» Articles » PMID: 34440831

Hyaluronan and Its Receptors: Key Mediators of Immune Cell Entry and Trafficking in the Lymphatic System

Overview
Journal Cells
Publisher MDPI
Date 2021 Aug 27
PMID 34440831
Citations 24
Authors
Affiliations
Soon will be listed here.
Abstract

Entry to the afferent lymphatics marks the first committed step for immune cell migration from tissues to draining lymph nodes both for the generation of immune responses and for timely resolution of tissue inflammation. This critical process occurs primarily at specialised discontinuous junctions in initial lymphatic capillaries, directed by chemokines released from lymphatic endothelium and orchestrated by adhesion between lymphatic receptors and their immune cell ligands. Prominent amongst the latter is the large glycosaminoglycan hyaluronan (HA) that can form a bulky glycocalyx on the surface of certain tissue-migrating leucocytes and whose engagement with its key lymphatic receptor LYVE-1 mediates docking and entry of dendritic cells to afferent lymphatics. Here we outline the latest insights into the molecular mechanisms by which the HA glycocalyx together with LYVE-1 and the related leucocyte receptor CD44 co-operate in immune cell entry, and how the process is facilitated by the unusual character of LYVE-1 • HA-binding interactions. In addition, we describe how pro-inflammatory breakdown products of HA may also contribute to lymphatic entry by transducing signals through LYVE-1 for lymphangiogenesis and increased junctional permeability. Lastly, we outline some future perspectives and highlight the LYVE-1 • HA axis as a potential target for immunotherapy.

Citing Articles

Tumor cell-derived hyaluronan fragments induce endocytosis of S1PR1 to promote lymphangiogenesis through LYVE-1-Src pathway.

Jiang M, Chen D, Xu Z, Liu Y, Yang C, Zhang G J Cancer. 2025; 16(5):1466-1478.

PMID: 39991586 PMC: 11843240. DOI: 10.7150/jca.104309.


High-fidelity and iterative affinity extraction of hyaluronan.

Erxleben D, Rivas F, Smith I, Poddar S, DeAngelis P, Rahbar E Proteoglycan Res. 2024; 2(4):e70008.

PMID: 39650564 PMC: 11623434. DOI: 10.1002/pgr2.70008.


PTX3 is expressed in terminal lymphatics and shapes their organization and function.

Doni A, Sironi M, Del Prete A, Pasqualini F, Valentino S, Cuccovillo I Front Immunol. 2024; 15:1426869.

PMID: 39640269 PMC: 11617523. DOI: 10.3389/fimmu.2024.1426869.


The immune regulatory role of lymphangiogenesis in kidney disease.

Lu X, Ma K, Ren J, Peng H, Wang J, Wang X J Transl Med. 2024; 22(1):1053.

PMID: 39578812 PMC: 11583545. DOI: 10.1186/s12967-024-05859-4.


The impact of hyaluronic acid coating on polyether ether ketone dental implant surface: An in vitro analysis.

Abdulghafor M, Mustafa Amin Z Saudi Dent J. 2024; 36(10):1326-1332.

PMID: 39525932 PMC: 11544272. DOI: 10.1016/j.sdentj.2024.07.012.


References
1.
Bauer J, Rothley M, Schmaus A, Quagliata L, Ehret M, Biskup M . TGFβ counteracts LYVE-1-mediated induction of lymphangiogenesis by small hyaluronan oligosaccharides. J Mol Med (Berl). 2017; 96(2):199-209. DOI: 10.1007/s00109-017-1615-4. View

2.
Louveau A, Herz J, Alme M, Salvador A, Dong M, Viar K . CNS lymphatic drainage and neuroinflammation are regulated by meningeal lymphatic vasculature. Nat Neurosci. 2018; 21(10):1380-1391. PMC: 6214619. DOI: 10.1038/s41593-018-0227-9. View

3.
Stanly T, Fritzsche M, Banerji S, Shrestha D, Schneider F, Eggeling C . The cortical actin network regulates avidity-dependent binding of hyaluronan by the lymphatic vessel endothelial receptor LYVE-1. J Biol Chem. 2020; 295(15):5036-5050. PMC: 7152780. DOI: 10.1074/jbc.RA119.011992. View

4.
West D, Kumar S . The effect of hyaluronate and its oligosaccharides on endothelial cell proliferation and monolayer integrity. Exp Cell Res. 1989; 183(1):179-96. DOI: 10.1016/0014-4827(89)90428-x. View

5.
Davies H, Baranova N, El Amri N, Coche-Guerente L, Verdier C, Bureau L . An integrated assay to probe endothelial glycocalyx-blood cell interactions under flow in mechanically and biochemically well-defined environments. Matrix Biol. 2019; 78-79:47-59. DOI: 10.1016/j.matbio.2018.12.002. View