1.Research progress in material surface microstructure regulating osteoclastic cells
Yanlin TAN ; Qiang ZHANG ; Xiupiao LIU ; Bokai XIONG ; Peipei YANG ; Yuchen YANG
International Journal of Biomedical Engineering 2020;43(3):244-249
The development of bone tissue engineering puts forward higher requirements for scaffold materials. Based on the theory of complete regeneration in regenerative medicine, bone graft substitutes are required to be osteoinducible, and to be degraded by osteoclasts and replaced with new bone tissue. Absorbable scaffold materials can be degraded by osteoclasts, and their physical and chemical properties also affect the behavior of osteoclasts. The surface microstructure of the materials is the key to initiating osteoinduction, and it has an important influence on the behavior of osteoclasts. In addition, the surface roughness of the materials can enhance the functional activity of osteoclasts within a certain range. In this paper, the research progress in material surface microstructure regulating osteoclastic cells were reviewed, in order to further explore its mechanism of action, and provide a reference for the preparation of better performance tissue engineering scaffold materials.
2.Single-cell transcriptomic analysis uncovers the origin and intratumoral heterogeneity of parotid pleomorphic adenoma.
Xiuyun XU ; Jiaxiang XIE ; Rongsong LING ; Shengqi OUYANG ; Gan XIONG ; Yanwen LU ; Bokai YUN ; Ming ZHANG ; Wenjin WANG ; Xiqiang LIU ; Demeng CHEN ; Cheng WANG
International Journal of Oral Science 2023;15(1):38-38
Pleomorphic adenoma (PA) is the most common benign tumour in the salivary gland and has high morphological complexity. However, the origin and intratumoral heterogeneity of PA are largely unknown. Here, we constructed a comprehensive atlas of PA at single-cell resolution and showed that PA exhibited five tumour subpopulations, three recapitulating the epithelial states of the normal parotid gland, and two PA-specific epithelial cell (PASE) populations unique to tumours. Then, six subgroups of PASE cells were identified, which varied in epithelium, bone, immune, metabolism, stemness and cell cycle signatures. Moreover, we revealed that CD36+ myoepithelial cells were the tumour-initiating cells (TICs) in PA, and were dominated by the PI3K-AKT pathway. Targeting the PI3K-AKT pathway significantly inhibited CD36+ myoepithelial cell-derived tumour spheres and the growth of PA organoids. Our results provide new insights into the diversity and origin of PA, offering an important clinical implication for targeting the PI3K-AKT signalling pathway in PA treatment.
Humans
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Adenoma, Pleomorphic/genetics*
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Phosphatidylinositol 3-Kinases
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Proto-Oncogene Proteins c-akt
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Transcriptome
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Myoepithelioma
3.Netrin-3 Suppresses Diabetic Neuropathic Pain by Gating the Intra-epidermal Sprouting of Sensory Axons.
Weiping PAN ; Xueyin HUANG ; Zikai YU ; Qiongqiong DING ; Liping XIA ; Jianfeng HUA ; Bokai GU ; Qisong XIONG ; Hualin YU ; Junbo WANG ; Zhenzhong XU ; Linghui ZENG ; Ge BAI ; Huaqing LIU
Neuroscience Bulletin 2023;39(5):745-758
Diabetic neuropathic pain (DNP) is the most common disabling complication of diabetes. Emerging evidence has linked the pathogenesis of DNP to the aberrant sprouting of sensory axons into the epidermal area; however, the underlying molecular events remain poorly understood. Here we found that an axon guidance molecule, Netrin-3 (Ntn-3), was expressed in the sensory neurons of mouse dorsal root ganglia (DRGs), and downregulation of Ntn-3 expression was highly correlated with the severity of DNP in a diabetic mouse model. Genetic ablation of Ntn-3 increased the intra-epidermal sprouting of sensory axons and worsened the DNP in diabetic mice. In contrast, the elevation of Ntn-3 levels in DRGs significantly inhibited the intra-epidermal axon sprouting and alleviated DNP in diabetic mice. In conclusion, our studies identified Ntn-3 as an important regulator of DNP pathogenesis by gating the aberrant sprouting of sensory axons, indicating that Ntn-3 is a potential druggable target for DNP treatment.
Mice
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Animals
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Diabetes Mellitus, Experimental/metabolism*
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Axons/physiology*
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Diabetic Neuropathies
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Sensory Receptor Cells/metabolism*
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Neuralgia/metabolism*