Literature DB >> 26993803

Vegfr3-CreER (T2) mouse, a new genetic tool for targeting the lymphatic system.

Ines Martinez-Corral1,2, Lukas Stanczuk2,3, Maike Frye2, Maria Helena Ulvmar2, Rodrigo Diéguez-Hurtado1,4, David Olmeda1,5, Taija Makinen2, Sagrario Ortega6.   

Abstract

The lymphatic system is essential in many physiological and pathological processes. Still, much remains to be known about the molecular mechanisms that control its development and function and how to modulate them therapeutically. The study of these mechanisms will benefit from better controlled genetic mouse models targeting specifically lymphatic endothelial cells. Among the genes expressed predominantly in lymphatic endothelium, Vegfr3 was the first one identified and is still considered to be one of the best lymphatic markers and a key regulator of the lymphatic system. Here, we report the generation of a Vegfr3-CreER (T2) knockin mouse by gene targeting in embryonic stem cells. This mouse expresses the tamoxifen-inducible CreER(T2) recombinase under the endogenous transcriptional control of the Vegfr3 gene without altering its physiological expression or regulation. The Vegfr3-CreER (T2) allele drives efficient recombination of floxed sequences upon tamoxifen administration specifically in Vegfr3-expressing cells, both in vitro, in primary lymphatic endothelial cells, and in vivo, at different stages of mouse embryonic development and postnatal life. Thus, our Vegfr3-CreER (T2) mouse constitutes a new powerful genetic tool for lineage tracing analysis and for conditional gene manipulation in the lymphatic endothelium that will contribute to improve our current understanding of this system.

Entities:  

Keywords:  Cre recombinase; Gene targeting; Lymphatic system; VEGF receptor-3

Mesh:

Substances:

Year:  2016        PMID: 26993803     DOI: 10.1007/s10456-016-9505-x

Source DB:  PubMed          Journal:  Angiogenesis        ISSN: 0969-6970            Impact factor:   9.596


  18 in total

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Authors:  Claire E Trincot; Wenjing Xu; Hua Zhang; Molly R Kulikauskas; Thomas G Caranasos; Brian C Jensen; Amélie Sabine; Tatiana V Petrova; Kathleen M Caron
Journal:  Circ Res       Date:  2019-01-04       Impact factor: 17.367

3.  A Second Heart Field-Derived Vasculogenic Niche Contributes to Cardiac Lymphatics.

Authors:  Ghislaine Lioux; Xiaolei Liu; Susana Temiño; Michael Oxendine; Estefanía Ayala; Sagrario Ortega; Robert G Kelly; Guillermo Oliver; Miguel Torres
Journal:  Dev Cell       Date:  2020-01-09       Impact factor: 12.270

Review 4.  Consensus guidelines for the use and interpretation of angiogenesis assays.

Authors:  Patrycja Nowak-Sliwinska; Kari Alitalo; Elizabeth Allen; Andrey Anisimov; Alfred C Aplin; Robert Auerbach; Hellmut G Augustin; David O Bates; Judy R van Beijnum; R Hugh F Bender; Gabriele Bergers; Andreas Bikfalvi; Joyce Bischoff; Barbara C Böck; Peter C Brooks; Federico Bussolino; Bertan Cakir; Peter Carmeliet; Daniel Castranova; Anca M Cimpean; Ondine Cleaver; George Coukos; George E Davis; Michele De Palma; Anna Dimberg; Ruud P M Dings; Valentin Djonov; Andrew C Dudley; Neil P Dufton; Sarah-Maria Fendt; Napoleone Ferrara; Marcus Fruttiger; Dai Fukumura; Bart Ghesquière; Yan Gong; Robert J Griffin; Adrian L Harris; Christopher C W Hughes; Nan W Hultgren; M Luisa Iruela-Arispe; Melita Irving; Rakesh K Jain; Raghu Kalluri; Joanna Kalucka; Robert S Kerbel; Jan Kitajewski; Ingeborg Klaassen; Hynda K Kleinmann; Pieter Koolwijk; Elisabeth Kuczynski; Brenda R Kwak; Koen Marien; Juan M Melero-Martin; Lance L Munn; Roberto F Nicosia; Agnes Noel; Jussi Nurro; Anna-Karin Olsson; Tatiana V Petrova; Kristian Pietras; Roberto Pili; Jeffrey W Pollard; Mark J Post; Paul H A Quax; Gabriel A Rabinovich; Marius Raica; Anna M Randi; Domenico Ribatti; Curzio Ruegg; Reinier O Schlingemann; Stefan Schulte-Merker; Lois E H Smith; Jonathan W Song; Steven A Stacker; Jimmy Stalin; Amber N Stratman; Maureen Van de Velde; Victor W M van Hinsbergh; Peter B Vermeulen; Johannes Waltenberger; Brant M Weinstein; Hong Xin; Bahar Yetkin-Arik; Seppo Yla-Herttuala; Mervin C Yoder; Arjan W Griffioen
Journal:  Angiogenesis       Date:  2018-08       Impact factor: 9.596

5.  A novel podoplanin-GFPCre mouse strain for gene deletion in lymphatic endothelial cells.

Authors:  Hyea Jin Gil; Wanshu Ma; Guillermo Oliver
Journal:  Genesis       Date:  2018-03-30       Impact factor: 2.487

6.  Lymphatic-specific intracellular modulation of receptor tyrosine kinase signaling improves lymphatic growth and function.

Authors:  Raghu P Kataru; Jung Eun Baik; Hyeung Ju Park; Catherine L Ly; Jinyeon Shin; Noa Schwartz; Theresa T Lu; Sagrario Ortega; Babak J Mehrara
Journal:  Sci Signal       Date:  2021-08-10       Impact factor: 8.192

7.  Diphtheria toxin-mediated ablation of lymphatic endothelial cells results in progressive lymphedema.

Authors:  Jason C Gardenier; Geoffrey E Hespe; Raghu P Kataru; Ira L Savetsky; Jeremy S Torrisi; Gabriela D García Nores; Joseph J Dayan; David Chang; Jamie Zampell; Inés Martínez-Corral; Sagrario Ortega; Babak J Mehrara
Journal:  JCI Insight       Date:  2016-09-22

8.  Transcription factor FOXP2 is a flow-induced regulator of collecting lymphatic vessels.

Authors:  Magda N Hernández Vásquez; Maria H Ulvmar; Alejandra González-Loyola; Ioannis Kritikos; Ying Sun; Liqun He; Cornelia Halin; Tatiana V Petrova; Taija Mäkinen
Journal:  EMBO J       Date:  2021-05-02       Impact factor: 11.598

9.  Transient loss of venous integrity during developmental vascular remodeling leads to red blood cell extravasation and clearance by lymphatic vessels.

Authors:  Yang Zhang; Nina Daubel; Simon Stritt; Taija Mäkinen
Journal:  Development       Date:  2018-02-08       Impact factor: 6.868

10.  Heterogeneity in VEGFR3 levels drives lymphatic vessel hyperplasia through cell-autonomous and non-cell-autonomous mechanisms.

Authors:  Yan Zhang; Maria H Ulvmar; Lukas Stanczuk; Ines Martinez-Corral; Maike Frye; Kari Alitalo; Taija Mäkinen
Journal:  Nat Commun       Date:  2018-04-03       Impact factor: 14.919

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