Implantation awakens peri-implant osteogenic potential via Snx5-EGFR axis-mediated mechanical transduction

Xue Jiang , Yuteng Weng , Yanhuizhi Feng , Jie Huang , Haicheng Wang , Zuolin Wang

International Journal of Oral Science ›› 2026, Vol. 18 ›› Issue (1) : 18

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International Journal of Oral Science ›› 2026, Vol. 18 ›› Issue (1) :18 DOI: 10.1038/s41368-025-00423-2
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Implantation awakens peri-implant osteogenic potential via Snx5-EGFR axis-mediated mechanical transduction

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Abstract

Alveolar bone resorption during the socket healing process compromises subsequent restoration outcomes. Recent clinical evidence suggests that dental implant placement can effectively prevent such bone loss, yet the mechanisms remain elusive. In this study, combined multi-dataset screening pinpointed sorting nexin 5 (Snx5) as a potential regulator of mechanotransduction, whose expression was downregulated in early peri-implant bone remodeling zones following implant placement. Functional studies showed that loss of Snx5 abolished the additional osteogenic enhancement normally induced by mechanical stimulation. In vivo, Snx5 deficiency disrupted the mechanosensitive activation of LepR+ MSCs and compromised implant-induced osteogenesis. Mechanistically, Snx5 facilitates the recycling of phosphorylated EGFR (p-EGFR) back to the plasma membrane to sustain EGFR signaling. Loss of Snx5 redirects EGFR trafficking toward late endosomes and lysosomal degradation, thereby weakening its signaling. These findings uncover a previously unrecognized role for Snx5 in mediating the osteogenic fate of peri-implant BMSCs in response to mechanical cues, expanding the functional repertoire of the Snx family. Collectively, these findings highlight Snx5 as a novel regulator of mechanosensitive bone remodeling and suggest that its downregulation may contribute to peri-implant bone adaptation. This study provides new insights into how the mechanical microenvironment regulates bone repair and highlights Snx5 as a promising molecular target for modulating skeletal mechano-responsiveness in clinical bone regeneration.

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Xue Jiang, Yuteng Weng, Yanhuizhi Feng, Jie Huang, Haicheng Wang, Zuolin Wang. Implantation awakens peri-implant osteogenic potential via Snx5-EGFR axis-mediated mechanical transduction. International Journal of Oral Science, 2026, 18(1): 18 DOI:10.1038/s41368-025-00423-2

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References

[1]

Sáez-Alcaide LMet al.. Effectiveness of the bone ring technique and simultaneous implant placement for vertical ridge augmentation: a systematic review. Int. J. Implant. Dent., 2020, 6 82

[2]

Felice P, Pistilli R, Barausse C, Trullenque-Eriksson A, Esposito M. Immediate non-occlusal loading of immediate post-extractive versus delayed placement of single implants in preserved sockets of the anterior maxilla: 1-year post-loading outcome of a randomised controlled trial. Eur. J. Oral. Implantol., 2015, 8: 361-72

[3]

Esposito Met al.. Immediate loading of post-extractive versus delayed placed single implants in the anterior maxilla: outcome of a pragmatic multicenter randomised controlled trial 1-year after loading. Eur. J. Oral. Implantol., 2015, 8: 347-58

[4]

Schropp L, Kostopoulos L, Wenzel A. Bone healing following immediate versus delayed placement of titanium implants into extraction sockets: a prospective clinical study. Int J. Oral. Maxillofac. Implants, 2003, 18: 189-99

[5]

Krawiec M, Olchowy C, Kubasiewicz-Ross P, Hadzik J, Dominiak M. Role of implant loading time in the prevention of marginal bone loss after implant-supported restorations: a targeted review. Dent. Med. Probl., 2022, 59: 475-481

[6]

Sanda M, Fueki K, Bari PR, Baba K. Comparison of immediate and conventional loading protocols with respect to marginal bone loss around implants supporting mandibular overdentures: a systematic review and meta-analysis. Jpn Dent. Sci. Rev., 2019, 55: 20-25

[7]

Jing Det al.. Response of Gli1(+) suture stem cells to mechanical force upon suture expansion. J. Bone Miner. Res., 2022, 37: 1307-1320

[8]

Jin SSet al.. Mechanical force modulates periodontal ligament stem cell characteristics during bone remodelling via TRPV4. Cell Prolif., 2020, 53 e12912

[9]

Gong Xet al.. Osteoblastic STAT3 is crucial for orthodontic force driving alveolar bone remodeling and tooth movement. J. Bone Miner. Res., 2023, 38: 214-227

[10]

Li Bet al.. Effects of tensile and compressive stress on bone resorption and formation parameters surrounding dental implants. J. Mech. Behav. Biomed. Mater., 2025, 165 106928

[11]

Ambrosi TH, Longaker MT, Chan CKF. A revised perspective of skeletal stem cell biology. Front. Cell Dev. Biol., 2019, 7: 189

[12]

Hu Pet al.. Fak silencing impairs osteogenic differentiation of bone mesenchymal stem cells induced by uniaxial mechanical stretch. J. Dent. Sci., 2019, 14: 225-233

[13]

Zhang Det al.. LepR-expressing stem cells are essential for alveolar bone regeneration. J. Dent. Res., 2020, 99: 1279-1286

[14]

Shen Bet al.. A mechanosensitive peri-arteriolar niche for osteogenesis and lymphopoiesis. Nature, 2021, 591: 438-444

[15]

Wang F, Wang H, Zhang H, Sun B, Wang Z. A novel mechanism of MSCs responding to occlusal force for bone homeostasis. J. Dent. Res., 2024, 103: 642-651

[16]

Xu, H. et al. SNX5 targets a monoamine transporter to the TGN for assembly into dense core vesicles by AP-3. J. Cell Biol. 221, e202106083 (2022).

[17]

Zhu J, Shimizu E, Zhang X, Partridge NC, Qin L. EGFR signaling suppresses osteoblast differentiation and inhibits expression of master osteoblastic transcription factors Runx2 and Osterix. J. Cell Biochem., 2011, 112: 1749-60

[18]

He Xet al.. Analysis of titanium and other metals in human jawbones with dental implants—A case series study. Dent. Mater., 2016, 32: 1042-51

[19]

Barrak Fet al.. Particle release from dental implants immediately after placement—An ex vivo comparison of different implant systems. Dent. Mater., 2022, 38: 1004-1014

[20]

Liu S, Broucek J, Virdi AS, Sumner DR. Limitations of using micro-computed tomography to predict bone-implant contact and mechanical fixation. J. Microsc., 2012, 245: 34-42

[21]

Mok, S. et al. Multi-scale characterization of conventional and immediate dental implant systems. J. Funct. Biomater. 15, 317 (2024).

[22]

Wang Let al.. Mechanical sensing protein PIEZO1 regulates bone homeostasis via osteoblast-osteoclast crosstalk. Nat. Commun., 2020, 11 282

[23]

Ogiso Het al.. Crystal structure of the complex of human epidermal growth factor and receptor extracellular domains. Cell, 2002, 110: 775-87

[24]

Tomas A, Futter CE, Eden ER. EGF receptor trafficking: consequences for signaling and cancer. Trends Cell Biol., 2014, 24: 26-34

[25]

David, L. et al. Piezo mechanosensory channels regulate centrosome integrity. Preprint at https://doi.org/10.1101/2022.04.12.488050 (2022).

[26]

Xia Het al.. EGFR-PI3K-PDK1 pathway regulates YAP signaling in hepatocellular carcinoma: the mechanism and its implications in targeted therapy. Cell Death Dis., 2018, 9 269

[27]

Song Set al.. The hippo coactivator YAP1 mediates EGFR overexpression and confers chemoresistance in esophageal cancer. Clin. Cancer Res., 2015, 21: 2580-90

[28]

Simonetti Bet al.. Molecular identification of a BAR domain-containing coat complex for endosomal recycling of transmembrane proteins. Nat. Cell Biol., 2019, 21: 1219-1233

[29]

Chen YFet al.. SNX10 deficiency impairs sensitivity to anti-HER2 antibody-drug conjugates via altering HER2 trafficking in HER2-positive breast cancer. Proc. Natl. Acad. Sci. USA, 2025, 122 e2417586122

[30]

Pardo-Pastor C, Rosenblatt J. Piezo1 activates noncanonical EGFR endocytosis and signaling. Sci. Adv., 2023, 9: eadi1328

[31]

Rao T. C. et al. EGFR activation attenuates the mechanical threshold for integrin tension and focal adhesion formation. J. Cell Sci. 133, jcs238840 (2020).

[32]

Love MI, Huber W, Anders S. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2. Genome Biol., 2014, 15 550

[33]

Luo S, Chen Y, Su X, Chu H. mmeta: an R package for multivariate meta-analysis. J. Stat. Softw., 2014, 56: 11

[34]

Cha JYet al.. Multiscale analyses of the bone-implant interface. J. Dent. Res., 2015, 94: 482-90

[35]

Mouraret Set al.. A pre-clinical murine model of oral implant osseointegration. Bone, 2014, 58: 177-84

[36]

Hardesty JEet al.. Effect of epidermal growth factor treatment and polychlorinated biphenyl exposure in a dietary-exposure mouse model of steatohepatitis. Environ. Health Perspect., 2021, 129: 37010

[37]

Zhao Het al.. Autophagy activation improves lung injury and inflammation in sepsis. Inflammation, 2019, 42: 426-439

[38]

Xiao C, Feng L, Yang W. Inhibition of dendritic cell autophagy alleviates the progression of allergic rhinitis by inhibiting Th1/Th2/Th17 immune imbalance and inflammation. Histol. Histopathol., 2025, 40: 237-247

[39]

Sun Bet al.. Autophagy regulates age-related jawbone loss via LepR(+) stromal cells. J. Dent. Res., 2024, 103: 1028-1038

Funding

National Natural Science Foundation of China (National Science Foundation of China)(82350001)

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