基于小分子筛选的嗅上皮类器官培养体系的建立
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国家自然科学基金(31970820)


Development of an olfactory epithelial organoid culture system based on small molecule screening
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    摘要:

    嗅上皮接收和传导气味信号是嗅觉系统的重要组成部分。嗅上皮的损伤在通常情况下可自发恢复,但特定疾病或衰老造成的嗅上皮损伤会引起嗅觉功能减退和嗅觉障碍。嗅上皮主要由基底细胞、支持细胞以及嗅感觉神经元组成。为了在体外建立包含多种细胞类型的嗅上皮类器官,本研究采用3D细胞培养技术,通过筛选小分子药物,构建了包含多种细胞类型的嗅上皮类器官模型,包含水平基底样细胞、球形基底样细胞、支持样细胞和嗅感觉神经元样细胞多种细胞类型。类器官培养体系中多种生长因子和小分子化合物在细胞增殖速度、细胞组成以及不同细胞类型标志基因的表达水平等方面对类器官产生影响。Wnt信号通路激活剂CHIR-99021能够提高嗅上皮类器官的成克隆率和增殖速度且有利于提高嗅上皮类器官中嗅感觉神经元样细胞标志基因的表达水平;培养体系的任一因子均能提高类器官中c-Kit阳性的球形基底样细胞克隆比例;表皮生长因子(epidermal growth factor, EGF)和维生素C均有利于类器官中水平基底样细胞标志基因的表达。本研究建立的嗅上皮类器官系统模拟了嗅上皮干细胞分化产生多种嗅上皮细胞类型的过程,为研究嗅上皮组织损伤再生、嗅觉障碍病理机制和筛选治疗嗅觉障碍的药物提供了研究模型。

    Abstract:

    Olfactory epithelium, which detects and transmits odor signals, is critical for the function of olfactory system. Olfactory epithelium is able to recover spontaneously after injury under normal circumstances, but this ability is dampened in certain diseases or senility, which causes olfactory dysfunction. The olfactory epithelium consists of basal cells, sustentacular cells and olfactory sensory neurons. In order to develop an olfactory epithelial organoid containing multiple olfactory cell types in vitro, we used three-dimensional culture model and small molecules screening. This organoid system consists of horizontal basal-like cells, globose basal-like cells, sustentacular-like cells and olfactory sensory neurons-like cells. Through statistical analysis of clone diameter, immunofluorescence staining and qPCR detection of the expression level of related marker genes. We identified a series of growth factors and small molecule compounds that affected the proliferation, composition and gene expression of the organoids. CHIR-99021, an activator of Wnt signaling pathway, increased the colony formation and proliferation rate of olfactory epithelial organoids and the expression level of marker genes of olfactory sensory neurons-like cells. In addition, each factor in the culture system increased the proportion of c-Kit-positive globose basal-like cell colonies in organoids. Moreover, EGF and vitamin C were both beneficial to the expression of horizontal basal-like cell marker genes in organoids. The established olfactory epithelial organoid system mimicked the process of olfactory epithelial stem cells differentiating into various olfactory epithelial cell types, thus providing a research model for studying olfactory epithelial tissue regeneration, the pathological mechanism of olfactory dysfunction and drug screening for olfactory dysfunction treatment.

    参考文献
    [1] Zaghloul H, Pallayova M, Al-Nuaimi O, Hovis KR, Taheri S. Association between diabetes mellitus and olfactory dysfunction:current perspectives and future directions[J]. Diabetic Medicine, 2018, 35(1):41-52.
    [2] DOTY RL. Olfactory dysfunction in parkinson disease[J]. Nature Reviews Neurology, 2012, 8(6):329-339.
    [3] FIRESTEIN S. How the olfactory system makes sense of scents[J]. Nature, 2001, 413(6852):211-218.
    [4] PETERSON J, LIN B, BARRIOS-CAMACHO CM, HERRICK DB, HOLBROOK EH, JANG W, COLEMAN JH, SCHWOB JE. Activating a reserve neural stem cell population in vitro enables engraftment and multipotency after transplantation[J]. Stem Cell Reports, 2019, 12(4):680-695.
    [5] REN WW, WANG L, ZHANG XJ, FENG XY, ZHUANG LJ, JIANG N, XU R, LI XW, WANG P, SUN XC, YU HM, YU YQ. Expansion of murine and human olfactory epithelium/mucosa colonies and generation of mature olfactory sensory neurons under chemically defined conditions[J]. Theranostics, 2021, 11(2):684-699.
    [6] SCHNITTKE N, HERRICK DB, LIN B, PETERSON J, COLEMAN JH, PACKARD AI, JANG W, SCHWOB JE. Transcription factor p63 controls the reserve status but not the stemness of horizontal basal cells in the olfactory epithelium[J]. Proceedings of the National Academy of Sciences of the United States of America, 2015, 112(36):E5068-E5077.
    [7] SCHWOB JE, JANG W, HOLBROOK EH, LIN B, HERRICK DB, PETERSON JN, HEWITT COLEMAN J. Stem and progenitor cells of the mammalian olfactory epithelium:Taking poietic license[J]. The Journal of Comparative Neurology, 2017, 525(4):1034-1054.
    [8] WANG YZ, YAMAGAMI T, GAN QN, WANG YP, ZHAO TY, HAMAD S, LOTT P, SCHNITTKE N, SCHWOB JE, ZHOU CJ. Canonical Wnt signaling promotes the proliferation and neurogenesis of peripheral olfactory stem cells during postnatal development and adult regeneration[J]. Journal of Cell Science, 2011, 124(Pt 9):1553-1563.
    [9] CHEN MF, TIAN SH, YANG XL, LANE AP, REED RR, LIU HJ. Wnt-responsive Lgr5⁺ globose basal cells function as multipotent olfactory epithelium progenitor cells[J]. The Journal of Neuroscience:the Official Journal of the Society for Neuroscience, 2014, 34(24):8268-8276.
    [10] ARTAVANIS-TSAKONAS S, MUSKAVITCH MAT. Notch:The past, the present, and the future[J]. Current Topics in Developmental Biology, 2010, 92:1-29.
    [11] LIN B, COLEMAN JH, PETERSON JN, ZUNITCH MJ, JANG W, HERRICK DB, SCHWOB JE. Injury induces endogenous reprogramming and dedifferentiation of neuronal progenitors to multipotency[J]. Cell Stem Cell, 2017, 21(6):761-774.e5.
    [12] FLETCHER RB, DAS D, GADYE L, STREET KN, BAUDHUIN A, WAGNER A, COLE MB, FLORES Q, CHOI YG, YOSEF N, PURDOM E, DUDOIT S, RISSO D, NGAI J. Deconstructing olfactory stem cell trajectories at single-cell resolution[J]. Cell Stem Cell, 2017, 20(6):817-830.e8.
    [13] DAI Q, DUAN C, REN WW, LI FQ, ZHENG Q, WANG L, LI WY, LU XL, NI WL, ZHANG YP, CHEN Y, WEN TQ, YU YQ, YU HM. Notch signaling regulates Lgr5+ olfactory epithelium progenitor/stem cell turnover and mediates recovery of lesioned olfactory epithelium in mouse model[J]. Stem Cells, 2018, 36(8):1259-1272.
    [14] FAVERO R, HAJRULLA S, BORDIN A, MUCIGNAT-CARETTA C, GAUDIOSO P, SCARPA B, FAVERO L, OTTAVIANO G. Olfactory dysfunction in COVID-19 patients who do not report olfactory symptoms:a pilot study with some suggestions for dentists[J]. International Journal of Environmental Research and Public Health, 2022, 19(3):1036.
    [15] OTHMAN BA, MAULUD SQ, JALAL PJ, ABDULKAREEM SM, AHMED JQ, DHAWAN M, PRIYANKA, CHOUDHARY OP. Olfactory dysfunction as a post-infectious symptom of SARS-CoV-2 infection[J]. Annals of Medicine and Surgery, 2022, 75:103352.
    [16] NETA FI, FERNANDES ACL, VALE AJM, PINHEIRO FI, COBUCCI RN, de AZEVEDO EP, GUZEN FP. Pathophysiology and possible treatments for olfactory-gustatory disorders in patients affected by COVID-19[J]. Current Research in Pharmacology and Drug Discovery, 2021, 2:100035.
    [17] SEO BS, LEE HJ, MO JH, LEE CH, RHEE CS, KIM JW. Treatment of postviral olfactory loss with glucocorticoids, Ginkgo biloba, and mometasone nasal spray[J]. Archives of Otolaryngology——Head & Neck Surgery, 2009, 135(10):1000-1004.
    [18] LIU JF, PINHEIRO-NETO CD, ZHAO JH, CHEN ZY, WANG YB. A novel surgical treatment for long lasting unilateral peripheral parosmia:olfactory cleft blocking technique[J]. Auris Nasus Larynx, 2021, 48(6):1209-1213.
    [19] CHEN XY, FANG HS, SCHWOB JE. Multipotency of purified, transplanted globose basal cells in olfactory epithelium[J]. The Journal of Comparative Neurology, 2004, 469(4):457-474.
    [20] GOLDSTEIN BJ, GOSS GM, CHOI R, SAUR D, SEIDLER B, HARE JM, CHAUDHARI N. Contribution of Polycomb group proteins to olfactory basal stem cell self-renewal in a novel c-KIT+ culture model and in vivo[J]. Development:Cambridge, England, 2016, 143(23):4394-4404.
    [21] KIM J, KOO BK, KNOBLICH JA. Human organoids:Model systems for human biology and medicine[J]. Nature Reviews Molecular Cell Biology, 2020, 21(10):571-584.
    [22] SCHWOB JE, SZUMOWSKI KE, STASKY AA. Olfactory sensory neurons are trophically dependent on the olfactory bulb for their prolonged survival[J]. The Journal of Neuroscience:the Official Journal of the Society for Neuroscience, 1992, 12(10):3896-3919.
    [23] CHUAH MI, TEAGUE R. Basic fibroblast growth factor in the primary olfactory pathway:mitogenic effect on ensheathing cells[J]. Neuroscience, 1999, 88(4):1043-1050.
    [24] BARKER N, van ES JH, KUIPERS J, KUJALA P, van DEN BORN M, COZIJNSEN M, HAEGEBARTH A, KORVING J, BEGTHEL H, PETERS PJ, CLEVERS H. Ident??ど???????扯牦?孳??嵭????佬?????偳?呡??删?卮剴???啩?乥??坮???婯??乮?????坡佲乫??匠婧???娠?佧啲‵?坊???啎??呵呲???′??丷?圠儴?????丶‵?娺?‰堰唳???‰倷刮????乛′???婍??义???夠??娠??义??坍????乁??????卉低丠????????剗?传博?摒敉????吠佈剁刬???????乎???????畁浌慍湉?灅汒甠牒楄瀬漠瑈敁湗瑒?獌瑙敃浚?捍敊氬氠?摏敎牅楓瘠敁摒?渠敌畅牉慎氠?捓攬氠汚獅?慇渠摈?戮爠慁椠湲?潢牵杳慴渠潡楮摤猠?物敧癨攭慴汨?卯?剧卨??潴嘠???渠敲略牰潯瑲牴潩灮楧猠浡?灤爠散摨潡浲楡湣慴瑥敲獩?楡湴?捯桮漠牳潹楳摴?灭氠敦硯畲猠?敨灥椠瑷桨敯汬楥甠浭孯?嵳???敲污汩?卛瑊敝洮??敡汴汵??㈠ぎ?ふ????????????????攠??(1):133-140.
    [26] van-KEYMEULEN A, ROCHA AS, OUSSET M, BECK B, BOUVENCOURT G, ROCK J, SHARMA N, DEKONINCK S, BLANPAIN C. Distinct stem cells contribute to mammary gland development and maintenance[J]. Nature, 2011, 479(7372):189-193.
    [27] TANG AT, BUCHHOLZ DW, SZIGETY KM, IMBHIAKA B, GAO SQ, FRANKFURTER M, WANG M, YANG JS, HEWINS P, MERICKO-ISHIZUKA P, LEU NA, STERLING S, MONREAL IA, SAHLER J, AUGUST A, ZHU XM, JURADO KA, XU MG, MORRISEY EE, MILLAR SE, AGUILAR HC, KAHN ML. SARS-CoV-2 infection of olfactory epithelial cells and neurons drives acute lung injury and lethal COVID-19 in mice[J]. BioRxiv:the Preprint Server for Biology, 2021. doi:10.1101/2021.12.04.471245.
    [28] MARIN C, VILAS D, LANGDON C, ALOBID I, LÓPEZ-CHACÓN M, HAEHNER A, HUMMEL T, MULLOL J. Olfactory dysfunction in neurodegenerative diseases[J]. Current Allergy and Asthma Reports, 2018, 18(8):42.
    [29] HAWKES C. Olfaction in neurodegenerative disorder[J]. Advances in Oto-Rhino-Laryngology, 2006, 63:133-151.
    [30] COSTANZO RM, YAGI S. Olfactory epithelial transplantation:possible mechanism for restoration of smell[J]. Current Opinion in Otolaryngology & Head and Neck Surgery, 2011, 19(1):54-57.
    [31] URATA S, MARUYAMA J, KISHIMOTO-URATA M, SATTLER RA, COOK R, LIN NT, YAMASOBA T, MAKISHIMA T, PAESSLER S. Regeneration profiles of olfactory epithelium after SARS-CoV-2 infection in golden Syrian hamsters[J]. ACS Chemical Neuroscience, 2021, 12(4):589-595.
    [32] PACKARD A, GIEL-MOLONEY M, LEITER A, SCHWOB JE. Progenitor cell capacity of NeuroD1-expressing globose basal cells in the mouse olfactory epithelium[J]. The Journal of Comparative Neurology, 2011, 519(17):3
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汪涵,邓鲤凌,秦璇和. 基于小分子筛选的嗅上皮类器官培养体系的建立[J]. 生物工程学报, 2023, 39(1): 318-336

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  • 收稿日期:2022-03-21
  • 最后修改日期:2022-06-27
  • 在线发布日期: 2023-02-01
  • 出版日期: 2023-01-25
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