RESUMO
EMILIN3 is an extracellular matrix glycoprotein that displays a dynamic and restricted expression pattern in connective tissues during post-natal life. In this study, we report the characterization of EMILIN3 deposition in the skin. In addition, to unravel the functions of this protein in skin homeostasis, we generated Emilin3 null mice and provide evidence that EMILIN3 is dispensable for hair follicle growth and maintenance throughout adult life.
Assuntos
Proteínas da Matriz Extracelular/metabolismo , Glicoproteínas/metabolismo , Folículo Piloso/crescimento & desenvolvimento , Animais , Folículo Piloso/metabolismo , CamundongosRESUMO
EMILIN-3 is a glycoprotein of the extracellular matrix belonging to a family that contains a characteristic N-terminal cysteine-rich EMI domain. Currently, EMILIN-3 is the least characterized member of the elastin microfibril interface-located protein (EMILIN)/Multimerin family. Using RNA, immunohistochemical, and protein chemistry approaches, we carried out a detailed characterization of the expression and biochemical properties of EMILIN-3 in mouse. During embryonic and postnatal development, EMILIN-3 showed a peculiar and dynamic pattern of gene expression and protein distribution. EMILIN-3 mRNA was first detected at E8.5-E9.5 in the tail bud and in the primitive gut, and at later stages it became abundant in the developing gonads and osteogenic mesenchyme. Interestingly and in contrast to other EMILIN/Multimerin genes, EMILIN-3 was not found in the cardiovascular system. Despite the absence of the globular C1q domain, immunoprecipitation and Western blot analyses demonstrated that EMILIN-3 forms disulfide-bonded homotrimers and higher order oligomers. Circular dichroism spectroscopy indicated that the most C-terminal part of EMILIN-3 has a substantial α-helical content and forms coiled coil structures involved in EMILIN-3 homo-oligomerization. Transfection experiments with recombinant constructs showed that the EMI domain contributes to the higher order self-assembly but was dispensable for homotrimer formation. EMILIN-3 was found to bind heparin with high affinity, a property mediated by the EMI domain, thus revealing a new function for this domain that may contribute to the interaction of EMILIN-3 with other extracellular matrix and/or cell surface molecules. Finally, in vitro experiments showed that EMILIN-3 is able to function as an extracellular regulator of the activity of TGF-ß ligands.
Assuntos
Antígenos de Superfície/metabolismo , Proteínas da Matriz Extracelular/metabolismo , Regulação da Expressão Gênica no Desenvolvimento , Glicoproteínas/metabolismo , Glicoproteínas de Membrana/metabolismo , Multimerização Proteica , Fator de Crescimento Transformador beta/antagonistas & inibidores , Sequência de Aminoácidos , Animais , Antígenos de Superfície/química , Antígenos de Superfície/genética , Dissulfetos/química , Proteínas da Matriz Extracelular/química , Proteínas da Matriz Extracelular/genética , Glicoproteínas/química , Glicoproteínas/genética , Células HEK293 , Heparina/metabolismo , Humanos , Glicoproteínas de Membrana/química , Glicoproteínas de Membrana/genética , Camundongos , Dados de Sequência Molecular , Peso Molecular , Polissacarídeos/metabolismo , Estrutura Quaternária de Proteína , Estrutura Terciária de Proteína , Transporte ProteicoRESUMO
In the last years, we have seen the emergence of different tools that have changed the face of biology from a simple modeling level to a more systematic science. The transparent zebrafish embryo is one of the living models in which, after germline transformation with reporter protein-coding genes, specific fluorescent cell populations can be followed at single-cell resolution. The genetically modified embryos, larvae and adults, resulting from the transformation, are individuals in which time lapse analysis, digital imaging quantification, FACS sorting and next-generation sequencing can be performed in specific times and tissues. These multifaceted genetic and cellular approaches have permitted to dissect molecular interactions at the subcellular, intercellular, tissue and whole-animal level, thus allowing integration of cellular and developmental genetics with molecular imaging in the resulting frame of modern biology. In this review, we describe a new step in the zebrafish road to system biology, based on the use of transgenic biosensor animals expressing fluorescent proteins under the control of signaling pathway-responsive cis-elements. In particular, we provide here the rationale and details of this powerful tool, trying to focus on its huge potentialities in basic and applied research, while also discussing limits and potential technological evolutions of this approach.
Assuntos
Animais Geneticamente Modificados , Genes Reporter , Transdução de Sinais , Peixe-Zebra/genética , Peixe-Zebra/metabolismo , Animais , Embrião não Mamífero , Regiões Promotoras Genéticas , Peixe-Zebra/embriologia , Proteínas de Peixe-Zebra/genética , Proteínas de Peixe-Zebra/metabolismoRESUMO
Coordination of cell proliferation and migration is fundamental for life, and its dysregulation has catastrophic consequences, such as cancer. How cell cycle progression affects migration, and vice versa, remains largely unknown. We address these questions by combining in silico modelling and in vivo experimentation in the zebrafish trunk neural crest (TNC). TNC migrate collectively, forming chains with a leader cell directing the movement of trailing followers. We show that the acquisition of migratory identity is autonomously controlled by Notch signalling in TNC. High Notch activity defines leaders, while low Notch determines followers. Moreover, cell cycle progression is required for TNC migration and is regulated by Notch. Cells with low Notch activity stay longer in G1 and become followers, while leaders with high Notch activity quickly undergo G1/S transition and remain in S-phase longer. In conclusion, TNC migratory identities are defined through the interaction of Notch signalling and cell cycle progression.
Assuntos
Crista Neural , Peixe-Zebra , Animais , Divisão Celular , Movimento Celular/fisiologia , Transdução de Sinais , Peixe-Zebra/fisiologiaRESUMO
Emilins are a family of extracellular matrix proteins with common structural organization and containing a characteristic N-terminal cysteine-rich domain. The prototype of this family, Emilin-1, is found in human and murine organs in association with elastic fibers, and other emilins were recently isolated in mammals. To gain insight into these proteins in lower vertebrates, we investigated the expression of emilins in the fish Danio rerio. Using sequence similarity tools, we identified eight members of this family in zebrafish. Each emilin gene has two paralogs in zebrafish, showing conserved structure with the human ortholog. In situ hybridization revealed that expression of zebrafish emilin genes is regulated in a spatiotemporal manner during embryonic development, with overlapping and site-specific patterns mostly including mesenchymal structures. Expression of certain emilin genes in peculiar areas, such as the central nervous system or the posterior notochord, suggests that they may play a role in key morphogenetic processes.