[1]吴玉璋,刘全磊,宋云飞,等.脑淋巴系统的研究进展[J].中国临床神经外科杂志,2022,27(07):607-609.[doi:10.13798/j.issn.1009-153X.2022.07.028]
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脑淋巴系统的研究进展()
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《中国临床神经外科杂志》[ISSN:1009-153X/CN:42-1603/TN]

卷:
27
期数:
2022年07期
页码:
607-609
栏目:
综述
出版日期:
2022-07-31

文章信息/Info

文章编号:
1009-153X(2022)07-0607-03
作者:
吴玉璋刘全磊宋云飞综述杨新宇审校
300052 天津,天津医科大学总医院神经外科(吴玉璋、刘全磊、宋云飞、杨新宇)
关键词:
脑淋巴系统硬脑膜淋巴管胶质淋巴系统脑脊液脑间质液
分类号:
R329.4
DOI:
10.13798/j.issn.1009-153X.2022.07.028
文献标志码:
A

参考文献/References:

[1]Louveau A, Smirnov I, Keyes TJ, et al. Structural and functional features of central nervous system lymphatic vessels [J]. Nature, 2016, 523(7560): 337-341.
[2]Weller RO, Djuanda E, Yow HY, et al. Lymphatic drainage of the brain and the pathophysiology of neurological disease [J]. Acta Neuropathol, 2009, 117(1): 1-14.
[3]Pollay M. The function and structure of the cerebrospinal fluid outflow system [J]. Cerebrospinal Fluid Res, 2010, 7:9.
[4]Louveau A, Herz J, Alme MN, et al. CNS lymphatic drainageand neuroinflammation are regulated by meningeal lymphatic vasculature [J]. Nat Neurosci, 2018, 21(10): 1380-1391.
[5]Aspelund A, Antila S, Proulx ST, et al. A dural lymphatic vascular system that drains brain interstitial fluid and macromolecules [J]. J Exp Med, 2015, 212(7): 991-999.
[6]Ahn JH, Cho H, Kim JH, et al. Meningeal lymphatic vessels at the skull base drain cerebrospinal fluid [J]. Nature, 2019, 572(7767): 62-66.
[7]Ma Q, Ineichen BV, Detmar M, et al. Outflow of cerebrospinal fluid is predominantly through lymphatic vessels and is reduced in aged mice [J]. Nat Commun, 2017, 8(1): 1434.
[8]Boulton M, Flessner M, Armstrong D, et al. Contribution of extracranial lymphatics and arachnoid villi to the clearance of a CSF tracer in the rat [J]. Am J Physiol, 1999, 276(3): R818-R823.
[9]Engelhardt B, Carare RO, Bechmann I, et al. Vascular, glial, and lymphatic immune gateways of the central nervous system [J]. Acta Neuropathol, 2016, 132(3): 317-338.
[10]Izen RM, Yamazaki T, Nishinaka-Arai Y, et al. Postnatal development of lymphatic vasculature in the brain meninges [J]. Dev Dyn, 2018, 247(5): 741-753.
[11]Antila S, Karaman S, Nurmi H, et al. Development and plasticity of meningeal lymphatic vessels [J]. J Exp Med, 2017, 214(12): 3645-3667.
[12]Visanji NP, Lang AE, Munoz DG. Lymphatic vasculature in human dural superior sagittal sinus: implications for neuro-degenerative proteinopathies [J]. Neurosci Lett, 2018, 665: 18-21.
[13]Da Mesquita S, Fu Z, Kipnis J. The meningeal lymphatic system: a new player in neurophysiology [J]. Neuron, 2018, 100(2): 375-388.
[14]Bower NI, Koltowska K, Pichol-Thievend C, et al. Mural lymphatic endothelial cells regulate meningeal angiogenesis in the zebrafish [J]. Nat Neurosci, 2017, 20(6): 774-783.
[15]Carare RO, Bernardes-Silva M, Newman TA, et al. Solutes, but not cells, drain from the brain parenchyma along basement membranes of capillaries and arteries: significance for cerebral amyloid angiopathy and neuroimmunology [J]. Neuropathol Appl Neurobiol, 2008, 34(2): 131-144.
[16]Iliff JJ, Wang M, Liao Y, et al. A paravascular pathway facilitates CSF flow through the brain parenchyma and the clearance of interstitial solutes, including amyloid β [J]. Sci Transl Med, 2012, 4(147): 147ra111.
[17]Smith AJ, Yao X, Dix JA, et al. Test of the 'glymphatic' hypothesis demonstrates diffusive and aquaporin-4-independent solute transport in rodent brain parenchyma [J]. Elife, 2017, 6: e27679.
[18]Goodman JR, Iliff JJ. Vasomotor influences on glymphatic-lymphatic coupling and solute trafficking in the central nervous system [J]. J Cereb Blood Flow Metab, 2020, 40(8): 1724-1734.
[19]Bartholom?us I, Kawakami N, Odoardi F, et al. Effector T cell interactions with meningeal vascular structures in nascent autoimmune CNS lesions [J]. Nature, 2009, 462(7269): 94-98.
[20]Kipnis J. Multifaceted interactions between adaptive immunity and the central nervous system [J]. Science, 2016, 353(6301): 766-771.
[21]Filiano AJ, Xu Y, Tustison NJ, et al. Unexpected role of interferon-γ in regulating neuronal connectivity and social behaviour [J]. Nature, 2016, 535(7612): 425-429.
[22]Brombacher TM, Nono JK, De Gouveia KS, et al. IL-13-mediated regulation of learning and memory [J]. J Immunol, 2017, 198(7): 2681-2688.
[23]Sautès-Fridman C, Lawand M, Giraldo NA, et al. Tertiary lymphoid structures in cancers: prognostic value, regulation, and manipulation for therapeutic intervention [J]. Front Immunol, 2016, 7: 407.
[24]Harling-Berg CJ, Park TJ, Knopf PM. Role of the cervical lymphatics in the Th2-type hierarchy of CNS immune regulation [J]. J Neuroimmunol, 1999, 101(2): 111-127.
[25]Walsh JT, Zheng J, Smirnov I, et al. Regulatory T cells in central nervous system injury: a double-edged sword [J]. J Immunol, 2014, 193(10): 5013-5022.
[26]Galea I, Bechmann I, Perry VH. What is immune privilege (not) [J]. Trends Immunol, 2007, 28(1): 12-18.
[27]Huang Y, Mucke L. Alzheimer mechanisms and therapeutic strategies [J]. Cell, 2012, 148(6): 1204-1222.
[28]Goodman JR, Adham ZO, Woltjer RL, et al. Characterization of dural sinus-associated lymphatic vasculature in human Alzheimer's dementia subjects [J]. Brain Behav Immun, 2018, 73: 34-40.
[29]Preston JE. Ageing choroid plexus-cerebrospinal fluid system [J]. Microsc Res Tech, 2001, 52(1): 31-37.
[30]Okamoto Y, Yamamoto T, Kalaria RN, et al. Cerebral hypo-perfusion accelerates cerebral amyloid angiopathy and promotes cortical microinfarcts [J]. Acta Neuropathol, 2012, 123(3): 381-394.
[31]Mitsdoerffer M, Peters A. Tertiary lymphoid organs in central nervous system autoimmunity [J]. Front Immunol, 2016, 7: 451.

备注/Memo

备注/Memo:
(2020-07-10收稿,2020-08-28修回)
通讯作者:杨新宇,E-mail:yangxinyu@tmu.edu.cn
更新日期/Last Update: 2022-08-31