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1.
Arch Biochem Biophys ; 752: 109860, 2024 02.
Article in English | MEDLINE | ID: mdl-38110111

ABSTRACT

Mutations in the X-linked methyl-CpG-binding 2 (MECP2) gene lead to Rett Syndrome (RTT; OMIM 312750), a devasting neurodevelopmental disorder. RTT clinical manifestations are complex and with different degrees of severity, going from autistic-like behavior to loss of acquired speech, motor skills and cardiac problems. Furthermore, the correlation between the type of MECP2 mutation and the clinical phenotype is still not fully understood. Contextually, different genotypes can differently affect the patient's phenotype and omics methodologies such as proteomics could be an important tool for a molecular characterization of genotype/phenotype correlation. The aim of our study was focused on evaluating RTT oxidative stress (OS) responses related to specific MECP2 gene mutations by using proteomics and bioinformatics approaches. Primary fibroblasts isolated from patients affected by R133C and R255× mutations were compared to healthy controls (HC). After clustering primary dermal fibroblasts based on their specific MECP2 mutations, fibroblast-derived protein samples were qualitative and quantitative analyzed, using a label free quantification (LFQ) analysis by mass spectrometry (MS), achieving a preliminary correlation for RTT genotype/phenotype. Among the identified proteins involved in redox regulation pathways, NAD(P)H:quinone acceptor oxidoreductase 1 (NQO1) was found to be absent in R255× cells, while it was present in R133C and in HC fibroblasts. Moreover, NQO1 aberrant gene regulation was also confirmed when cells were challenged with 100 µM hydrogen peroxide (H2O2). In conclusion, by employing a multidisciplinary approach encompassing proteomics and bioinformatics analyses, as well as molecular biology assays, the study uncovered phenotypic responses linked to specific MECP2 gene mutations. These findings contribute to a better understanding of the complexity of RTT molecular pathways, confirming the high heterogeneity among the patients.


Subject(s)
Rett Syndrome , Humans , Hydrogen Peroxide , Methyl-CpG-Binding Protein 2/genetics , Mutation , Oxidation-Reduction , Phenotype , Proteins , Proteomics , Rett Syndrome/genetics
2.
Arch Biochem Biophys ; 717: 109137, 2022 03 15.
Article in English | MEDLINE | ID: mdl-35090868

ABSTRACT

Alkaptonuria (AKU) is an ultra-rare genetic disease caused by a deficient activity of the enzyme homogentisate 1,2-dioxygenase (HGD) leading to the accumulation of homogentisic acid (HGA) on connective tissues. Even though AKU is a multi-systemic disease, osteoarticular cartilage is the most affected system and the most damaged tissue by the disease. In chondrocytes, HGA causes oxidative stress dysfunctions, which induce a series of not fully characterized cellular responses. In this study, we used a human chondrocytic cell line as an AKU model to evaluate, for the first time, the effect of HGA on autophagy, the main homeostasis system in articular cartilage. Cells responded timely to HGA treatment with an increase in autophagy as a mechanism of protection. In a chronic state, HGA-induced oxidative stress decreased autophagy, and chondrocytes, unable to restore balance, activated the chondroptosis pathway. This decrease in autophagy also correlated with the accumulation of ochronotic pigment, a hallmark of AKU. Our data suggest new perspectives for understanding AKU and a mechanistic model that rationalizes the damaging role of HGA.


Subject(s)
Alkaptonuria/prevention & control , Autophagy/drug effects , Biomarkers/metabolism , Homogentisate 1,2-Dioxygenase/metabolism , Homogentisic Acid/metabolism , Alkaptonuria/metabolism , Apoptosis/drug effects , Cartilage, Articular/drug effects , Cell Line , Chondrocytes/cytology , Homogentisic Acid/pharmacology , Humans , Ochronosis/metabolism , Oxidative Stress/drug effects , Signal Transduction
3.
J Cell Physiol ; 236(8): 6011-6024, 2021 08.
Article in English | MEDLINE | ID: mdl-33469937

ABSTRACT

Alkaptonuria (AKU) is an ultra-rare disease caused by the deficient activity of homogentisate 1,2-dioxygenase enzyme, leading the accumulation of homogentisic acid (HGA) in connective tissues implicating the formation of a black pigmentation called "ochronosis." Although AKU is a multisystemic disease, the most affected tissue is the articular cartilage, which during the pathology appears to be highly damaged. In this study, a model of alkaptonuric chondrocytes and cartilage was realized to investigate the role of HGA in the alteration of the extracellular matrix (ECM). The AKU tissues lost its architecture composed of collagen, proteoglycans, and all the proteins that characterize the ECM. The cause of this alteration in AKU cartilage is attributed to a degeneration of the cytoskeletal network in chondrocytes caused by the accumulation of HGA. The three cytoskeletal proteins, actin, vimentin, and tubulin, were analyzed and a modification in their amount and disposition in AKU chondrocytes model was identified. Cytoskeleton is involved in many fundamental cellular processes; therefore, the aberration in this complex network is involved in the manifestation of AKU disease.


Subject(s)
Cartilage, Articular/drug effects , Chondrocytes/drug effects , Cytoskeleton/drug effects , Extracellular Matrix/drug effects , Homogentisic Acid/pharmacology , Actins/drug effects , Actins/metabolism , Alkaptonuria/metabolism , Cartilage, Articular/metabolism , Chondrocytes/metabolism , Cytoskeleton/metabolism , Extracellular Matrix/metabolism , Humans , Microtubules/drug effects , Microtubules/metabolism , Ochronosis/drug therapy , Vimentin/drug effects , Vimentin/metabolism
4.
Arch Biochem Biophys ; 696: 108660, 2020 12 15.
Article in English | MEDLINE | ID: mdl-33159892

ABSTRACT

Rett syndrome (RTT) is a progressive neurodevelopmental disorder caused by mutations in the X-linked MECP2 gene. RTT patients show multisystem disturbances associated with perturbed redox homeostasis and inflammation, which appear as possible key factors in RTT pathogenesis. In this study, using primary dermal fibroblasts from control and RTT subjects, we performed a proteomic analysis that, together with data mining approaches, allowed us to carry out a comprehensive characterization of RTT cellular proteome. Functional and pathway enrichment analyses showed that differentially expressed proteins in RTT were mainly enriched in biological processes related to immune/inflammatory responses. Overall, by using proteomic data mining as supportive approach, our results provide a detailed insight into the molecular pathways involved in RTT immune dysfunction that, causing tissue and organ damage, can increase the vulnerability of affected patients to unknown endogenous factors or infections.


Subject(s)
Inflammation/metabolism , Proteome/analysis , Proteome/metabolism , Rett Syndrome/metabolism , Adult , Female , Fibroblasts/chemistry , Humans , Inflammation/complications , Protein Interaction Maps , Proteomics , Rett Syndrome/complications , Young Adult
5.
Front Immunol ; 15: 1341389, 2024.
Article in English | MEDLINE | ID: mdl-38698845

ABSTRACT

Monoclonal antibodies (mAbs) are one of the most important classes of biologics with high therapeutic and diagnostic value, but traditional methods for mAbs generation, such as hybridoma screening and phage display, have limitations, including low efficiency and loss of natural chain pairing. To overcome these challenges, novel single B cell antibody technologies have emerged, but they also have limitations such as in vitro differentiation of memory B cells and expensive cell sorters. In this study, we present a rapid and efficient workflow for obtaining human recombinant monoclonal antibodies directly from single antigen-specific antibody secreting cells (ASCs) in the peripheral blood of convalescent COVID-19 patients using ferrofluid technology. This process allows the identification and expression of recombinant antigen-specific mAbs in less than 10 days, using RT-PCR to generate linear Ig heavy and light chain gene expression cassettes, called "minigenes", for rapid expression of recombinant antibodies without cloning procedures. This approach has several advantages. First, it saves time and resources by eliminating the need for in vitro differentiation. It also allows individual antigen-specific ASCs to be screened for effector function prior to recombinant antibody cloning, enabling the selection of mAbs with desired characteristics and functional activity. In addition, the method allows comprehensive analysis of variable region repertoires in combination with functional assays to evaluate the specificity and function of the generated antigen-specific antibodies. Our approach, which rapidly generates recombinant monoclonal antibodies from single antigen-specific ASCs, could help to identify functional antibodies and deepen our understanding of antibody dynamics in the immune response through combined antibody repertoire sequence analysis and functional reactivity testing.


Subject(s)
Antibodies, Monoclonal , Antibody-Producing Cells , COVID-19 , Recombinant Proteins , SARS-CoV-2 , Humans , Antibodies, Monoclonal/immunology , Antibodies, Monoclonal/genetics , Antibodies, Monoclonal/biosynthesis , Recombinant Proteins/immunology , Recombinant Proteins/genetics , Antibody-Producing Cells/immunology , SARS-CoV-2/immunology , COVID-19/immunology , Antibodies, Viral/immunology , Female
6.
Commun Biol ; 7(1): 140, 2024 01 30.
Article in English | MEDLINE | ID: mdl-38291108

ABSTRACT

Plasma-derived therapeutic proteins are produced through an industrial fractionation process where proteins are purified from individual intermediates, some of which remain unused and are discarded. Relatively few plasma-derived proteins are exploited clinically, with most of available plasma being directed towards the manufacture of immunoglobulin and albumin. Although the plasma proteome provides opportunities to develop novel protein replacement therapies, particularly for rare diseases, the high cost of plasma together with small patient populations impact negatively on the development of plasma-derived orphan drugs. Enabling therapeutics development from unused plasma fractionation intermediates would therefore constitute a substantial innovation. To this objective, we characterized the proteome of unused plasma fractionation intermediates and prioritized proteins for their potential as new candidate therapies for human disease. We selected ceruloplasmin, a plasma ferroxidase, as a potential therapy for aceruloplasminemia, an adult-onset ultra-rare neurological disease caused by iron accumulation as a result of ceruloplasmin mutations. Intraperitoneally administered ceruloplasmin, purified from an unused plasma fractionation intermediate, was able to prevent neurological, hepatic and hematological phenotypes in ceruloplasmin-deficient mice. These data demonstrate the feasibility of transforming industrial waste plasma fraction into a raw material for manufacturing of new candidate proteins for replacement therapies, optimizing plasma use and reducing waste generation.


Subject(s)
Ceruloplasmin , Iron Metabolism Disorders , Neurodegenerative Diseases , Proteome , Adult , Humans , Animals , Mice , Ceruloplasmin/genetics , Ceruloplasmin/metabolism , Proteome/metabolism , Rare Diseases , Industrial Waste
7.
Biologicals ; 41(6): 446-9, 2013 Nov.
Article in English | MEDLINE | ID: mdl-24140107

ABSTRACT

Lecithin:cholesterol acyltransferase (LCAT) is the enzyme responsible for cholesterol esterification in plasma. Mutations in the LCAT gene leads to two rare disorders, familial LCAT deficiency and fish-eye disease, both characterized by severe hypoalphalipoproteinemia associated with several lipoprotein abnormalities. No specific treatment is presently available for genetic LCAT deficiency. In the present study, recombinant human LCAT was expressed and tested for its ability to correct the lipoprotein profile in LCAT deficient plasma. The results show that rhLCAT efficiently reduces the amount of unesterified cholesterol (-30%) and promotes the production of plasma cholesteryl esters (+210%) in LCAT deficient plasma. rhLCAT induces a marked increase in HDL-C levels (+89%) and induces the maturation of small preß-HDL into alpha-migrating particles. Moreover, the abnormal phospholipid-rich particles migrating in the LDL region were converted in normally sized LDL.


Subject(s)
Lecithin Cholesterol Acyltransferase Deficiency/blood , Lipoproteins/blood , Phosphatidylcholine-Sterol O-Acyltransferase/blood , Recombinant Proteins/blood , Blotting, Western , Cholesterol/blood , Cholesterol/metabolism , Family Health , HEK293 Cells , Humans , Lecithin Cholesterol Acyltransferase Deficiency/genetics , Lipoproteins/metabolism , Mutation , Phosphatidylcholine-Sterol O-Acyltransferase/genetics , Phosphatidylcholine-Sterol O-Acyltransferase/metabolism , Recombinant Proteins/metabolism
8.
Cells ; 9(11)2020 11 19.
Article in English | MEDLINE | ID: mdl-33228083

ABSTRACT

The amyloid-ß precursor protein (APP) is a ubiquitous membrane protein often associated with Alzheimer's disease (AD) and cerebral amyloid angiopathy (CAA). Despite its role in the development of the pathogenesis, APP exerts several physiological roles that have been mainly investigated in neuronal tissue. To date, the role of APP in vasculature and endothelial cells has not been fully elucidated. In this study, we used molecular and proteomic approaches to identify and investigate major cellular targets of APP down-regulation in endothelial cells. We found that APP is necessary for endothelial cells proliferation, migration and adhesion. The loss of APP alters focal adhesion stability and cell-cell junctions' expression. Moreover, APP is necessary to mediate endothelial response to the VEGF-A growth factor. Finally, we document that APP propagates exogenous stimuli and mediates cellular response in endothelial cells by modulating the Scr/FAK signaling pathway. Thus, the intact expression and processing of APP is required for normal endothelial function. The identification of molecular mechanisms responsible for vasoprotective properties of endothelial APP may have an impact on clinical efforts to preserve and protect healthy vasculature in patients at risk of the development of cerebrovascular disease and dementia including AD and CAA.


Subject(s)
Actin Cytoskeleton/metabolism , Amyloid beta-Protein Precursor/metabolism , Endothelial Cells/metabolism , Cell Proliferation , Down-Regulation , Humans , Transfection
9.
Free Radic Biol Med ; 155: 37-48, 2020 08 01.
Article in English | MEDLINE | ID: mdl-32445864

ABSTRACT

Rett syndrome (RTT) is a pervasive neurodevelopmental disorder associated with mutation in MECP2 gene. Despite a well-defined genetic cause, there is a growing consensus that a metabolic component could play a pivotal role in RTT pathophysiology. Indeed, perturbed redox homeostasis and inflammation, i.e. oxinflammation, with mitochondria dysfunction as the central hub between the two phenomena, appear as possible key contributing factors to RTT pathogenesis and its clinical features. While these RTT-related changes have been widely documented by transcriptomic profiling, proteomics studies supporting these evidences are still limited. Here, using primary dermal fibroblasts from control and patients, we perform a large-scale proteomic analysis that, together with data mining approaches, allow us to carry out the first comprehensive characterization of RTT cellular proteome, showing mainly changes in expression of proteins involved in the mitochondrial network. These findings parallel with an altered expression of key mediators of mitochondrial dynamics and mitophagy associated with abnormal mitochondrial morphology. In conclusion, our proteomic analysis confirms the pathological relevance of mitochondrial dysfunction in RTT pathogenesis and progression.


Subject(s)
Methyl-CpG-Binding Protein 2 , Rett Syndrome , Gene Expression Profiling , Humans , Methyl-CpG-Binding Protein 2/genetics , Mutation , Proteome/genetics , Proteomics , Rett Syndrome/genetics
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