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Melo-Braga, M. N.

Publications and source records attributed to Melo-Braga, M. N..

2 recordsLinked to original sources

Blockade of redox second messengers inhibits JAK/STAT and MEK/ERK signaling sensitizing FLT3-mutant acute myeloid leukemia to targeted therapies

FLT3-mutations are diagnosed in 25-30% of patients with acute myeloid leukemia (AML) and are associated with a poor prognosis. AML is associated with the overproduction of reactive oxygen species (ROS), which drives genomic instability through the oxidation of DNA bases, promoting clonal evolution, treatment resistance and poor outcomes. ROS are also important second messengers, triggering cysteine oxidation in redox sensitive signaling proteins, however, the specific pathways influenced by ROS in AML remain enigmatic. Here we have surveyed the posttranslational architecture of primary AML patient samples and assessed oncogenic second messenger signaling. Signaling proteins responsible for growth and proliferation were differentially oxidized and phosphorylated between patient subtypes either harboring recuring mutation in FLT3 compared to patients expressing the wildtype-FLT3 receptor, particularly those mapping to the Src family kinases (SFKs). Patients harboring FLT3-mutations also showed increased oxidative posttranslational modifications in the GTPase Rac activated-NADPH oxidase-2 (NOX2) complex to drive autocratic ROS production. Pharmacological and molecular inhibition of NOX2 was cytotoxic specifically to FLT3-mutant AMLs, and reduced phosphorylation of the critical hematopoietic transcription factor STAT5 and MAPK/ERK to synergistically increase sensitivity to FLT3-inhibitors. NOX2 inhibition also reduced phosphorylation and cysteine oxidation of FLT3 in patient derived xenograft mouse models in vivo, highlighting an important link between oxidative stress and oncogenic signaling. Together, these data raise the promising possibility of targeting NOX2 in combination with FLT3-inhibitors to improve treatment of FLT3-mutant AML. One Sentence SummaryFLT3-precision therapies have entered the clinic for AML however, their durability is limited. Here we identify the Rac-NOX2 complex as the major driver of redox second messenger signaling in FLT3-mutant AML. Molecular and pharmacological inhibition of NOX2 decreased FLT3, STAT5 and MEK/ERK signaling to delay leukemia progression, and synergistically combined with FLT3 inhibitors.

cancer biology↗

New insights of glycosylation role on variable domain of antibody structures

N-glycosylation at antibody variable domain (FvN-glyco) has emerged as an important modification for antibody function such as stability and antigen recognition, but it is also associated with autoimmune disease and IgE-mediated hypersensitivity reaction. However, the information related to its role and regulation is still scarce. Therefore, we investigated new insights in this regarding using solved antibodies structures presenting in the Protein Data Bank (PDB). From 130 FvN-glyco structures, we observed significant findings as a higher prevalence of N-glycosylation in human and mouse antibodies containing IGHV1-8 and IGHV2-2 germline genes, respectively. We also speculate the influence of activation-induced cytidine deaminase (AID) in introducing N-glycosylation sites during somatic hypermutation, specifically on threonine to asparagine substitution. Moreover, we highlight the enrichment of anti-HIV antibodies containing N-glycosylation at antibody variable domain and where we showed a possible important role of N-glycosylation, besides to antigen-antibody interactions, in antibody chain pair and antibody-antibody interactions. These could be a positive secondary effect of glycosylation to enhance antigen binding and further neutralization, including an additional mechanism to form Fab-dimers. Overall, our findings extend the knowledge on the characteristics and diverse role of N-glycosylation at antibody variable domain. Key PointsO_LIPrevalence of FvN-glyco in human IGHV1-8 and mouse IGHV2-2 germline genes. C_LIO_LIEnrichment of antibody FvN-glyco against virus, especially anti-HIV-1. C_LIO_LIFvN-glyco in the interface with antigen, antibody pair chain, and another antibody. C_LI

immunology↗