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1.
Science ; 381(6659): 799-804, 2023 08 18.
Article in English | MEDLINE | ID: mdl-37590348

ABSTRACT

Piezo channels are critical cellular sensors of mechanical forces. Despite their large size, ubiquitous expression, and irreplaceable roles in an ever-growing list of physiological processes, few Piezo channel-binding proteins have emerged. In this work, we found that MyoD (myoblast determination)-family inhibitor proteins (MDFIC and MDFI) are PIEZO1/2 interacting partners. These transcriptional regulators bind to PIEZO1/2 channels, regulating channel inactivation. Using single-particle cryogenic electron microscopy, we mapped the interaction site in MDFIC to a lipidated, C-terminal helix that inserts laterally into the PIEZO1 pore module. These Piezo-interacting proteins fit all the criteria for auxiliary subunits, contribute to explaining the vastly different gating kinetics of endogenous Piezo channels observed in many cell types, and elucidate mechanisms potentially involved in human lymphatic vascular disease.


Subject(s)
Ion Channels , Myogenic Regulatory Factors , Humans , Cryoelectron Microscopy , HEK293 Cells , Ion Channel Gating , Ion Channels/chemistry , Ion Channels/genetics , Ion Channels/metabolism , Kinetics , Lymphatic Diseases/genetics , Mutation , Myogenic Regulatory Factors/chemistry , Myogenic Regulatory Factors/genetics , Myogenic Regulatory Factors/metabolism , Protein Domains , Myoblasts/metabolism , Animals , Mice
2.
Sci Transl Med ; 14(634): eabm4869, 2022 03 02.
Article in English | MEDLINE | ID: mdl-35235341

ABSTRACT

Central conducting lymphatic anomaly (CCLA), characterized by the dysfunction of core collecting lymphatic vessels including the thoracic duct and cisterna chyli, and presenting as chylothorax, pleural effusions, chylous ascites, and lymphedema, is a severe disorder often resulting in fetal or perinatal demise. Although pathogenic variants in RAS/mitogen activated protein kinase (MAPK) signaling pathway components have been documented in some patients with CCLA, the genetic etiology of the disorder remains uncharacterized in most cases. Here, we identified biallelic pathogenic variants in MDFIC, encoding the MyoD family inhibitor domain containing protein, in seven individuals with CCLA from six independent families. Clinical manifestations of affected fetuses and children included nonimmune hydrops fetalis (NIHF), pleural and pericardial effusions, and lymphedema. Generation of a mouse model of human MDFIC truncation variants revealed that homozygous mutant mice died perinatally exhibiting chylothorax. The lymphatic vasculature of homozygous Mdfic mutant mice was profoundly mispatterned and exhibited major defects in lymphatic vessel valve development. Mechanistically, we determined that MDFIC controls collective cell migration, an important early event during the formation of lymphatic vessel valves, by regulating integrin ß1 activation and the interaction between lymphatic endothelial cells and their surrounding extracellular matrix. Our work identifies MDFIC variants underlying human lymphatic disease and reveals a crucial, previously unrecognized role for MDFIC in the lymphatic vasculature. Ultimately, understanding the genetic and mechanistic basis of CCLA will facilitate the development and implementation of new therapeutic approaches to effectively treat this complex disease.


Subject(s)
Chylothorax , Lymphatic Vessels , Lymphedema , Myogenic Regulatory Factors , Animals , Chylothorax/genetics , Chylothorax/metabolism , Endothelial Cells , Female , Humans , Hydrops Fetalis/genetics , Hydrops Fetalis/metabolism , Lymphatic Vessels/pathology , Lymphedema/genetics , Lymphedema/metabolism , Mice , Myogenic Regulatory Factors/genetics , Pregnancy
3.
J Clin Invest ; 130(6): 3315-3328, 2020 06 01.
Article in English | MEDLINE | ID: mdl-32182215

ABSTRACT

The atypical cadherin FAT4 has established roles in the regulation of planar cell polarity and Hippo pathway signaling that are cell context dependent. The recent identification of FAT4 mutations in Hennekam syndrome, features of which include lymphedema, lymphangiectasia, and mental retardation, uncovered an important role for FAT4 in the lymphatic vasculature. Hennekam syndrome is also caused by mutations in collagen and calcium binding EGF domains 1 (CCBE1) and ADAM metallopeptidase with thrombospondin type 1 motif 3 (ADAMTS3), encoding a matrix protein and protease, respectively, that regulate activity of the key prolymphangiogenic VEGF-C/VEGFR3 signaling axis by facilitating the proteolytic cleavage and activation of VEGF-C. The fact that FAT4, CCBE1, and ADAMTS3 mutations underlie Hennekam syndrome suggested that all 3 genes might function in a common pathway. We identified FAT4 as a target gene of GATA-binding protein 2 (GATA2), a key transcriptional regulator of lymphatic vascular development and, in particular, lymphatic vessel valve development. Here, we demonstrate that FAT4 functions in a lymphatic endothelial cell-autonomous manner to control cell polarity in response to flow and is required for lymphatic vessel morphogenesis throughout development. Our data reveal a crucial role for FAT4 in lymphangiogenesis and shed light on the mechanistic basis by which FAT4 mutations underlie a human lymphedema syndrome.


Subject(s)
Cadherins/metabolism , Cell Polarity , Endothelial Cells/metabolism , Lymphangiogenesis , Lymphatic Vessels/metabolism , Animals , Cadherins/genetics , Endothelial Cells/pathology , Female , GATA2 Transcription Factor/genetics , GATA2 Transcription Factor/metabolism , Humans , Lymphatic Vessels/pathology , Lymphedema/genetics , Lymphedema/metabolism , Lymphedema/pathology , Mice , Mice, Transgenic , Syndrome
4.
Dev Cell ; 49(2): 279-292.e5, 2019 04 22.
Article in English | MEDLINE | ID: mdl-31014480

ABSTRACT

The correct assignment of cell fate within fields of multipotent progenitors is essential for accurate tissue diversification. The first lymphatic vessels arise from pre-existing veins after venous endothelial cells become specified as lymphatic progenitors. Prox1 specifies lymphatic fate and labels these progenitors; however, the mechanisms restricting Prox1 expression and limiting the progenitor pool remain unknown. We identified a zebrafish mutant that displayed premature, expanded, and prolonged lymphatic specification. The gene responsible encodes the regulator of alternative splicing, Nova2. In zebrafish and human endothelial cells, Nova2 selectively regulates pre-mRNA splicing for components of signaling pathways and phosphoproteins. Nova2-deficient endothelial cells display increased Mapk/Erk signaling, and Prox1 expression is dynamically controlled by Erk signaling. We identify a mechanism whereby Nova2-regulated splicing constrains Erk signaling, thus limiting lymphatic progenitor cell specification. This identifies the capacity of a factor that tunes mRNA splicing to control assignment of cell fate during vascular differentiation.


Subject(s)
Lymphatic Vessels/metabolism , MAP Kinase Signaling System , Nerve Tissue Proteins/metabolism , RNA-Binding Proteins/metabolism , Alternative Splicing , Animals , Cell Differentiation , Cell Lineage , Endothelial Cells/cytology , Endothelial Cells/metabolism , Female , Homeodomain Proteins/metabolism , Humans , Lymphangiogenesis , Lymphatic Vessels/cytology , Male , Neuro-Oncological Ventral Antigen , Tumor Suppressor Proteins/metabolism , Veins/cytology , Veins/metabolism , Zebrafish
5.
J Clin Invest ; 125(8): 2979-94, 2015 Aug 03.
Article in English | MEDLINE | ID: mdl-26214525

ABSTRACT

Heterozygous germline mutations in the zinc finger transcription factor GATA2 have recently been shown to underlie a range of clinical phenotypes, including Emberger syndrome, a disorder characterized by lymphedema and predisposition to myelodysplastic syndrome/acute myeloid leukemia (MDS/AML). Despite well-defined roles in hematopoiesis, the functions of GATA2 in the lymphatic vasculature and the mechanisms by which GATA2 mutations result in lymphedema have not been characterized. Here, we have provided a molecular explanation for lymphedema predisposition in a subset of patients with germline GATA2 mutations. Specifically, we demonstrated that Emberger-associated GATA2 missense mutations result in complete loss of GATA2 function, with respect to the capacity to regulate the transcription of genes that are important for lymphatic vessel valve development. We identified a putative enhancer element upstream of the key lymphatic transcriptional regulator PROX1 that is bound by GATA2, and the transcription factors FOXC2 and NFATC1. Emberger GATA2 missense mutants had a profoundly reduced capacity to bind this element. Conditional Gata2 deletion in mice revealed that GATA2 is required for both development and maintenance of lymphovenous and lymphatic vessel valves. Together, our data unveil essential roles for GATA2 in the lymphatic vasculature and explain why a select catalogue of human GATA2 mutations results in lymphedema.


Subject(s)
GATA2 Transcription Factor/metabolism , Lymphatic Vessels/embryology , Lymphedema/embryology , Mutation , Animals , Enhancer Elements, Genetic , Forkhead Transcription Factors/genetics , Forkhead Transcription Factors/metabolism , GATA2 Transcription Factor/genetics , Gene Deletion , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , Humans , K562 Cells , Lymphatic Vessels/pathology , Lymphedema/genetics , Lymphedema/pathology , Mice , NFATC Transcription Factors/genetics , NFATC Transcription Factors/metabolism , Tumor Suppressor Proteins/genetics , Tumor Suppressor Proteins/metabolism
6.
Fish Shellfish Immunol ; 32(6): 1074-82, 2012 Jun.
Article in English | MEDLINE | ID: mdl-22450240

ABSTRACT

Peroxiredoxin 1 (Prx 1), also known as natural killer enhancing factor A (NKEF A), has been implicated in the immune response of both mammals and fish. Amoebic gill disease (AGD), caused by Neoparamoeba perurans, is a significant problem for the Atlantic salmon (Salmo salar L.) aquaculture industry based in Tasmania, Australia. Here we have cloned and functionally characterized a Prx 1 open reading frame (ORF) from Atlantic salmon liver and shown that Prx 1 gene expression was down-regulated in the gills of Atlantic salmon displaying symptoms of AGD. The Prx 1 ORF encoded all of the residues and motifs characteristic of typical 2-Cys Prx proteins from eukaryotes and the recombinant protein expressed in Escherichia coli catalyzed thioredoxin (Trx)-dependent reduction of H(2)O(2), cumene hydroperoxide (CuOOH) and t-butyl hydroperoxide (t-bOOH) with K(m) values of 122, 77 and 91 µM, respectively, confirming that it was a genuine 2-Cys Prx. The recombinant protein also displayed a double displacement reaction mechanism and a catalytic efficiency (k(cat)/K(m)) with H(2)O(2) of 1.5 × 10(5) M(-1) s(-1) which was consistent with previous reports for the 2-Cys Prx family of proteins. This is the first time that a Prx 1 protein has been functionally characterized from any fish species and it paves the way for further investigation of this important 2-Cys Prx family member in fish.


Subject(s)
Amebiasis/veterinary , Fish Diseases/immunology , Gene Expression Regulation , Peroxiredoxins/genetics , Peroxiredoxins/immunology , Salmo salar/immunology , Amebiasis/immunology , Amino Acid Sequence , Amoebozoa/immunology , Animals , DNA, Complementary/genetics , Gills/immunology , Gills/parasitology , Molecular Sequence Data , Peroxiredoxins/chemistry , Phylogeny , Recombinant Proteins/metabolism , Salmo salar/classification , Sequence Alignment
7.
Comp Biochem Physiol B Biochem Mol Biol ; 156(2): 97-106, 2010 Jun.
Article in English | MEDLINE | ID: mdl-20211754

ABSTRACT

Peroxiredoxins (Prxs, EC: 1.11.1.15) are cysteine-dependent peroxidases proposed to function as antioxidant enzymes and also in H2O2-mediated cell signaling. They have been well characterized in yeast, mammals, protists and bacteria but not yet in fish. Here we describe the cloning and functional characterization of a Prx 2 cDNA from southern bluefin tuna (SBT, Thunnus maccoyii), an important aquaculture species in South Australia. The SBT Prx sequence was closely related (76-92% identical) to Prx 1 and 2 sequences from other fish and mammals and phylogenetic analyses showed that it was most likely a Prx 2. The deduced amino acid sequence contained the peroxidatic and resolving Cys residues characteristic of typical 2-Cys Prx proteins from all kingdoms of life. It also contained the GGLG motif associated with the sensitivity of eukaryotic typical 2-Cys Prx proteins to overoxidation and consequent inactivation by H2O2. When the SBT Prx 2 was expressed in E. coli, it showed thioredoxin (Trx)-dependent peroxidase activity with H2O2, cumene hydroperoxide (CuOOH) and t-butyl hydroperoxide (t-bOOH). The SBT Prx displayed Michaelis-Menten kinetics with Trx but sigmoidal kinetics with H2O2 and CuOOH. The K(m)(Trx) was 12 microM and the S(0.5) values for H2O2 and CuOOH were 29 and 25 microM, respectively. At mM concentrations of H2O2, SBT Prx progressively lost its peroxidase activity as has been observed for other eukaryotic typical 2-Cys Prx proteins. The native SBT Prx enzyme existed as a mixture of dimers, tetramers, decamers and a higher order aggregate.


Subject(s)
Fish Proteins/metabolism , Peroxiredoxins/metabolism , Tuna/metabolism , Amino Acid Sequence , Animals , Chromatography, Affinity , Cloning, Molecular , Cysteine/analysis , Escherichia coli/genetics , Fish Proteins/chemistry , Fish Proteins/genetics , Molecular Sequence Data , Peroxiredoxins/chemistry , Peroxiredoxins/genetics , Phylogeny , Sequence Alignment , Tuna/genetics
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