HuR-mediated nucleocytoplasmic translocation of HOTAIR relieves its inhibition of osteogenic differentiation and promotes bone formation

Yuheng Li , Weijia Sun , Jianwei Li , Ruikai Du , Wenjuan Xing , Xinxin Yuan , Guohui Zhong , Dingsheng Zhao , Zizhong Liu , Xiaoyan Jin , Junjie Pan , Youyou Li , Qi Li , Guanghan Kan , Xuan Han , Shukuan Ling , Xiqing Sun , Yingxian Li

Bone Research ›› 2023, Vol. 11 ›› Issue (1) : 53

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Bone Research ›› 2023, Vol. 11 ›› Issue (1) :53 DOI: 10.1038/s41413-023-00289-2
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HuR-mediated nucleocytoplasmic translocation of HOTAIR relieves its inhibition of osteogenic differentiation and promotes bone formation

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Abstract

Bone marrow mesenchymal stem cell (BMSC) osteogenic differentiation and osteoblast function play critical roles in bone formation, which is a highly regulated process. Long noncoding RNAs (lncRNAs) perform diverse functions in a variety of biological processes, including BMSC osteogenic differentiation. Although several studies have reported that HOX transcript antisense RNA (HOTAIR) is involved in BMSC osteogenic differentiation, its effect on bone formation in vivo remains unclear. Here, by constructing transgenic mice with BMSC (Prx1-HOTAIR)- and osteoblast (Bglap-HOTAIR)-specific overexpression of HOTAIR, we found that Prx1-HOTAIR and Bglap-HOTAIR transgenic mice show different bone phenotypes in vivo. Specifically, Prx1-HOTAIR mice showed delayed bone formation, while Bglap-HOTAIR mice showed increased bone formation. HOTAIR inhibits BMSC osteogenic differentiation but promotes osteoblast function in vitro. Furthermore, we identified that HOTAIR is mainly located in the nucleus of BMSCs and in the cytoplasm of osteoblasts. HOTAIR displays a nucleocytoplasmic translocation pattern during BMSC osteogenic differentiation. We first identified that the RNA-binding protein human antigen R (HuR) is responsible for HOTAIR nucleocytoplasmic translocation. HOTAIR is essential for osteoblast function, and cytoplasmic HOTAIR binds to miR-214 and acts as a ceRNA to increase Atf4 protein levels and osteoblast function. Bglap-HOTAIR mice, but not Prx1-HOTAIR mice, showed alleviation of bone loss induced by unloading. This study reveals the importance of temporal and spatial regulation of HOTAIR in BMSC osteogenic differentiation and bone formation, which provides new insights into precise regulation as a target for bone loss.

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Yuheng Li, Weijia Sun, Jianwei Li, Ruikai Du, Wenjuan Xing, Xinxin Yuan, Guohui Zhong, Dingsheng Zhao, Zizhong Liu, Xiaoyan Jin, Junjie Pan, Youyou Li, Qi Li, Guanghan Kan, Xuan Han, Shukuan Ling, Xiqing Sun, Yingxian Li. HuR-mediated nucleocytoplasmic translocation of HOTAIR relieves its inhibition of osteogenic differentiation and promotes bone formation. Bone Research, 2023, 11(1): 53 DOI:10.1038/s41413-023-00289-2

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References

[1]

Gao Q et al. Bone marrow mesenchymal stromal cells: identification, classification, and differentiation. Front. Cell Dev. Biol., 2021, 9: 787118

[2]

Salhotra A, Shah HN, Levi B, Longaker MT. Mechanisms of bone development and repair. Nat. Rev. Mol. Cell Biol., 2020, 21: 696-711

[3]

Long F. Building strong bones: molecular regulation of the osteoblast lineage. Nat. Rev. Mol. Cell Biol., 2011, 13: 27-38

[4]

Franceschi RT, Ge C, Xiao G, Roca H, Jiang D. Transcriptional regulation of osteoblasts. Ann. N. Y. Acad. Sci., 2007, 1116: 196-207

[5]

Quinn JJ, Chang HY. Unique features of long non-coding RNA biogenesis and function. Nat. Rev. Genet., 2016, 17: 47-62

[6]

Statello L, Guo C-J, Chen L-L, Huarte M. Gene regulation by long non-coding RNAs and its biological functions. Nat. Rev. Mol. Cell Biol., 2021, 22: 96-118

[7]

Herman AB, Tsitsipatis D, Gorospe M. Integrated lncRNA function upon genomic and epigenomic regulation. Mol. Cell, 2022, 82: 2252-2266

[8]

Mattick JS et al. Long non-coding RNAs: definitions, functions, challenges and recommendations. Nat. Rev. Mol. Cell Biol., 2023, 24: 430-447

[9]

Chen L-L. Linking long noncoding RNA localization and function. Trends Biochem. Sci., 2016, 41: 761-772

[10]

Wong C-M, Tsang FH-C, Ng IO-L. Non-coding RNAs in hepatocellular carcinoma: molecular functions and pathological implications. Nat. Rev. Gastroenterol. Hepatol., 2018, 15: 137-151

[11]

Guo C-J, Xu G, Chen L-L. Mechanisms of long noncoding RNA nuclear retention. Trends Biochem. Sci., 2020, 45: 947-960

[12]

Sun Q, Hao Q, Prasanth KV. Nuclear long noncoding RNAs: key regulators of gene expression. Trends Genet., 2018, 34: 142-157

[13]

Yao Z-T et al. New insights into the interplay between long non-coding RNAs and RNA-binding proteins in cancer. Cancer Commun. (Lond.), 2022, 42: 117-140

[14]

Li L et al. Multidimensional crosstalk between RNA-binding proteins and noncoding RNAs in cancer biology. Semin. Cancer Biol., 2021, 75: 84-96

[15]

Rinn JL et al. Functional demarcation of active and silent chromatin domains in human HOX loci by noncoding RNAs. Cell, 2007, 129: 1311-1323

[16]

Liu SJ, Dang HX, Lim DA, Feng FY, Maher CA. Long noncoding RNAs in cancer metastasis. Nat. Rev. Cancer, 2021, 21: 446-460

[17]

Loewen G, Jayawickramarajah J, Zhuo Y, Shan B. Functions of lncRNA HOTAIR in lung cancer. J. Hematol. Oncol., 2014, 7: 90

[18]

Yu F, Chen B, Dong P, Zheng J. HOTAIR epigenetically modulates PTEN Expression via MicroRNA-29b: a novel mechanism in regulation of liver fibrosis. Mol. Ther., 2017, 25: 205-217

[19]

Wang J et al. Long non-coding RNA HOTAIR in central nervous system disorders: new insights in pathogenesis, diagnosis, and therapeutic potential. Front. Mol. Neurosci., 2022, 15: 949095

[20]

Gupta RA et al. Long non-coding RNA HOTAIR reprograms chromatin state to promote cancer metastasis. Nature, 2010, 464: 1071-1076

[21]

Tsai M-C et al. Long noncoding RNA as modular scaffold of histone modification complexes. Science, 2010, 329: 689-693

[22]

Zhang A et al. LncRNA HOTAIR enhances the androgen-receptor-mediated transcriptional program and drives castration-resistant prostate cancer. Cell Rep., 2015, 13: 209-221

[23]

Wasson CW et al. Long non-coding RNA HOTAIR drives EZH2-dependent myofibroblast activation in systemic sclerosis through miRNA 34a-dependent activation of NOTCH. Ann. Rheum. Dis., 2020, 79: 507-517

[24]

Heubach J et al. The long noncoding RNA HOTAIR has tissue and cell type-dependent effects on HOX gene expression and phenotype of urothelial cancer cells. Mol. Cancer, 2015, 14

[25]

Zhan S et al. lncRNA HOTAIR upregulates autophagy to promote apoptosis and senescence of nucleus pulposus cells. J. Cell Physiol., 2020, 235: 2195-2208

[26]

Xu D, Sun L. HOTAIR underlies the region-specific development of adipose tissue. Nat. Rev. Endocrinol., 2022, 18: 663-664

[27]

Li L et al. Targeted disruption of Hotair leads to homeotic transformation and gene derepression. Cell Rep., 2013, 5: 3-12

[28]

Kalwa M et al. The lncRNA HOTAIR impacts on mesenchymal stem cells via triple helix formation. Nucleic Acids Res., 2016, 44: 10631-10643

[29]

Shen JJ et al. LncRNA HOTAIR inhibited osteogenic differentiation of BMSCs by regulating Wnt/β-catenin pathway. Eur. Rev. Med. Pharm. Sci., 2019, 23: 7232-7246

[30]

Wang W, Li T, Feng S. Knockdown of long non-coding RNA HOTAIR promotes bone marrow mesenchymal stem cell differentiation by sponging microRNA miR-378g that inhibits nicotinamide N-methyltransferase. Bioengineered, 2021, 12: 12482-12497

[31]

Wei B, Wei W, Zhao B, Guo X, Liu S. Long non-coding RNA HOTAIR inhibits miR-17-5p to regulate osteogenic differentiation and proliferation in non-traumatic osteonecrosis of femoral head. PLoS One, 2017, 12: e0169097

[32]

Xu S-Y, Shi P, Zhou R-M. Post-menopausal oestrogen deficiency induces osteoblast apoptosis via regulating HOTAIR/miRNA-138 signalling and suppressing TIMP1 expression. J. Cell Mol. Med, 2021, 25: 4572-4582

[33]

Amândio AR, Necsulea A, Joye E, Mascrez B, Duboule D. Hotair is dispensible for mouse development. PLoS Genet., 2016, 12: e1006232

[34]

Zhou Y, Wang Y, Lin M, Wu D, Zhao M. LncRNA HOTAIR promotes proliferation and inhibits apoptosis by sponging miR-214-3p in HPV16 positive cervical cancer cells. Cancer Cell Int., 2021, 21

[35]

Mirzadeh Azad F, Polignano IL, Proserpio V, Oliviero S. Long noncoding RNAs in human stemness and differentiation. Trends Cell Biol., 2021, 31: 542-555

[36]

Flynn RA, Chang HY. Long noncoding RNAs in cell-fate programming and reprogramming. Cell Stem Cell, 2014, 14: 752-761

[37]

Qu X, Alsager S, Zhuo Y, Shan B. HOX transcript antisense RNA (HOTAIR) in cancer. Cancer Lett., 2019, 454: 90-97

[38]

Carlevaro-Fita J, Johnson R. Global positioning system: understanding long noncoding RNAs through subcellular localization. Mol. Cell, 2019, 73: 869-883

[39]

Bridges MC, Daulagala AC, Kourtidis A. LNCcation: lncRNA localization and function. J. Cell Biol., 2021, 220: e202009045

[40]

Yao R-W, Wang Y, Chen L-L. Cellular functions of long noncoding RNAs. Nat. Cell Biol., 2019, 21: 542-551

[41]

Long Y, Wang X, Youmans DT, Cech TR. How do lncRNAs regulate transcription? Sci. Adv., 2017, 3: eaao2110

[42]

Yoon J-H et al. Scaffold function of long non-coding RNA HOTAIR in protein ubiquitination. Nat. Commun., 2013, 4

[43]

Erdos E et al. Unique role for lncRNA HOTAIR in defining depot-specific gene expression patterns in human adipose-derived stem cells. Genes Dev., 2022, 36: 566-581

[44]

Cantile M, Di Bonito M, Tracey De Bellis M, Botti G. Functional interaction among lncRNA HOTAIR and MicroRNAs in cancer and other human diseases. Cancers (Basel), 2021, 13: 570

[45]

Liu C, Shang Z, Ma Y, Ma J, Song J. HOTAIR/miR-214-3p/FLOT1 axis plays an essential role in the proliferation, migration, and invasion of hepatocellular carcinoma. Int. J. Clin. Exp. Pathol., 2019, 12: 50-63

[46]

Wang X et al. miR-214 targets ATF4 to inhibit bone formation. Nat. Med., 2013, 19: 93-100

[47]

Hentze MW, Castello A, Schwarzl T, Preiss T. A brave new world of RNA-binding proteins. Nat. Rev. Mol. Cell Biol., 2018, 19: 327-341

[48]

Corley M, Burns MC, Yeo GW. How RNA-binding proteins interact with RNA: molecules and mechanisms. Mol. Cell, 2020, 78: 9-29

[49]

Seufert L, Benzing T, Ignarski M, Müller R-U. RNA-binding proteins and their role in kidney disease. Nat. Rev. Nephrol., 2022, 18: 153-170

[50]

Wu X, Xu L. The RNA-binding protein HuR in human cancer: a friend or foe? Adv. Drug Deliv. Rev., 2022, 184: 114179

[51]

García-Mauriño SM et al. RNA binding protein regulation and cross-talk in the control of AU-rich mRNA fate. Front. Mol. Biosci., 2017, 4: 71

[52]

Zhang W, Vreeland AC, Noy N. RNA-binding protein HuR regulates nuclear import of protein. J. Cell Sci., 2016, 129: 4025-4033

[53]

Siang DTC et al. The RNA-binding protein HuR is a negative regulator in adipogenesis. Nat. Commun., 2020, 11

[54]

Chen G et al. Circular RNA circStag1 promotes bone regeneration by interacting with HuR. Bone Res, 2022, 10: 32

[55]

Yu D, Zhang C, Gui J. RNA-binding protein HuR promotes bladder cancer progression by competitively binding to the long noncoding HOTAIR with miR-1. Onco Targets Ther., 2017, 10: 2609-2619

[56]

Xu C-Z et al. A feed-forward regulatory loop between HuR and the long noncoding RNA HOTAIR promotes head and neck squamous cell carcinoma progression and metastasis. Cell Physiol. Biochem., 2016, 40: 1039-1051

[57]

Li Y, Miao H, Wei W, Tian J, Chen J. Inhibitory effect of calycosin on breast cancer cell progression through downregulating lncRNA HOTAIR and downstream targets: HuR and IGF2BP1. Acta Biochim. Biophys. Sin. (Shanghai), 2022, 55: 225-236

[58]

Garg P, Strigini M, Peurière L, Vico L, Iandolo D. The skeletal cellular and molecular underpinning of the murine hindlimb unloading model. Front. Physiol., 2021, 12: 749464

[59]

Xie W-Q et al. Mouse models of sarcopenia: classification and evaluation. J. Cachexia Sarcopenia Muscle, 2021, 12: 538-554

[60]

Komori T. Animal models for osteoporosis. Eur. J. Pharm., 2015, 759: 287-294

[61]

He S, Liu S, Zhu H. The sequence, structure and evolutionary features of HOTAIR in mammals. BMC Evol. Biol., 2011, 11: 102

[62]

Bloomfield SA, Martinez DA, Boudreaux RD, Mantri AV. Microgravity stress: bone and connective tissue. Compr. Physiol., 2016, 6: 645-686

[63]

Sun W et al. The mechanosensitive Piezo1 channel is required for bone formation. Elife, 2019, 8: e47454

[64]

Liu C et al. The mechanosensitive lncRNA Neat1 promotes osteoblast function through paraspeckle-dependent Smurf1 mRNA retention. Bone Res., 2022, 10: 18

[65]

Zhao Y et al. 3’ untranslated region of Ckip-1 inhibits cardiac hypertrophy independently of its cognate protein. Eur. Heart J., 2021, 42: 3786-3799

Funding

National Natural Science Foundation of China (National Science Foundation of China)(81830061)

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