Nanoparticle and Nanotopography-Induced Activation of the Wnt Pathway in Bone Regeneration

被引:0
作者
Jagannathan, Chitra [1 ]
Waddington, Rachel [2 ]
Nishio Ayre, Wayne [2 ]
机构
[1] Univ West England, Dept Appl Sci, Coldharbour Lane, Bristol BS16 1QY, England
[2] Cardiff Univ, Sch Dent, Cardiff, Wales
关键词
nanoparticles; scaffolds; nabotopography; Wnt signaling pathway; bone regeneration; cell differentiation and adhesion; OSTEOBLAST DIFFERENTIATION; FRACTURE NONUNION; OSTEOGENESIS; MECHANISMS;
D O I
10.1089/ten.teb.2023.0108
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Background and Aims: Recent research has focused on developing nanoparticle and nanotopography-based technologies for bone regeneration. The Wingless-related integration site (Wnt) signaling pathway has been shown to play a vital role in this process, in particular in osteogenic differentiation and proliferation. The exact mechanisms by which nanoparticles and nanotopographies activate the Wnt signaling pathway, however, are not fully understood. This review aimed to elucidate the mechanisms by which nanoscale technologies activate the Wnt signaling pathway during bone regeneration. Methods: The terms "Wnt," "bone," and "nano*" were searched on PubMed and Ovid with no date limit. Only original research articles related to Wnt signaling and bone regeneration in the context of nanotopographies, nanoparticles, or scaffolds with nanotopographies/nanoparticles were reviewed. Results: The primary mechanism by which nanoparticles activated the Wnt pathway was by internalization through the endocytic pathway or diffusion through the cell membrane, leading to accumulation of nonphosphorylated beta-catenin in the cytoplasm and subsequently downstream osteogenic signaling (e.g., upregulation of runt-related transcription factor 2 [RUNX2]). The specific size of the nanoparticles and the process of endocytosis itself has been shown to modulate the Wnt-beta-catenin pathway. Nanotopographies were shown to directly activate frizzled receptors, initiating Wnt/beta-catenin signaling. Additional studies showed nanotopographies to activate the Wnt/calcium (Wnt/Ca2+)-dependent and Wnt/planar cell polarity pathways through nuclear factor of activated T cells, and alpha 5 beta 1 integrin stimulation. Finally, scaffolds containing nanotopographies/nanoparticles were found to induce Wnt signaling through a combination of ion release (e.g., lithium, boron, lanthanum, and icariin), which inhibited glycogen synthase kinase 3 beta (GSK-3 beta) activity, and through similar mechanisms to the nanotopographies. Conclusion: This review concludes that nanoparticles and nanotopographies cause Wnt activation through several different mechanisms, specific to the size, shape, and structure of the nanoparticles or nanotopographies. Endocytosis-related mechanisms, integrin signaling and ion release were the major mechanisms identified across nanoparticles, nanotopographies, and scaffolds, respectively. Knowledge of these mechanisms will help develop more effective targeted nanoscale technologies for bone regeneration. Impact statementNanoparticles and nanotopographies can activate the Wingless-related integration site (Wnt) signaling pathway, which is essential for bone regeneration. This review has identified that activation is due to endocytosis, integrin signaling and ion release, depending on the size, shape, and structure of the nanoparticles or nanotopographies. By identifying and further understanding these mechanisms, more effective nanoscale technologies that target the Wnt signaling pathway can be developed. These technologies can be used for the treatment of nonunion bone fractures, a major clinical challenge, with the potential to improve the quality of life of millions of patients around the world.
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页码:270 / 283
页数:14
相关论文
共 73 条
[1]   The Wnt/β-catenin signaling pathway is regulated by titanium with nanotopography to induce osteoblast differentiation [J].
Abuna, Rodrigo P. F. ;
Oliveira, Fabiola S. ;
Lopes, Helena B. ;
Freitas, Gileade P. ;
Fernandes, Roger R. ;
Rosa, Adalberto L. ;
Beloti, Marcio M. .
COLLOIDS AND SURFACES B-BIOINTERFACES, 2019, 184
[2]   The 'diamond concept' for long bone non-union management [J].
Andrzejowski, Paul ;
Giannoudis, Peter V. .
JOURNAL OF ORTHOPAEDICS AND TRAUMATOLOGY, 2019, 20 (01)
[3]   Increased osteogenic differentiation potential of MSCs cultured on nanofibrous structure through activation of Wnt/β-catenin signalling by inorganic polyphosphate [J].
Ardeshirylajimi, Abdolreza ;
Golchin, Ali ;
Khojasteh, Arash ;
Bandehpour, Mojgan .
ARTIFICIAL CELLS NANOMEDICINE AND BIOTECHNOLOGY, 2018, 46 :S943-S949
[4]   Regulation of Wnt Signaling Pathways at the Plasma Membrane and Their Misregulation in Cancer [J].
Azbazdar, Yagmur ;
Karabicici, Mustafa ;
Erdal, Esra ;
Ozhan, Gunes .
FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2021, 9
[5]   WNT signaling in bone homeostasis and disease: from human mutations to treatments [J].
Baron, Roland ;
Kneissel, Michaela .
NATURE MEDICINE, 2013, 19 (02) :179-192
[6]   Heavy Metal Ion Regulation of Gene Expression MECHANISMS BY WHICH LEAD INHIBITS OSTEOBLASTIC BONE-FORMING ACTIVITY THROUGH MODULATION OF THE Wnt/β-CATENIN SIGNALING PATHWAY [J].
Beier, Eric E. ;
Sheu, Tzong-jen ;
Dang, Deborah ;
Holz, Jonathan D. ;
Ubayawardena, Resika ;
Babij, Philip ;
Puzas, J. Edward .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2015, 290 (29) :18216-18226
[7]   Osteocyte-Driven Bone Remodeling [J].
Bellido, Teresita .
CALCIFIED TISSUE INTERNATIONAL, 2014, 94 (01) :25-34
[8]   Wnt induces LRP6 signalosomes and promotes dishevelled-dependent LRP6 phosphorylation [J].
Bilic, Josipa ;
Huang, Ya-Lin ;
Davidson, Gary ;
Zimmermann, Timo ;
Cruciat, Cristina-Maria ;
Bienz, Mariann ;
Niehrs, Christof .
SCIENCE, 2007, 316 (5831) :1619-1622
[9]   A critical role for endocytosis in Wnt signaling [J].
Blitzer, Jeremy T. ;
Nusse, Roel .
BMC CELL BIOLOGY, 2006, 7 (1)
[10]   The function of endocytosis in Wnt signaling [J].
Brunt, Lucy ;
Scholpp, Steffen .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2018, 75 (05) :785-795