Enhancer-driven Shh signaling promotes glia-to-mesenchyme transition during bone repair

Xin Shen , Hang Zhang , Zesheng Song , Yangjiele Dong , Xiao Ge , Shenghao Jin , Songsong Guo , Ping Zhang , Yu Fu , Yuchi Zhu , Na Xiao , Dongmiao Wang , Jie Cheng , Rongyao Xu , Hongbing Jiang

Bone Research ›› 2025, Vol. 13 ›› Issue (1) : 16

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Bone Research ›› 2025, Vol. 13 ›› Issue (1) : 16 DOI: 10.1038/s41413-024-00396-8
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Enhancer-driven Shh signaling promotes glia-to-mesenchyme transition during bone repair

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Abstract

Plp1-lineage Schwann cells (SCs) of peripheral nerve play a critical role in vascular remodeling and osteogenic differentiation during the early stage of bone healing, and the abnormal plasticity of SCs would jeopardize the bone regeneration. However, how Plp1-lineage cells respond to injury and initiate the vascularized osteogenesis remains incompletely understood. Here, by employing single-cell transcriptional profiling combined with lineage-specific tracing models, we uncover that Plp1-lineage cells undergoing injury-induced glia-to-MSCs transition contributed to osteogenesis and revascularization in the initial stage of bone injury. Importantly, our data demonstrated that the Sonic hedgehog (Shh) signaling was responsible for the transition process initiation, which was strongly activated by c-Jun/SIRT6/BAF170 complex-driven Shh enhancers. Collectively, these findings depict an injury-specific niche signal-mediated Plp1-lineage cells transition towards Gli1+ MSCs and may be instructive for approaches to promote bone regeneration during aging or other bone diseases.

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Xin Shen, Hang Zhang, Zesheng Song, Yangjiele Dong, Xiao Ge, Shenghao Jin, Songsong Guo, Ping Zhang, Yu Fu, Yuchi Zhu, Na Xiao, Dongmiao Wang, Jie Cheng, Rongyao Xu, Hongbing Jiang. Enhancer-driven Shh signaling promotes glia-to-mesenchyme transition during bone repair. Bone Research, 2025, 13(1): 16 DOI:10.1038/s41413-024-00396-8

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References

[1]

Mao JJ, Prockop DJ. Stem cells in the face: tooth regeneration and beyond Cell Stem Cell, 2012, 11: 291-301.

[2]

Kushioka J, et al.. Bone regeneration in inflammation with aging and cell-based immunomodulatory therapy Inflamm. Regen., 2023, 43: 29.

[3]

Li B, et al.. SIRT6-regulated macrophage efferocytosis epigenetically controls inflammation resolution of diabetic periodontitis Theranostics, 2023, 13: 231-249.

[4]

Shen X, et al.. Macrophage miR-149-5p induction is a key driver and therapeutic target for BRONJ JCI Insight, 2022, 7: e159865.

[5]

Li Q, Xu R, Lei K, Yuan Q. Insights into skeletal stem cells Bone Res., 2022, 10: 61.

[6]

Qin Q, et al.. Neuron-to-vessel signaling is a required feature of aberrant stem cell commitment after soft tissue trauma Bone Res., 2022, 10: 43.

[7]

Men Y, et al.. Gli1+ periodontium stem cells are regulated by osteocytes and occlusal force Dev. Cell, 2020, 54: 639-654.e636.

[8]

Shalehin N, et al.. Gli1+-PDL cells contribute to alveolar bone homeostasis and regeneration J. Dent. Res., 2022, 101: 1537-1543.

[9]

Du J, et al.. Arid1a-Plagl1-Hh signaling is indispensable for differentiation-associated cell cycle arrest of tooth root progenitors Cell Rep., 2021, 35. 108964

[10]

Shi Y, et al.. Gli1 identifies osteogenic progenitors for bone formation and fracture repair Nat. Commun., 2017, 8. ARTN 2043

[11]

Chen J, et al.. Gli1+ cells couple with type H vessels and are required for type H vessel formation Stem Cell Rep., 2020, 15: 110-124.

[12]

Carr MJ, et al.. Mesenchymal precursor cells in adult nerves contribute to mammalian tissue repair and regeneration Cell Stem Cell, 2019, 24: 240-256.e249.

[13]

Parfejevs V, et al.. Injury-activated glial cells promote wound healing of the adult skin in mice Nat. Commun., 2018, 9. 236

[14]

Carr MJ, Johnston AP. Schwann cells as drivers of tissue repair and regeneration Curr. Opin. Neurobiol., 2017, 47: 52-57.

[15]

Jessen KR, Arthur-Farraj P. Repair Schwann cell update: adaptive reprogramming, EMT, and stemness in regenerating nerves Glia, 2019, 67: 421-437.

[16]

Xu J, et al.. NGF-p75 signaling coordinates skeletal cell migration during bone repair Sci. Adv., 2022, 8. eabl5716

[17]

Bessy T, Itkin T, Passaro D. Bioengineering the bone marrow vascular niche Front. Cell Dev. Biol., 2021, 9. 645496

[18]

Xie M, et al.. Schwann cell precursors contribute to skeletal formation during embryonic development in mice and zebrafish Proc. Natl. Acad. Sci. USA, 2019, 116: 15068-15073.

[19]

Lv L, Wang Y, Zhang J, Zhang T, Li S. Healing of periodontal defects and calcitonin gene related peptide expression following inferior alveolar nerve transection in rats J. Mol. Histol., 2014, 45: 311-320.

[20]

Tao R, et al.. Hallmarks of peripheral nerve function in bone regeneration Bone Res., 2023, 11: 6.

[21]

Jones RE, et al.. Skeletal stem cell-Schwann cell circuitry in mandibular repair Cell Rep., 2019, 28: 2757-2766.e2755.

[22]

Johnston AP, et al.. Dedifferentiated Schwann cell precursors secreting paracrine factors are required for regeneration of the mammalian digit tip Cell Stem Cell, 2016, 19: 433-448.

[23]

Kaukua N, et al.. Glial origin of mesenchymal stem cells in a tooth model system Nature, 2014, 513: 551-554.

[24]

Zhao H, et al.. Secretion of shh by a neurovascular bundle niche supports mesenchymal stem cell homeostasis in the adult mouse incisor Cell Stem Cell, 2014, 14: 160-173.

[25]

Hung HA, Sun G, Keles S, Svaren J. Dynamic regulation of Schwann cell enhancers after peripheral nerve injury J. Biol. Chem., 2015, 290: 6937-6950.

[26]

Gonzalez DM, Medici D. Signaling mechanisms of the epithelial-mesenchymal transition Sci. Signal., 2014, 7: re8.

[27]

Yu F, Li F, Zheng L, Ye L. Epigenetic controls of Sonic Hedgehog guarantee fidelity of epithelial adult stem cells trajectory in regeneration Sci. Adv., 2022, 8. eabn4977

[28]

Ma KH, Hung HA, Svaren J. Epigenomic regulation of Schwann cell reprogramming in peripheral nerve injury J. Neurosci., 2016, 36: 9135-9147.

[29]

Ramesh R, et al.. JUN regulation of injury-induced enhancers in Schwann cells J. Neurosci., 2022, 42: 6506-6517.

[30]

Xu R, et al.. Impaired efferocytosis enables apoptotic osteoblasts to escape osteoimmune surveillance during aging Adv. Sci., 2023, 10. e2303946

[31]

Rezazadeh S, et al.. SIRT6 promotes transcription of a subset of NRF2 targets by mono-ADP-ribosylating BAF170 Nucleic Acids Res., 2019, 47: 7914-7928.

[32]

Covarrubias AJ, Perrone R, Grozio A, Verdin E. NAD+ metabolism and its roles in cellular processes during ageing Nat. Rev. Mol. Cell Biol., 2021, 22: 119-141.

[33]

Verdin E. The many faces of sirtuins: coupling of NAD metabolism, sirtuins and lifespan Nat. Med., 2014, 20: 25-27.

[34]

Michishita E, et al.. SIRT6 is a histone H3 lysine 9 deacetylase that modulates telomeric chromatin Nature, 2008, 452: 492-496.

[35]

Arthur-Farraj PJ, et al.. c-Jun reprograms Schwann cells of injured nerves to generate a repair cell essential for regeneration Neuron, 2012, 75: 633-647.

[36]

Brownell I, Guevara E, Bai CB, Loomis CA, Joyner AL. Nerve-derived Sonic hedgehog defines a niche for hair follicle stem cells capable of becoming epidermal stem cells Cell Stem Cell, 2011, 8: 552-565.

[37]

Jing D, et al.. The vital role of Gli1+ mesenchymal stem cells in tissue development and homeostasis J. Cell. Physiol., 2021, 236: 6077-6089.

[38]

Shi Y, et al.. Gli1+ progenitors mediate bone anabolic function of teriparatide via Hh and Igf signaling Cell Rep., 2021, 36. 109542

[39]

Bi R, et al.. Divergent chondro/osteogenic transduction laws of fibrocartilage stem cell drive temporomandibular joint osteoarthritis in growing mice Int. J. Oral Sci., 2023, 15: 36.

[40]

Xu X, et al.. Sox10 escalates vascular inflammation by mediating vascular smooth muscle cell transdifferentiation and pyroptosis in neointimal hyperplasia Cell Rep., 2023, 42. 112869

[41]

Yui S, et al.. YAP/TAZ-dependent reprogramming of colonic epithelium links ECM remodeling to tissue regeneration Cell Stem Cell, 2018, 22: 35-49.e37.

[42]

Matsushita Y, et al.. A Wnt-mediated transformation of the bone marrow stromal cell identity orchestrates skeletal regeneration Nat. Commun., 2020, 11. 332

[43]

Tang PC, et al.. Single-cell RNA sequencing uncovers a neuron-like macrophage subset associated with cancer pain Sci. Adv., 2022, 8. eabn5535

[44]

Clements MP, et al.. The wound microenvironment reprograms Schwann cells to invasive mesenchymal-like cells to drive peripheral nerve regeneration Neuron, 2017, 96: 98-114.e117.

[45]

Klatt Shaw D, et al.. Localized EMT reprograms glial progenitors to promote spinal cord repair Dev. Cell, 2021, 56: 613-626.e617.

[46]

Jessen KR, Mirsky R. The repair Schwann cell and its function in regenerating nerves J. Physiol., 2016, 594: 3521-3531.

[47]

Gordon T. Peripheral nerve regeneration and muscle reinnervation Int. J. Mol. Sci., 2020, 21: 8652.

[48]

Furlan A, et al.. Multipotent peripheral glial cells generate neuroendocrine cells of the adrenal medulla Science, 2017, 357: eaal3753.

[49]

Scheib J, Höke A. Advances in peripheral nerve regeneration Nat. Rev. Neurol., 2013, 9: 668-676.

[50]

Zhang X, et al.. Schwann cells contribute to alveolar bone regeneration by promoting cell proliferation J. Bone Miner. Res., 2023, 38: 119-130.

[51]

Yi Y, Stenberg W, Luo W, Feng JQ, Zhao H. Alveolar bone marrow Gli1+ stem cells support implant osseointegration J. Dent. Res., 2022, 101: 73-82.

[52]

Griffiths IR, Schneider A, Anderson J, Nave KA. Transgenic and natural mouse models of proteolipid protein (PLP)-related dysmyelination and demyelination Brain Pathol., 1995, 5: 275-281.

[53]

Li S, et al.. Leydig cells express the myelin proteolipid protein gene and incorporate a new alternatively spliced exon Gene, 2009, 436: 30-36.

[54]

Lin HP, Oksuz I, Hurley E, Wrabetz L, Awatramani R. Microprocessor complex subunit DiGeorge syndrome critical region gene 8 (Dgcr8) is required for Schwann cell myelination and myelin maintenance J. Biol. Chem., 2015, 290: 24294-24307.

[55]

Van Camp N, Verhelst PJ, Nicot R, Ferri J, Politis C. Impaired callus formation in pathological mandibular fractures in medication-related osteonecrosis of the jaw and osteoradionecrosis J. Oral Maxillofac. Surg., 2021, 79: 1892-1901.

Funding

National Natural Science Foundation of China (National Science Foundation of China)(81970910 and 82370931)

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