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Pathological MAPK activation–mediated lymphatic basement membrane disruption causes lymphangiectasia that is treatable with ravoxertinib
Harish P. Janardhan, Karen Dresser, Lloyd Hutchinson, Chinmay M. Trivedi
Harish P. Janardhan, Karen Dresser, Lloyd Hutchinson, Chinmay M. Trivedi
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Research Article Development Vascular biology

Pathological MAPK activation–mediated lymphatic basement membrane disruption causes lymphangiectasia that is treatable with ravoxertinib

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Abstract

Lymphangiectasia, an anomalous dilation of lymphatic vessels first described in the 17th century, is frequently associated with chylous effusion, respiratory failure, and high mortality in young patients, yet the underlying molecular pathogenesis and effective treatments remain elusive. Here, we identify an unexpected causal link between MAPK activation and defective development of the lymphatic basement membrane that drives lymphangiectasia. Human pathological tissue samples from patients diagnosed with lymphangiectasia revealed sustained MAPK activation within lymphatic endothelial cells. Endothelial KRASG12D–mediated sustained MAPK activation in newborn mice caused severe pulmonary and intercostal lymphangiectasia, accumulation of chyle in the pleural space, and complete lethality. Pathological activation of MAPK in murine vasculature inhibited the Nfatc1-dependent genetic program required for laminin interactions, collagen crosslinking, and anchoring fibril formation, driving defective development of the lymphatic basement membrane. Treatment with ravoxertinib, a pharmacological inhibitor of MAPK, reverses nuclear-to-cytoplasmic localization of Nfatc1, basement membrane development defects, lymphangiectasia, and chyle accumulation, ultimately improving survival of endothelial KRAS mutant neonatal mice. These results reveal defective lymphatic basement membrane assembly and composition as major causes of thoracic lymphangiectasia and provide a potential treatment.

Authors

Harish P. Janardhan, Karen Dresser, Lloyd Hutchinson, Chinmay M. Trivedi

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Figure 5

Pharmacological MAPK inhibition reverses lymphangiectasia in endothelial KRASG12D mutant mice.

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Pharmacological MAPK inhibition reverses lymphangiectasia in endothelial...
(A) Schematic of vehicle or ravoxertinib administration to neonatal mice to inhibit MAPK activity in endothelial KrasG12D mutant mice. (B) Kaplan Meier survival plot depicting improved neonatal survival of KrasG12D fl/+; Cdh5CreERT2 mice treated with ravoxertinib compared with vehicle. (C) Immunofluorescent staining of intercostal lymphatic vessels, marked by Lyve1 (red), show reduced nuclear expression of Nfatc1 (red arrows, top row) and increased nuclear expression of phosphorylated-MAPK (red arrows, bottom row) in sections of KrasG12D fl/+; Cdh5CreERT2; R26RmTmG+/– mice compared with controls (white arrows) and MAPK inhibitor–treated (yellow arrows) mice (n = 3). Green arrows show cytoplasmic Nfatc1. Hoechst nuclear counterstain (blue). Scale bar: 10 μm. (D and E) Immunofluorescent staining for Col4a (green, top row), Nid1 (green, middle row), and Lama4 (red, bottom row) expression in intercostal (D) and lung (E) lymphatic vessels, marked by Lyve1 (red, top 2 row) or Pdpn (green, bottom row). Yellow arrows show restoration of expression in ravoxertinib-treated mutant KrasG12D fl/+; Cdh5CreERT2; R26RmTmG+/– mice similar to control mice (white arrows) and in contrast to untreated mutant mice (red arrows) (n = 3). Hoechst nuclear counterstain (blue). Scale bar: 10 μm. L, Lymphatic vessel; B, Bronchus. See also Supplemental Figure 4.

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