Literature DB >> 27159393

Proteolytic activation defines distinct lymphangiogenic mechanisms for VEGFC and VEGFD.

Hung M Bui, David Enis, Marius R Robciuc, Harri J Nurmi, Jennifer Cohen, Mei Chen, Yiqing Yang, Veerpal Dhillon, Kathy Johnson, Hong Zhang, Robert Kirkpatrick, Elizabeth Traxler, Andrey Anisimov, Kari Alitalo, Mark L Kahn.   

Abstract

Lymphangiogenesis is supported by 2 homologous VEGFR3 ligands, VEGFC and VEGFD. VEGFC is required for lymphatic development, while VEGFD is not. VEGFC and VEGFD are proteolytically cleaved after cell secretion in vitro, and recent studies have implicated the protease a disintegrin and metalloproteinase with thrombospondin motifs 3 (ADAMTS3) and the secreted factor collagen and calcium binding EGF domains 1 (CCBE1) in this process. It is not well understood how ligand proteolysis is controlled at the molecular level or how this process regulates lymphangiogenesis, because these complex molecular interactions have been difficult to follow ex vivo and test in vivo. Here, we have developed and used biochemical and cellular tools to demonstrate that an ADAMTS3-CCBE1 complex can form independently of VEGFR3 and is required to convert VEGFC, but not VEGFD, into an active ligand. Consistent with these ex vivo findings, mouse genetic studies revealed that ADAMTS3 is required for lymphatic development in a manner that is identical to the requirement of VEGFC and CCBE1 for lymphatic development. Moreover, CCBE1 was required for in vivo lymphangiogenesis stimulated by VEGFC but not VEGFD. Together, these studies reveal that lymphangiogenesis is regulated by two distinct proteolytic mechanisms of ligand activation: one in which VEGFC activation by ADAMTS3 and CCBE1 spatially and temporally patterns developing lymphatics, and one in which VEGFD activation by a distinct proteolytic mechanism may be stimulated during inflammatory lymphatic growth.

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Year:  2016        PMID: 27159393      PMCID: PMC4887177          DOI: 10.1172/JCI83967

Source DB:  PubMed          Journal:  J Clin Invest        ISSN: 0021-9738            Impact factor:   14.808


  47 in total

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Authors:  L Bylund; S Kytölä; W-O Lui; C Larsson; G Weber
Journal:  Cytogenet Genome Res       Date:  2004       Impact factor: 1.636

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Review 4.  Dendritic-cell trafficking to lymph nodes through lymphatic vessels.

Authors:  Gwendalyn J Randolph; Veronique Angeli; Melody A Swartz
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5.  Functional Dissection of the CCBE1 Protein: A Crucial Requirement for the Collagen Repeat Domain.

Authors:  M Guy Roukens; Josi Peterson-Maduro; Yvonne Padberg; Michael Jeltsch; Veli-Matti Leppänen; Frank L Bos; Kari Alitalo; Stefan Schulte-Merker; Dörte Schulte
Journal:  Circ Res       Date:  2015-03-26       Impact factor: 17.367

6.  Adenoviral expression of vascular endothelial growth factor-C induces lymphangiogenesis in the skin.

Authors:  B Enholm; T Karpanen; M Jeltsch; H Kubo; F Stenback; R Prevo; D G Jackson; S Yla-Herttuala; K Alitalo
Journal:  Circ Res       Date:  2001-03-30       Impact factor: 17.367

7.  Ccbe1 regulates Vegfc-mediated induction of Vegfr3 signaling during embryonic lymphangiogenesis.

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Journal:  Development       Date:  2014-02-12       Impact factor: 6.868

8.  Activated forms of VEGF-C and VEGF-D provide improved vascular function in skeletal muscle.

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Journal:  Circ Res       Date:  2009-05-14       Impact factor: 17.367

9.  Regulation of procollagen amino-propeptide processing during mouse embryogenesis by specialization of homologous ADAMTS proteases: insights on collagen biosynthesis and dermatosparaxis.

Authors:  Carine Le Goff; Robert P T Somerville; Frederic Kesteloot; Kimerly Powell; David E Birk; Alain C Colige; Suneel S Apte
Journal:  Development       Date:  2006-04       Impact factor: 6.868

10.  A novel multistep mechanism for initial lymphangiogenesis in mouse embryos based on ultramicroscopy.

Authors:  René Hägerling; Cathrin Pollmann; Martin Andreas; Christian Schmidt; Harri Nurmi; Ralf H Adams; Kari Alitalo; Volker Andresen; Stefan Schulte-Merker; Friedemann Kiefer
Journal:  EMBO J       Date:  2013-01-08       Impact factor: 11.598

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Authors:  Michael Potente; Taija Mäkinen
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2.  Hemostasis stimulates lymphangiogenesis through release and activation of VEGFC.

Authors:  Lillian Lim; Hung Bui; Olivia Farrelly; Jisheng Yang; Li Li; David Enis; Wanshu Ma; Mei Chen; Guillermo Oliver; John D Welsh; Mark L Kahn
Journal:  Blood       Date:  2019-11-14       Impact factor: 22.113

Review 3.  The Lymphatic Vasculature in the 21st Century: Novel Functional Roles in Homeostasis and Disease.

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4.  Lymphatic Proliferation Ameliorates Pulmonary Fibrosis after Lung Injury.

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Review 5.  Intestinal lymphatic vasculature: structure, mechanisms and functions.

Authors:  Jeremiah Bernier-Latmani; Tatiana V Petrova
Journal:  Nat Rev Gastroenterol Hepatol       Date:  2017-06-28       Impact factor: 46.802

Review 6.  Lymphatic Vessel Network Structure and Physiology.

Authors:  Jerome W Breslin; Ying Yang; Joshua P Scallan; Richard S Sweat; Shaquria P Adderley; Walter L Murfee
Journal:  Compr Physiol       Date:  2018-12-13       Impact factor: 9.090

7.  Gut microbiota regulates lacteal integrity by inducing VEGF-C in intestinal villus macrophages.

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8.  Alternative Progenitor Cells Compensate to Rebuild the Coronary Vasculature in Elabela- and Apj-Deficient Hearts.

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Review 9.  Potential lymphangiogenesis therapies: Learning from current antiangiogenesis therapies-A review.

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Journal:  Med Res Rev       Date:  2018-03-12       Impact factor: 12.944

Review 10.  Biochemical and mechanical signals in the lymphatic vasculature.

Authors:  Xin Geng; Yen-Chun Ho; R Sathish Srinivasan
Journal:  Cell Mol Life Sci       Date:  2021-07-08       Impact factor: 9.261

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