WNT1-induced Secreted Protein-1 (WISP1), a Novel Regulator of Bone Turnover and Wnt Signaling
JOURNAL OF BIOLOGICAL CHEMISTRY
Authors: Maeda, Azusa; Ono, Mitsuaki; Holmbeck, Kenn; Li, Li; Kilts, Tina M.; Kram, Vardit; Noonan, Megan L.; Yoshioka, Yuya; McNerny, Erin M. B.; Tantillo, Margaret A.; Kohn, David H.; Lyons, Karen M.; Robey, Pamela G.; Young, Marian F.
Abstract
WISP1/CCN4 (hereafter referred to as WISP1), a member of the CCN family, is found in mineralized tissues and is produced by osteoblasts and their precursors. In this study, Wisp1-deficient (Wisp1(-/-)) mice were generated. Using dual-energy x-ray absorptiometry, we showed that by 3 months, the total bone mineral density of Wisp1(-/-) mice was significantly lower than that of WT mice. Further investigation by micro-computed tomography showed that female Wisp1(-/-) mice had decreased trabecular bone volume/total volume and that both male and female Wisp1(-/-) mice had decreased cortical bone thickness accompanied by diminished biomechanical strength. The molecular basis for decreased bone mass in Wisp1(-/-) mice arises from reduced bone formation likely caused by osteogenic progenitors that differentiate poorly compared with WT cells. Osteoclast precursors from Wisp1(-/-) mice developed more tartrate-resistant acid phosphatase-positive cells in vitro and in transplants, suggesting that WISP1 is also a negative regulator of osteoclast differentiation. When bone turnover (formation and resorption) was induced by ovariectomy, Wisp1(-/-) mice had lower bone mineral density compared WT mice, confirming the potential for multiple roles for WISP1 in controlling bone homeostasis. Wisp1(-/-) bone marrow stromal cells had reduced expression of beta-catenin and its target genes, potentially caused by WISP1 inhibition of SOST binding to LRP6. Taken together, our data suggest that the decreased bone mass found in Wisp1(-/-) mice could potentially be caused by an insufficiency in the osteodifferentiation capacity of bone marrow stromal cells arising from diminished Wnt signaling, ultimately leading to altered bone turnover and weaker biomechanically compromised bones.
Wnt Signaling Pathway Proteins in Scar, Hypertrophic Scar, and Keloid: Evidence for a Continuum?
AMERICAN JOURNAL OF DERMATOPATHOLOGY
Authors: Chaudet, Kristine M.; Goyal, Amrita; Veprauskas, Katy R.; Nazarian, Rosalynn M.
Abstract
Hypertrophic scars and keloids are fibroproliferative lesions characterized by excessive collagen deposition. It is unclear whether these entities represent distinct disorders or share a common pathogenesis and the molecular underpinnings of these lesions are poorly understood. Accumulating evidence suggests that the Wnt signaling pathway is a key regulator of wound healing. In this study, tissue microarray was used to evaluate the protein expression profile for Wnt3a, phosphorylated glycogen synthase kinase 3 alpha (pGSK-3 alpha), WNT1-inducible-signaling pathway protein 1 (WISP1), and WISP2 in normal skin, scars, hypertrophic scars, and keloids. Analysis revealed significantly increased fibroblast expression of pGSK-3 alpha in scars (27.2%), hypertrophic scars (30.4%), and keloids (57.3%) compared with normal skin (16.4%) (all differences statistically significant; P < 0.01). Analysis of WISP2 showed 94% of fibroblasts in normal skin expressing WISP2 and significantly decreased expression in scars (46.8%), hypertrophic scars (27.0%), and keloids (61.3%) (all differences statistically significant; P < 0.01). The parallel patterns of expression of pGSK-3 alpha and WISP2 in scars and hypertrophic scars and significantly increased expression in keloids may support the notion that keloids are a truly distinct fibrosing disorder and may provide further evidence for targeting the Wnt signaling pathway in the treatment of keloids.