Search bioRxiv⌕ Search

Biology subjects

Pini, V.

Publications and source records attributed to Pini, V..

2 recordsLinked to original sources

Matrix remodeling plays an etiological role in driving laminin-α2 deficient pathology

Laminin-2 (gene: LAMA2) is a key protein in the basement membrane of muscle and Schwann cells. A complete lack of this protein results in LAMA2-related congenital muscular dystrophy (LAMA2-RD), a severe muscle disease characterized by progressive muscle weakness, respiratory insufficiency, failure to thrive and shortened life span. One key signature of this disease is early onset of fibrosis coupled with poor muscle growth. We previously showed that TGF-{beta} and its activator, integrin-V, are elevated in dystrophic fibers of DyW mice, a mouse model of LAMA2-RD. Other than activating TGF-{beta}, integrin-V is also known to facilitate the transdifferentiation of various cell types to myofibroblasts. In this study we present evidence for transcriptional dysregulation of genes driving myofibroblast transdifferentiation and extracellular matrix (ECM) remodelling during the early development of DyW mice that is also reflected in muscle biopsies from young LAMA2-RD patients. We hypothesize that the early ECM remodelling, seen in both DyW mice and LAMA2-RD children, may explain the congenital onset of fibrosis with poor muscle growth seen in the disease. Summary StatementCharacterization of fibrogenic pathways that play potentially etiological roles in in LAMA2-related congenital muscular dystrophy

neuroscience↗

Muscle transcriptome profiling reveals novel molecular pathways and biomarkers in laminin-α2 deficient patients

Merosin-deficient congenital muscular dystrophy (LAMA2-RD) is caused by LAMA2 gene mutations, coding for laminin-211 (merosin) 2 subunit. LAMA2 mutations leading to complete laminin-211 absence result in an invariably severe clinical phenotype, with profound muscle weakness and respiratory insufficiency. Milder phenotypes are often associated with mutations allowing the production of a partially functional protein. While several dysregulated genes/pathways linked to LAMA2-RD muscle loss are known, an in-depth characterization of LAMA2-RD muscle gene expression profile in patients with mutations differentially affecting LAMA2 expression is lacking. We generated muscle transcriptomic data from patients with either complete or partial laminin-211 deficiency, and identified pathways linked to the most dysregulated processes. Genes related to fibrosis, inflammation and metabolism were similarly expressed in both patient cohorts. However, a subset of novel pro-fibrotic and pro-inflammatory genes were exclusively expressed in patients (and mice) completely lacking laminin-211, indicating aspects exacerbated in this cohort. Our work characterizes the main contributors of human LAMA2-RD pathology, providing insight into molecular pathways that could be used as disease biomarkers or as targets for therapeutic approaches.

neuroscience↗