaling plays a pivotal role in regulating this balance. Therefore, understanding how the WNT signaling pathway regulates skeletal development and homeostasis is of great value for human skeletal health and disease. WIREs Dev Biol 2014, 3:489–500. doi: 10.1002/wdev.159


Cancers | 2011

Wnt/β-catenin Signaling in Normal and Cancer Stem Cells

Kenneth C. Valkenburg; Carrie R. Graveel; Cassandra R. Zylstra-Diegel; Zhendong Zhong; Bart O. Williams

The ability of Wnt ligands to initiate a signaling cascade that results in cytoplasmic stabilization of, and nuclear localization of, β-catenin underlies their ability to regulate progenitor cell differentiation. In this review, we will summarize the current knowledge of the mechanisms underlying Wnt/β-catenin signaling and how the pathway regulates normal differentiation of stem cells in the intestine, mammary gland, and prostate. We will also discuss how dysregulation of the pathway is associated with putative cancer stem cells and the potential therapeutic implications of regulating Wnt signaling.


Journal of Bone and Mineral Research | 2014

Wnt signaling regulates pulp volume and dentin thickness.

Won Hee Lim; Bo Liu; Du Cheng; Daniel J. Hunter; Zhendong Zhong; Daniel M. Ramos; Bart O. Williams; Paul T. Sharpe; Claire Bardet; Su-Jung Mah; Jill A. Helms

Odontoblasts, cementoblasts, ameloblasts, and osteoblasts all form mineralized tissues in the craniofacial complex, and all these cell types exhibit active Wnt signaling during postnatal life. We set out to understand the functions of this Wnt signaling, by evaluating the phenotypes of mice in which the essential Wnt chaperone protein, Wntless was eliminated. The deletion of Wls was restricted to cells expressing Osteocalcin (OCN), which in addition to osteoblasts includes odontoblasts, cementoblasts, and ameloblasts. Dentin, cementum, enamel, and bone all formed in OCN‐Cre;Wlsfl/fl mice but their homeostasis was dramatically affected. The most notable feature was a significant increase in dentin volume and density. We attribute this gain in dentin volume to a Wnt‐mediated misregulation of Runx2. Normally, Wnt signaling stimulates Runx2, which in turn inhibits dentin sialoprotein (DSP); this inhibition must be relieved for odontoblasts to differentiate. In OCN‐Cre;Wlsfl/fl mice, Wnt pathway activation is reduced and Runx2 levels decline. The Runx2‐mediated repression of DSP is relieved and odontoblast differentiation is accordingly enhanced. This study demonstrates the importance of Wnt signaling in the homeostasis of mineralized tissues of the craniofacial complex.


Chinese Journal of Cancer | 2013

Skeletal metastasis: treatments, mouse models, and the Wnt signaling.

Kenneth C. Valkenburg; Matthew R. Steensma; Bart O. Williams; Zhendong Zhong

Skeletal metastases result in significant morbidity and mortality. This is particularly true of cancers with a strong predilection for the bone, such as breast, prostate, and lung cancers. There is currently no reliable cure for skeletal metastasis, and palliative therapy options are limited. The Wnt signaling pathway has been found to play an integral role in the process of skeletal metastasis and may be an important clinical target. Several experimental models of skeletal metastasis have been used to find new biomarkers and test new treatments. In this review, we discuss pathologic process of bone metastasis, the roles of the Wnt signaling, and the available experimental models and treatments.

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Xi He

Boston Children's Hospital

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Babita Madan

National University of Singapore

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David M. Virshup

National University of Singapore

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