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Connexin-45 is expressed in mouse lymphatic endothelium and required for lymphatic valve function
Michael J. Davis, Jorge A. Castorena-Gonzalez, Min Li, Scott D. Zawieja, Alex M. Simon, Xin Geng, R. Sathish Srinivasan
Michael J. Davis, Jorge A. Castorena-Gonzalez, Min Li, Scott D. Zawieja, Alex M. Simon, Xin Geng, R. Sathish Srinivasan
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Research Article Cell biology Vascular biology

Connexin-45 is expressed in mouse lymphatic endothelium and required for lymphatic valve function

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Abstract

The expression and functional relevance of the gap junction molecule connexin-45 (Cx45; GJC1) in lymphatic endothelium were not previously known. We found that Cx45 was expressed widely in the endothelium of murine lymphatics, in both valve and nonvalve regions. Cell-specific deletion of Cx45, driven by a constitutive Cre line (Lyve1-Cre) or an inducible Cre line (Prox1-CreERT2), compromised the function of lymphatic valves, as assessed by physiological tests (back leak and closure) of isolated, single-valve vessel segments. The defects were comparable to those previously reported for loss of Cx43, and as with Cx43, deletion of Cx45 resulted in shortening or increased asymmetry of lymphatic valve leaflets, providing an explanation for the compromised valve function. In contrast with Cx43, lymphatic endothelial cell–specific (LEC-specific) deletion of Cx45 did not alter the number of valves in mesenteric or dermal lymphatic networks or the expression patterns of the canonical valve-associated proteins PROX1, ITGA9, or CLAUDIN5. Constitutive deletion of Cx45 from LECs resulted in increased backflow of injected tracer in popliteal networks in vivo and compromised the integrity of the LEC permeability barrier in a subset of collecting vessels. These findings provide evidence for an unexpected role of Cx45 in the development and maintenance of lymphatic valves.

Authors

Michael J. Davis, Jorge A. Castorena-Gonzalez, Min Li, Scott D. Zawieja, Alex M. Simon, Xin Geng, R. Sathish Srinivasan

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Figure 4

Back leak tests.

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Back leak tests.
Images of a popliteal lymphatic containing a single val...
Images of a popliteal lymphatic containing a single valve (A) before and (B) after elevation of Pout to 10 cmH2O. Black arrow points to expanded valve sinus. (C–F) Representative examples of back leak tests for valves from (C) WT, (D) Lyve1-Cre Cx45Δ/fl, (E) Prox1-CreERT2 Cx45+/fl, and (F) Prox1-CreERT2 Cx45fl/fl mice. Arrowheads indicate valve closure. Values of back leak (Psn–Pin) at Pout = 10 cmH2O are stated above the traces. (G–L) Summary of back leak measurements as a function of Pout for each of the 6 genotypes. The raw Psn data were binned in 0.5 cmH2O Pout intervals before determining the mean and variance of Psn for each interval. Asterisks in L indicate significant differences (P < 0.05) for Lyve1-Cre Cx45Δ/fl valves compared to their initial (control) values at Pout levels > 5 cmH2O, as determined by a 2-way, repeated measures ANOVA with Tukey’s post hoc tests. None of the other groups had significant increases in Psn. (M) Comparisons of back leak at Pout = 10 cmH2O between genotypes. Lyve1-Cre Cx45Δ/fl and Lyve1-Cre Cx45fl/fl data were combined. Comparisons between Lyve1-Cre Cx45Δ/fl, Lyve1-Cre, and Cx45fl/fl valves and between Prox1-CreERT2 Cx45fl/fl, Prox1-CreERT2 Cx45+/fl, and Cx45fl/fl valves were made using Kruskal-Wallis tests with Dunn’s post hoc tests. Back leak was significantly higher in Lyve1-Cre Cx45Δ/fl valves compared with Lyve1-Cre or Cx45fl/fl valves. (N) Fraction of leaky valves for each genotype calculated using the threshold criteria defined in text. Comparisons between Lyve1-Cre Cx45Δ/fl, Prox1-CreERT2 Cx45fl/fl, Prox1-CreERT2 Cx45+/fl, and the combined control groups were made using a Kruskal-Wallis test with Dunn’s post hoc tests. Differences between Lyve1-Cre Cx45Δ/fl valves and combined controls and between Lyve1-Cre Cx45Δ/fl and Prox1-CreERT2 Cx45+/fl valves were statistically significant. Comparisons not indicated were not significant at P < 0.05. In panels G–N, data are means ± SEM. WT N = 16, n = 32; Lyve1-Cre Cx45Δ/fl and Lyve1-Cre Cx45fl/fl combined N = 9, n = 24; Lyve1-Cre N = 6, n = 14; Cx45fl/fl N = 4, n = 12; Prox1-CreERT2 Cx45fl/fl N = 4, n = 14; Prox1-CreERT2 Cx45+/fl N = 2, n = 8. Psn, servo-null pressure.

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