1.Local abaloparatide administration promotes in situ alveolar bone augmentation via FAK-mediated periosteal osteogenesis.
Ruyi WANG ; Yuan LI ; Bowen TAN ; Shijia LI ; Yanting WU ; Yao CHEN ; Yuran QIAN ; Haochen WANG ; Bo LI ; Zhihe ZHAO ; Quan YUAN ; Yu LI
International Journal of Oral Science 2025;17(1):63-63
Insufficient alveolar bone thickness increases the risk of periodontal dehiscence and fenestration, especially in orthodontic tooth movement. Abaloparatide (ABL), a synthetic analog of human PTHrP (1-34) and a clinical medication for treating osteoporosis, has recently demonstrated its potential in enhancing craniofacial bone formation. Herein, we show that intraoral submucosal injection of ABL, when combined with mechanical force, promotes in situ alveolar bone thickening. The newly formed bone is primarily located outside the original compact bone, implying its origin from the periosteum. RNA sequencing of the alveolar bone tissue revealed that the focal adhesion (FA) pathway potentially mediates this bioprocess. Local injection of ABL alone enhances cell proliferation, collagen synthesis, and phosphorylation of focal adhesion kinase (FAK) in the alveolar periosteum; when ABL is combined with mechanical force, the FAK expression is upregulated, in line with the accomplishment of the ossification. In vitro, ABL enhances proliferation, migration, and FAK phosphorylation in periosteal stem cells. Furthermore, the pro-osteogenic effects of ABL on alveolar bone are entirely blocked when FAK activity is inhibited by a specific inhibitor. In summary, abaloparatide combined with mechanical force promotes alveolar bone formation via FAK-mediated periosteal osteogenesis. Thus, we have introduced a promising therapeutic approach for drug-induced in situ alveolar bone augmentation, which may prevent or repair the detrimental periodontal dehiscence, holding significant potential in dentistry.
Osteogenesis/drug effects*
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Periosteum/cytology*
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Parathyroid Hormone-Related Protein/administration & dosage*
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Animals
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Focal Adhesion Protein-Tyrosine Kinases/metabolism*
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Alveolar Process/drug effects*
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Cell Proliferation/drug effects*
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Phosphorylation
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Rats
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Male
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Humans
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Focal Adhesion Kinase 1/metabolism*
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Cell Movement/drug effects*
2.Advances in drug development for Alzheimer’s disease
Yao MU ; Huimin ZHAO ; Haochen LIU ; Xiaoquan LIU
Journal of China Pharmaceutical University 2024;55(6):816-825
Alzheimer’s disease (AD) is a neurodegenerative disorder involving multiple pathological processes, clinically characterized by memory loss and cognitive impairment. The pathological processes of AD are complex, and the etiology remains unclear. Currently, there are various hypotheses including β-amyloid (Aβ) deposition, tau protein hyperphosphorylation, neuroinflammation, and synaptic loss, upon which researchers base their drug development efforts. Prior to 2021, drugs approved by the U.S. Food and Drug Administration (FDA) had targeted neurotransmitter modulation, but their efficacy was limited. In recent years, the approval of two anti-Aβ monoclonal antibody drugs has brought some clinical benefits to patients, yet they have not fully met clinical needs, which had highlighted the urgent necessity for exploration of new mechanisms and targets in AD drug development. Presently, research on novel mechanisms and targets for AD drug development focuses primarily on several directions: anti-Aβ drugs, anti-Tau protein drugs, anti-neuroinflammation immunotherapies, mitochondrial function-improving drugs, neurogenesis-promoting drugs, and synapse-protective drugs. This paper provides an overview of AD drugs entering clinical trials in the past decade in these directions, details some representative drugs, and concludes with prospects, integrating findings from our research group.
3.Precise delivery of obeticholic acid
Guofeng JI ; Lushun MA ; Haochen YAO ; Sheng MA ; Xinghui SI ; Yalin WANG ; Xin BAO ; Lili MA ; Fangfang CHEN ; Chong MA ; Leaf HUANG ; Xuedong FANG ; Wantong SONG
Acta Pharmaceutica Sinica B 2020;10(11):2171-2182
Primary bile acids were reported to augment secretion of chemokine (C‒X‒C motif) ligand 16 (CXCL16) from liver sinusoidal endothelial cells (LSECs) and trigger natural killer T (NKT) cell-based immunotherapy for liver cancer. However, abundant expression of receptors for primary bile acids across the gastrointestinal tract overwhelms the possibility of using agonists against these receptors for liver cancer control. Taking advantage of the intrinsic property of LSECs in capturing circulating nanoparticles in the circulation, we proposed a strategy using nanoemulsion-loaded obeticholic acid (OCA), a clinically approved selective farnesoid X receptor (FXR) agonist, for precisely manipulating LSECs for triggering NKT cell-mediated liver cancer immunotherapy. The OCA-nanoemulsion (OCA-NE) was prepared

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