Specific networks of plasma acute phase reactants are associated with the severity of chronic obstructive pulmonary disease: a case-control study
INTERNATIONAL JOURNAL OF MEDICAL SCIENCES
Authors: Arellano-Orden, Elena; Calero-Acuna, Carmen; Antonio Cordero, Juan; Abad-Arranz, Maria; Sanchez-Lopez, Veronica; Marquez-Martin, Eduardo; Ortega-Ruiz, Francisco; Luis Lopez-Campos, Jose
Abstract
Objectives. A detailed understanding of the intricate relationships between different acute phase reactants (APRs) in chronic obstructive pulmonary disease (COPD) can shed new light on its clinical course. In this case-control study, we sought to identify the interaction networks of a number of plasma APRs in COPD, with a special focus on their association with disease severity. Methods. COPD cases and healthy smoking controls (3:1 ratio) were recruited in our outpatient pulmonary clinic. Cardiopulmonary exercise testing was used to rule out the presence of ischemic heart disease. All subjects were males as per protocol. Multiple plasma APRs - including alpha-2-macroglobulin, C-reactive protein (CRP), ferritin, fibrinogen, haptoglobin, procalcitonin (PCT), serum amyloid A (SAA), serum amyloid P, and tissue plasminogen activator (tPA) - were measured using commercial Acute Phase Bio-Plex Pro Assays and analyzed on the Bio-Plex manager software. Correlations between different APRs were investigated using a heat map. Network visualization and analyses were performed with the Cytoscape software platform. Results. A total of 96 COPD cases and 33 controls were included in the study. Plasma A2M, CRP, and SAP levels were higher in COPD patients than in controls. Circulating concentrations of haptoglobin and tPA were found to increase in parallel with the severity of the disease. Increasing disease severity was associated with distinct intricate networks of APRs, which were especially evident in advanced stages. Conclusions. We identified different networks of APRs in COPD, which were significantly associated with disease severity.
Heterozygous germline mutations in A2ML1 are associated with a disorder clinically related to Noonan syndrome
EUROPEAN JOURNAL OF HUMAN GENETICS
Authors: Vissers, Lisenka E. L. M.; Bonetti, Monica; Overman, Jeroen Paardekooper; Nillesen, Willy M.; Frints, Suzanna G. M.; de Ligt, Joep; Zampino, Giuseppe; Justino, Ana; Machado, Jose C.; Schepens, Marga; Brunner, Han G.; Veltman, Joris A.; Scheffer, Hans; Gros, Piet; Costa, Jose L.; Tartaglia, Marco; van der Burgt, Ineke; Yntema, Helger G.; den Hertog, Jeroen
Abstract
Noonan syndrome (NS) is a developmental disorder characterized by short stature, facial dysmorphisms and congenital heart defects. To date, all mutations known to cause NS are dominant, activating mutations in signal transducers of the RAS/ mitogen-activated protein kinase (MAPK) pathway. In 25% of cases, however, the genetic cause of NS remains elusive, suggesting that factors other than those involved in the canonical RAS/MAPK pathway may also have a role. Here, we used family-based whole exome sequencing of a case-parent trio and identified a de novo mutation, p.(Arg802His), in A2ML1, which encodes the secreted protease inhibitor alpha-2-macroglobulin (A2M)-like-1. Subsequent resequencing of A2ML1 in 155 cases with a clinical diagnosis of NS led to the identification of additional mutations in two families, p.(Arg802Leu) and p.(Arg592Leu). Functional characterization of these human A2ML1 mutations in zebrafish showed NS-like developmental defects, including a broad head, blunted face and cardiac malformations. Using the crystal structure of A2M, which is highly homologous to A2ML1, we identified the intramolecular interaction partner of p.Arg802. Mutation of this residue, p.Glu906, induced similar developmental defects in zebrafish, strengthening our conclusion that mutations in A2ML1 cause a disorder clinically related to NS. This is the first report of the involvement of an extracellular factor in a disorder clinically related to RASopathies, providing potential new leads for better understanding of the molecular basis of this family of developmental diseases.